Functional device and method for controlling variable physical parameter

HK40056887BActive Publication Date: 2026-07-17钟国诚

Patent Information

Authority / Receiving Office
HK · HK
Patent Type
Patents
Current Assignee / Owner
钟国诚
Filing Date
2022-01-14
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

In the prior art, functional devices lack an effective mechanism for controlling variable physical parameters and cannot effectively utilize clock time measurements to accurately control physical parameter application units.

Method used

A functional device including a timer and a processing unit is used to control variable physical parameters by sensing clock time and using mathematical relationships to achieve a target state.

Benefits of technology

It achieves precise control based on clock time, ensuring that physical parameters reach the target state within a specific time interval, thereby improving the control accuracy and efficiency of functional devices.

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Abstract

A functional device for controlling a variable physical parameter includes a timer and a processing unit, wherein the variable physical parameter is characterized based on a physical parameter target state. The timer senses a clock time to generate a sensed signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement value application range. The processing unit is coupled to the timer, obtains a measurement value in response to the sensed signal, and causes the variable physical parameter to be in the physical parameter target state under a condition that the processing unit determines that the clock time application interval in which the clock time currently resides is by checking a mathematical relationship between the measurement value and the measurement value application range.
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Description

Technical Field

[0001] This disclosure relates to a functional device, and more particularly to a functional device and method for controlling a variable physical parameter. Background Technology

[0002] A control device generates a control signal to control a physical parameter application unit included in a functional device. The functional device uses the control signal to control the physical parameter application unit. The physical parameter application unit can use at least one of mechanical energy, electrical energy, and light energy, and can be one of an electric motor for access control, a relay for electrical control, and an energy converter for energy conversion. To effectively control the physical parameter application unit, the functional device can obtain a measurement value provided based on a clock time. The functional device may require an improved mechanism to effectively use the measurement value and thereby effectively control the physical parameter application unit.

[0003] U.S. Patent Publication No. 2015 / 0357887A1 discloses a product specification setting device and a fan motor having the same. U.S. Patent Publication No. 7,411,505 B2 discloses a switch status and radio frequency identification tag. Summary of the Invention

[0004] One object of this disclosure is to provide a functional device for effectively controlling a variable physical parameter by means of a control signal and a measurement value provided according to a clock time.

[0005] One embodiment of this disclosure provides a functional device for controlling a variable physical parameter, wherein the variable physical parameter is characterized based on a target physical parameter state. The functional device includes a timer and a processing unit. The timer senses a clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement application range. The processing unit, coupled to the timer, responds to the sensing signal to obtain a measurement value, and, upon determining that the clock time has entered the clock time application interval by examining a first mathematical relationship between the measurement value and the measurement value application range, positions the variable physical parameter in the target physical parameter state.

[0006] Another embodiment of this disclosure provides a method for controlling a variable physical parameter, wherein the variable physical parameter is characterized based on a target physical parameter state. The method includes the steps of: sensing a clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement application range; responding to the sensing signal to obtain a measurement value; and, under the condition that the clock time enters the clock time application interval, determined by examining a first mathematical relationship between the measurement value and the measurement application range, placing the variable physical parameter in the target physical parameter state.

[0007] Another embodiment of this disclosure provides a functional device for controlling a variable physical parameter, wherein the variable physical parameter is characterized based on a target physical parameter state. The functional device includes a timer and a processing unit. The timer senses a clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement application range. The processing unit, coupled to the timer, responds to the sensing signal to obtain a measurement value, and, upon determining that the clock time currently falls within the clock time application interval by examining a mathematical relationship between the measurement value and the measurement application range, positions the variable physical parameter in the target physical parameter state.

[0008] Another embodiment of this disclosure provides a method for controlling a variable physical parameter, wherein the variable physical parameter is characterized based on a target physical parameter state. The method includes the steps of: sensing a clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement application range; responding to the sensing signal to obtain a measurement value; and placing the variable physical parameter in the target physical parameter state, provided that the clock time is currently within the clock time application interval determined by examining a mathematical relationship between the measurement value and the measurement application range.

[0009] Simple Explanation of the Diagram

[0010] This disclosure can be further understood through a detailed explanation of the following diagrams:

[0011] Figure 1 : This is a schematic diagram of a control system in various embodiments of this disclosure.

[0012] Figure 2 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0013] Figure 3 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0014] Figure 4 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0015] Figure 5 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0016] Figure 6 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0017] Figure 7 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0018] Figure 8 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0019] Figure 9 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0020] Figure 10 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0021] Figure 11 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0022] Figure 12 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0023] Figure 13 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0024] Figure 14 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0025] Figure 15 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0026] Figure 16: for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0027] Figure 17 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0028] Figure 18 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0029] Figure 19 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0030] Figure 20 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0031] Figure 21 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0032] Figure 22 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0033] Figure 23 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0034] Figure 24 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0035] Figure 25 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0036] Figure 26 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0037] Figure 27 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0038] Figure 28 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0039] Figure 29 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0040] Figure 30 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0041] Figure 31 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0042] Figure 32 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0043] Figure 33 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0044] Figure 34 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0045] Figure 35 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0046] Figure 36 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0047] Figure 37 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0048] Figure 38 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0049] Figure 39 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0050] Figure 40 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0051] Figure 41 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0052] Figure 42 : for illustration Figure 1A schematic diagram of one embodiment of the control system described herein.

[0053] Figure 43 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0054] Figure 44 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0055] Figure 45 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0056] Figure 46 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0057] Figure 47 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0058] Figure 48 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0059] Figure 49 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0060] Figure 50 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0061] Figure 51 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0062] Figure 52 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0063] Figure 53 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0064] Figure 54 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0065] Figure 55 : for illustration Figure 1A schematic diagram of one embodiment of the control system described herein.

[0066] Figure 56 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0067] Figure 57 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0068] Figure 58 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0069] Figure 59 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein.

[0070] Figure 60 : for illustration Figure 1 A schematic diagram of one embodiment of the control system described herein. Detailed description

[0071] Please see Figure 1 This is a schematic diagram of a control system 901 in various embodiments of the present disclosure. The control system 901 includes a functional device 130 for controlling a variable physical parameter QU1A. For example, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1U. The functional device 130 includes a timer 342 and a processing unit 331. The timer 342 senses a clock time TH1A to generate a sensing signal SY81. For example, the clock time TH1A is characterized based on a clock time application interval HR1EU represented by a measurement application range RQ1U.

[0072] The processing unit 331 is coupled to the timer 342, responds to the sensing signal SY81 to obtain a measurement value NY81, and, under the condition that the processing unit 331 determines the clock time application interval HR1EU in which the clock time TH1A is currently located by checking a mathematical relationship KQ81 between the measurement value NY81 and the measurement value application range RQ1U, puts the variable physical parameter QU1A in the target physical parameter state JE1U.

[0073] Please see Figure 2 and Figure 3 . Figure 2 To illustrate Figure 1 A schematic diagram of an embodiment 9011 of the control system 901 described herein. Figure 3 To illustrate Figure 1A schematic diagram of an embodiment 9012 of the control system 901 described herein. (See diagram below.) Figure 2 and Figure 3 As shown, each of the embodiments 9011 and 9012 includes the functional device 130. In some embodiments, the functional device 130 further includes a receiving unit 337 coupled to the processing unit 331 and a physical parameter application unit 335 coupled to the processing unit 331. For example, the functional device 130 is a control target device. The physical parameter application unit 335 is a functional target.

[0074] The clock time TH1A is further characterized based on a clock time specified interval HR1ET, which is different from the clock time application interval HR1EU. For example, the clock time specified interval HR1ET is earlier than the clock time application interval HR1EU. After the receiving unit 337 receives a control signal SC81 from a control device 212, the processing unit 331 obtains the measured value NY81 in response to the sensing signal SY81 due to the control signal SC81. For example, the control signal SC81 serves to indicate the clock time specified interval HR1ET. The control device 212 is one of a mobile device and a remote control. When the control device 212 is the remote control, the control signal SC81 is an optical signal. The functional device 130 uses the timer 342 based on the control signal SC81 to check a time relationship KT81 between the clock time TH1A and the clock time application interval HR1EU. For example, the sensing signal SY81 is a clock time signal. The measured value NY81 is a specific count value. For example, if the control device 212 is the mobile device, the receiving unit 337 receives the control signal SC81 from the control device 212 via a wireless link, or the control signal SC81 is a radio signal.

[0075] The timer 342 conforms to a timer specification FT21. For example, the measurement application range RQ1U is defaulted based on the timer specification FT21. The timer specification FT21 includes a full measurement range representation FK8E for representing a full measurement range QK8E. For example, the measurement application range RQ1U is equal to a portion of the full measurement range QK8E. The measurement value NY81 is obtained in a specified measurement value format HH95. The measurement application range RQ1U is preset using the specified measurement value format HH95 based on the timer specification FT21. For example, the clock time application interval HR1EU is a clock time candidate interval. The measurement application range RQ1U is a measurement time value candidate range. The clock time specified interval HR1ET is a clock time target interval. The specified measurement value format HH95 is a specified count value format.

[0076] The measured value application range RQ1U has an application range limit value pair DQ1U, and is represented by a measured value application range code EL1U. For example, the application range limit value pair DQ1U is preset. The processing unit 331 responds to the control signal SC81 to obtain the application range limit value pair DQ1U and the measured value application range code EL1U, and checks the mathematical relationship KQ81 by comparing the measured value NY81 and the obtained application range limit value pair DQ1U. The physical parameter target state JE1U is represented by a physical parameter target state code EW1U. The physical parameter application unit 335 has the variable physical parameter QU1A. For example, the variable physical parameter QU1A is currently in a physical parameter application state JE1T. The application range limit value pair DQ1U is a candidate range limit value pair. The measured value application range code EL1U is a candidate range code for a measured time value.

[0077] In some embodiments, when the processing unit 331 determines the current clock time application interval HR1EU of the clock time TH1A by checking the mathematical relationship KQ81, the processing unit 331 obtains the physical parameter target state code EW1U based on the obtained measurement value application range code EL1U, and executes a physical parameter relationship check control GX8U based on the obtained physical parameter target state code EW1U to check a physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.

[0078] When the physical parameter application state JE1T differs from the physical parameter target state JE1U, and the processing unit 331 determines a physical parameter state difference DT81 between the physical parameter target state JE1U and the physical parameter application state JE1T by executing the physical parameter relationship check control GX8U, the processing unit 331 executes a signal generation control GY85 based on the obtained physical parameter target state code EW1U to generate an operation signal SG85, and transmits the operation signal SG85 to the physical parameter application unit 335. For example, the operation signal SG85 is one of a function signal and a control signal.

[0079] The physical parameter application unit 335 responds to the operation signal SG85 to cause the variable physical parameter QU1A to move from the physical parameter application state JE1T to the physical parameter target state JE1U. When the processing unit 331 determines the current clock time application interval HR1EU of the clock time TH1A by checking the mathematical relationship KQ81, the processing unit 331 executes a data storage control operation GM8U, which causes a clock time application interval code UF8U representing the determined clock time application interval HR1EU to be stored. The variable physical parameter QU1A and the clock time TH1A belong to a physical parameter type TU11 and a clock time type TQ11, respectively. For example, the physical parameter type TU11 is different from the clock time type TQ11.

[0080] Please see Figure 4 , Figure 5 and Figure 6 . Figure 4 To illustrate Figure 1 A schematic diagram of an embodiment 9013 of the control system 901 described herein. Figure 5 To illustrate Figure 1 A schematic diagram of an embodiment 9014 of the control system 901 is shown. Figure 6 To illustrate Figure 1 A schematic diagram of an embodiment 9015 of the control system 901 described herein. (See diagram below.) Figure 4 , Figure 5 and Figure 6As shown, each of the implementation structures 9013, 9014, and 9015 includes the functional device 130. The functional device 130 includes the processing unit 331, the timer 342 coupled to the processing unit 331, the receiving unit 337 coupled to the processing unit 331, an input unit 380 coupled to the processing unit 331, and the physical parameter application unit 335 coupled to the processing unit 331.

[0081] In some embodiments, the timer 342 conforms to a timer specification FT21. For example, the measurement application range RQ1U is defaulted to based on the timer specification FT21. The timer specification FT21 includes a full measurement range representation FK8E for representing a full measurement range QK8E. For example, the measurement application range RQ1U is equal to a first portion of the full measurement range QK8E. The processing unit 331 is configured to execute a measurement application function FA81 associated with the clock time application interval HR1EU. The measurement application function FA81 conforms to a measurement application function specification GAL8 associated with the clock time application interval HR1EU. For example, the measurement application function FA81 is a physical parameter control function. The measurement application function specification GAL8 is a physical parameter control function specification.

[0082] The processing unit 331 responds to the sensing signal SY81 to obtain the measurement value NY81 in a specified measurement value format HH95. For example, the specified measurement value format HH95 is characterized based on a specified number of bits UY95. The clock time TH1A is further characterized based on a nominal clock time interval HR1E. For example, the nominal clock time interval HR1E is represented by a nominal measurement value range HR1N and includes multiple different clock time reference intervals HR1E1, HR1E2, ... represented by multiple different measurement value reference ranges RQ11, RQ12, ... For example, the nominal clock time interval HR1E is uniformly divided to form the multiple different clock time reference intervals HR1E1, HR1E2, ... The nominal measurement value range HR1N is a nominal measurement time value range. The multiple different measurement value reference ranges RQ11, RQ12, ... are multiple measurement time value reference ranges, all of which are defaulted based on the timer specification FT21.

[0083] The plurality of different clock time reference intervals HR1E1, HR1E2, ... include the clock time application interval HR1EU. The measurement application function specification GAL8 includes the timer specification FT21, a rated clock time interval representation GA8HE for representing the rated clock time interval HR1E, and a clock time application interval representation GA8HU for representing the clock time application interval HR1EU.

[0084] The rated measurement range HR1N is equal to at least a second portion of the full measurement range QK8E, preset using the specified measurement format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a first data encoding rule WX8HE, has a rated range limit pair DP1A, and includes the multiple different measurement reference ranges RQ11, RQ12, ... represented by multiple different measurement reference range codes EL11, EL12, ... respectively.

[0085] For example, the rated range limit values ​​for DP1A are preset using the specified measurement value format HH95, and the plurality of different measurement value reference ranges RQ11, RQ12, ... include the measurement value application range RQ1U. The first data encoding rule WX8HE is used to convert the rated clock time interval representation GA8HE and is defined based on the timer specification FT21. For example, the plurality of different measurement value reference range codes EL11, EL12, ... are respectively multiple measurement time value reference range codes.

[0086] In some embodiments, the measurement application range RQ1U is represented by a measurement application range code EL1U included among the plurality of different measurement reference range codes EL11, EL12, ..., having an application range limit pair DQ1U, and is preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a second data encoding rule WX8HU. For example, the plurality of different measurement reference range codes EL11, EL12, ... are all defaulted based on the measurement application function specification GAL8. The second data encoding rule WX8HU is used to convert the clock time application interval representation GA8HU, and is defined based on the timer specification FT21. The application range limit pair DQ1U includes a first application range limit value DQ15 and a second application range limit value DQ16 relative to the first application range limit value DQ15.

[0087] The functional device 130 further includes a storage unit 332 coupled to the processing unit 331, and a trigger application unit 387 coupled to the processing unit 331. The storage unit 332 stores the default rated range limit value pair DP1A and a variable clock time interval code UF8A. When a trigger event JQ81 associated with the trigger application unit 387 occurs, the variable clock time interval code UF8A is equal to a specific measurement value range code EL14 selected from the plurality of different measurement value reference range codes EL11, EL12, ... For example, the specific measurement value range code EL14 indicates a specific clock time interval HR1E4 previously determined based on a sensing operation ZT81. The specific clock time interval HR1E4 is selected from the plurality of different clock time reference intervals HR1E1, HR1E2, ... The sensing operation ZT81, performed by the timer 342, is used to sense the clock time TH1A.

[0088] Prior to the occurrence of the trigger event JQ81, the specific measurement range code EL14 is assigned to the variable clock time interval code UF8A. The trigger application unit 387 responds to the trigger event JQ81 to cause the processing unit 331 to receive an operation request signal SJ81. Upon the occurrence of the trigger event JQ81, the processing unit 331 responds to the operation request signal SJ81 to obtain an operation reference data code XV81 from the storage unit 332, and performs a data determination AK8A using the operation reference data code XV81 by running a data determination program NK8A to determine the measurement application range code EL1U selected from the plurality of different measurement reference range codes EL11, EL12, ... in order to select the measurement application range RQ1U from the plurality of different measurement reference ranges RQ11, RQ12, ... The operation reference data code XV81 is the same as an allowed reference data code that is defaulted to based on the measurement application function specification GAL8. The data determination program NK8A is constructed based on the measurement application functional specification GAL8.

[0089] The data determination AK8A is one of a first data determination operation AK81 and a second data determination operation AK82. When the operation reference data code XV81 is obtained by accessing the variable clock time interval code UF8A stored in the storage unit 332, and is identical to the specific measurement range code EL14, the data determination AK8A of the first data determination operation AK81 determines the measurement application range code EL1U based on the obtained specific measurement range code EL14. For example, the first data determination operation AK81 is a first scientific calculation MC81 using the obtained specific measurement range code EL14. The determined measurement application range code EL1U may be the same as or different from the obtained specific measurement range code EL14.

[0090] When the operation reference data code XV81 is obtained by accessing the nominal range limit value pair DP1A stored in the storage unit 332, and it is obtained to be the same as the preset nominal range limit value pair DP1A, the data determination AK8A of the second data determination operation AK82 selects the measurement value application range code EL1U from the plurality of different measurement value reference range codes EL11, EL12, ... to determine the measurement value application range code EL1U by performing a second scientific calculation MD81 using the measurement value NY81 and the obtained nominal range limit value pair DP1A. For example, the second scientific calculation MD81 is performed based on a specific empirical formula XS81. The specific empirical formula XS81 is pre-defined based on the preset nominal range limit value pair DP1A and the plurality of different measurement value reference range codes EL11, EL12, ...

[0091] In some embodiments, the processing unit 331 obtains the application range boundary value pair DQ1U based on the determined measurement application range code EL1U, and checks the mathematical relationship KQ81 based on a data comparison CF81 between the measurement value NY81 and the obtained application range boundary value pair DQ1U to make a logical decision PQ81 as to whether the measurement value NY81 is within the selected measurement application range RQ1U. If the logical decision PQ81 is affirmative, the processing unit 331 determines the clock time application interval HR1EU in which the clock time TH1A is currently located.

[0092] When the specific measurement range code EL14 is different from the determined measurement application range code EL1U, and the processing unit 331 determines the clock time application interval HR1EU in which the clock time TH1A is currently located by making the logical decision PQ81, the processing unit 331 uses the storage unit 332 to assign the determined measurement application range code EL1U to the variable clock time interval code UF8A based on a code difference DG81 between the variable clock time interval code UF8A, which is equal to the specific measurement range code EL14, and the determined measurement application range code EL1U.

[0093] The input unit 380 includes a button 3801. The physical parameter application unit 335 has the variable physical parameter QU1A. The variable physical parameter QU1A is further characterized based on a specific physical parameter state JE16, which is different from the physical parameter target state JE1U. When the processing unit 331 causes the variable physical parameter QU1A to be in the physical parameter target state JE1U by checking the first mathematical relation KQ81, the input unit 380 receives a user input operation BQ82 using the button 3801. In response to the user input operation BQ82, the processing unit 331 transmits an operation signal SG87 to the physical parameter application unit 335 to cause the variable physical parameter QU1A to leave the physical parameter target state JE1U and enter the specific physical parameter state JE16.

[0094] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 A method ML80 for controlling a variable physical parameter QU1A is disclosed. For example, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1U. The method ML80 includes the following steps: sensing a clock time TH1A to generate a sensing signal SY81, wherein the clock time TH1A is characterized based on a clock time application interval HR1EU represented by a measurement application range RQ1U; obtaining a measurement value NY81 in response to the sensing signal SY81; and placing the variable physical parameter QU1A in the physical parameter target state JE1U, provided that the clock time TH1A is currently in the clock time application interval HR1EU, determined by examining a mathematical relationship KQ81 between the measurement value NY81 and the measurement application range RQ1U.

[0095] In some embodiments, the clock time TH1A is further characterized based on a clock time specified interval HR1ET, which is different from the clock time application interval HR1EU. For example, the clock time specified interval HR1ET is earlier than the clock time application interval HR1EU. The method ML80 further includes the following steps: providing a timer 342, wherein the step of sensing the clock time TH1A is performed by using the timer 342; and receiving a control signal SC81 from a control device 212, wherein the control signal SC81 serves to indicate the clock time specified interval HR1ET. The control device 212 is one of a mobile device and a remote controller. When the control device 212 is the remote controller, the control signal SC81 is an optical signal. For example, when the control device 212 is the mobile device, the control signal SC81 is received from the control device 212 via a wireless link, or the control signal SC81 is a radio signal.

[0096] The step of obtaining the measured value NY81 includes a sub-step: after the control signal SC81 is received, the measured value NY81 is obtained because the control signal SC81 responds to the sensing signal SY81. The timer 342 conforms to a timer specification FT21. For example, the measurement value application range RQ1U is defaulted based on the timer specification FT21. The timer specification FT21 includes a full measurement value range representation FK8E for representing a full measurement value range QK8E. For example, the measurement value application range RQ1U is equal to a portion of the full measurement value range QK8E. The measured value NY81 is obtained in a specified measurement value format HH95.

[0097] The measurement range RQ1U is preset based on the timer specification FT21 using the specified measurement format HH95. The measurement range RQ1U has an application range limit pair DQ1U and is represented by a measurement range code EL1U. For example, the application range limit pair DQ1U is preset. The method ML80 further includes the following steps: in response to the control signal SC81, obtaining the application range limit pair DQ1U and the measurement range code EL1U; and checking the mathematical relationship KQ81 by comparing the measurement value NY81 and the obtained application range limit pair DQ1U.

[0098] In some embodiments, the physical parameter target state JE1U is represented by a physical parameter target state code EW1U. The variable physical parameter QU1A is currently in a physical parameter application state JE1T. The step of placing the variable physical parameter QU1A in the physical parameter target state JE1U includes the following sub-steps: obtaining the physical parameter target state code EW1U based on the obtained measurement application range code EL1U, under the condition that the clock time application interval HR1EU in which the clock time TH1A is currently located is determined by checking the mathematical relationship KQ81; and based on the obtained physical parameter target state code EW1U, performing a physical parameter relationship check control GX8U for checking a physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.

[0099] The step of placing the variable physical parameter QU1A in the physical parameter target state JE1U further includes the following sub-steps: under the condition that the physical parameter application state JE1T is different from the physical parameter target state JE1U and a physical parameter state difference DT81 between the physical parameter target state JE1U and the physical parameter application state JE1T is determined by executing the physical parameter relationship check control GX8U, a signal generation control GY85 is executed based on the obtained physical parameter target state code EW1U to generate an operation signal SG85; and in response to the operation signal SG85, the variable physical parameter QU1A is moved from the physical parameter application state JE1T to the physical parameter target state JE1U.

[0100] The method ML80 further includes a step: under the condition that the clock time application interval HR1EU in which the clock time TH1A is currently located is determined by checking the mathematical relation KQ81, a data storage control operation GM8U is executed, the data storage control operation GM8U causing a clock time application interval code UF8U representing the determined clock time application interval HR1EU to be stored. The variable physical parameter QU1A and the clock time TH1A belong to a physical parameter type TU11 and a clock time type TQ11, respectively. For example, the physical parameter type TU11 is different from the clock time type TQ11.

[0101] In some embodiments, the method ML80 further includes the following steps: providing a timer 342, wherein the step of sensing the clock time TH1A is performed by using the timer 342; and performing a measurement application function FA81 associated with the clock time application interval HR1EU. The timer 342 conforms to a timer specification FT21. For example, the measurement value application range RQ1U is defaulted to based on the timer specification FT21. The timer specification FT21 includes a full measurement value range representation FK8E for representing a full measurement value range QK8E. For example, the measurement value application range RQ1U is equal to a first portion of the full measurement value range QK8E.

[0102] The measurement application function FA81 conforms to a measurement application function specification GAL8 associated with the clock time application interval HR1EU. The measured value NY81 is obtained in a specified measurement value format HH95. For example, the specified measurement value format HH95 is characterized based on a specified number of bits UY95. The clock time TH1A is further characterized based on a nominal clock time interval HR1E. For example, the nominal clock time interval HR1E is represented by a nominal measurement value range HR1N and includes multiple different clock time reference intervals HR1E1, HR1E2, ... represented by multiple different measurement value reference ranges RQ11, RQ12, ... respectively. The multiple different clock time reference intervals HR1E1, HR1E2, ... include the clock time application interval HR1EU.

[0103] The measurement application function specification GAL8 includes the timer specification FT21, a rated clock time interval representation GA8HE for representing the rated clock time interval HR1E, and a clock time application interval representation GA8HU for representing the clock time application interval HR1EU. The rated measurement value range HR1N is equal to at least a second portion of the full measurement value range QK8E, and is preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a first data encoding rule WX8HE. It has a rated range limit pair DP1A and includes multiple different measurement value reference ranges RQ11, RQ12, ... represented by multiple different measurement value reference range codes EL11, EL12, ... For example, the rated range limit pair DP1A is preset using the specified measurement value format HH95. The multiple different measurement value reference ranges RQ11, RQ12, ... include the measurement value application range RQ1U. The first data encoding rule WX8HE is used to convert the rated clock time interval representation GA8HE and is formulated based on the timer specification FT21.

[0104] The measurement application range RQ1U is represented by a measurement application range code EL1U included in the plurality of different measurement reference range codes EL11, EL12, ..., has an application range limit pair DQ1U, and is preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a second data encoding rule WX8HU. For example, the plurality of different measurement reference range codes EL11, EL12, ... are all defaulted to based on the measurement application function specification GAL8. The second data encoding rule WX8HU is used to convert the clock time application interval representation GA8HU and is defined based on the timer specification FT21. The application range limit pair DQ1U includes a first application range limit value DQ15 and a second application range limit value DQ16 relative to the first application range limit value DQ15.

[0105] In some embodiments, the method ML80 further includes the following steps: providing a storage space SU11; and storing in the storage space SU11 a preset nominal range limit value pair DP1A and a variable clock time interval code UF8A. When a trigger event JQ81 occurs, the variable clock time interval code UF8A is equal to a specific measurement value range code EL14 selected from the plurality of different measurement value reference range codes EL11, EL12, ... For example, the specific measurement value range code EL14 indicates a specific clock time interval HR1E4 previously determined based on a sensing operation ZT81. The specific clock time interval HR1E4 is selected from the plurality of different clock time reference intervals HR1E1, HR1E2, ... The sensing operation ZT81, performed by the timer 342, is used to sense the clock time TH1A.

[0106] Prior to the occurrence of the trigger event JQ81, the specific measurement range code EL14 is assigned to the variable clock time interval code UF8A. The method ML80 further includes the following steps: in response to the trigger event JQ81, receiving an operation request signal SJ81; under the condition that the trigger event JQ81 occurs, in response to the operation request signal SJ81, obtaining an operation reference data code XV81 from the storage space SU11; and performing a data determination AK8A using the operation reference data code XV81 by running a data determination program NK8A to determine the measurement application range code EL1U selected from the plurality of different measurement reference range codes EL11, EL12, ... to select the measurement application range RQ1U from the plurality of different measurement reference ranges RQ11, RQ12, ... The operation reference data code XV81 is the same as an allowed reference data code that is defaulted to based on the measurement application function specification GAL8.

[0107] In some embodiments, the data determination procedure NK8A is constructed based on the measurement application function specification GAL8. The data determination AK8A is one of a first data determination operation AK81 and a second data determination operation AK82. Under the condition that the operation reference data code XV81 is obtained by accessing the variable clock time interval code UF8A stored in the storage space SU11 and is identical to the specific measurement range code EL14, the data determination AK8A of the first data determination operation AK81 determines the measurement application range code EL1U based on the obtained specific measurement range code EL14. For example, the first data determination operation AK81 is a first scientific calculation MC81 using the obtained specific measurement range code EL14, and the determined measurement application range code EL1U may be the same as or different from the obtained specific measurement range code EL14.

[0108] When the operation reference data code XV81 is obtained by accessing the nominal range limit value pair DP1A stored in the storage space SU11, and it is obtained to be the same as the preset nominal range limit value pair DP1A, the data determination AK8A of the second data determination operation AK82 selects the measurement value application range code EL1U from the plurality of different measurement value reference range codes EL11, EL12, ... to determine the measurement value application range code EL1U by performing a second scientific calculation MD81 using the measurement value NY81 and the obtained nominal range limit value pair DP1A. For example, the second scientific calculation MD81 is performed based on a specific empirical formula XS81. The specific empirical formula XS81 is pre-defined based on the preset nominal range limit value pair DP1A and the plurality of different measurement value reference range codes EL11, EL12, ...

[0109] In some embodiments, the method ML80 further includes the following steps: obtaining the application range limit pair DQ1U based on the determined application range code EL1U of the measurement value; checking the mathematical relationship KQ81 based on a data comparison CF81 between the measurement value NY81 and the obtained application range limit pair DQ1U to make a logical decision PQ81 as to whether the measurement value NY81 is within the selected application range RQ1U of the measurement value; and determining the clock time application interval HR1EU in which the clock time TH1A is currently located if the logical decision PQ81 is positive.

[0110] The method ML80 further includes a step: under the condition that the specific measurement range code EL14 is different from the determined measurement application range code EL1U and the clock time application interval HR1EU in which the clock time TH1A is currently located is determined by making the logic decision PQ81, the determined measurement application range code EL1U is assigned to the variable clock time interval code UF8A based on a code difference DG81 between the variable clock time interval code UF8A, which is equal to the specific measurement range code EL14, and the determined measurement application range code EL1U.

[0111] The variable physical parameter QU1A is further characterized based on a specific physical parameter state JE16, which is different from the target physical parameter state JE1U. The method ML80 further includes the following steps: providing a button 3801; receiving a user input operation BQ82 using the button 3801 under the condition that the variable physical parameter QU1A is caused to be in the target physical parameter state JE1U by checking the first mathematical relation KQ81; and in response to the user input operation BQ82, generating an operation signal SG87 for causing the variable physical parameter QU1A to leave the target physical parameter state JE1U and enter the specific physical parameter state JE16.

[0112] Please see Figure 6 . Figure 6 To illustrate Figure 1 A schematic diagram of the implementation structure 9015 of the control system 901 described herein. (See diagram below.) Figure 6 As shown, the implementation structure 9015 includes a functional device 130 for controlling a variable physical parameter QU1A. For example, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1U. The functional device 130 includes a timer 342 and a processing unit 331. The timer 342 senses a clock time TH1A to generate a sensing signal SY81. For example, the clock time TH1A is characterized based on a clock time application interval HR1EU represented by a measurement application range RQ1U.

[0113] The processing unit 331 is coupled to the timer 342, responds to the sensing signal SY81 to obtain a measurement value NY81, and, under the condition that the processing unit 331 determines that the clock time TH1A enters the clock time application interval HR1EU by checking a first mathematical relationship KQ81 between the measurement value NY81 and the measurement value application range RQ1U, the variable physical parameter QU1A is placed in the physical parameter target state JE1U.

[0114] Please see Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6In some embodiments, the functional device 130 further includes a receiving unit 337 coupled to the processing unit 331 and a physical parameter application unit 335 coupled to the processing unit 331. The clock time TH1A is further characterized based on a clock time specified interval HR1ET, which is different from the clock time application interval HR1EU. For example, the clock time specified interval HR1ET is earlier than the clock time application interval HR1EU. After the receiving unit 337 receives a control signal SC81 from a control device 212, the processing unit 331 obtains a measurement value sequence JY81 containing the measurement value NY81 in response to the sensing signal SY81 due to the control signal SC81. For example, the control signal SC81 serves to indicate the clock time specified interval HR1ET. The control device 212 is one of a mobile device and a remote controller. When the control device 212 is the remote controller, the control signal SC81 is an optical signal. For example, if the control device 212 is the mobile device, the receiving unit 337 receives the control signal SC81 from the control device 212 via a wireless link, or the control signal SC81 is a radio signal.

[0115] The processing unit 331 makes a logical decision PR81 as to whether the clock time TH1A enters the clock time application interval HR1EU from the specified clock time interval HR1ET by checking a second mathematical relationship KQ82 between the measured value sequence JY81 and the measured value application range RQ1U. If the logical decision PR81 is affirmative, the entered clock time application interval HR1EU is determined. The timer 342 conforms to a timer specification FT21. For example, the measured value application range RQ1U is defaulted to based on the timer specification FT21. The timer specification FT21 includes a full measured value range representation FK8E for representing a full measured value range QK8E. For example, the measured value application range RQ1U is equal to a portion of the full measured value range QK8E.

[0116] The measured value NY81 is obtained in a specified measured value format HH95. The measured value application range RQ1U is preset in the specified measured value format HH95 based on the timer specification FT21. The measured value application range RQ1U has an application range limit value pair DQ1U and is represented by a measured value application range code EL1U. For example, the application range limit value pair DQ1U is preset. The processing unit 331 responds to the control signal SC81 to obtain the application range limit value pair DQ1U and the measured value application range code EL1U, and checks the first mathematical relationship KQ81 by comparing the measured value NY81 and the obtained application range limit value pair DQ1U. The physical parameter target state JE1U is represented by a physical parameter target state code EW1U.

[0117] In some embodiments, the physical parameter application unit 335 has the variable physical parameter QU1A. For example, the variable physical parameter QU1A is currently in a physical parameter application state JE1T. When the processing unit 331 determines the entered clock time application interval HR1EU by checking the first mathematical relationship KQ81, the processing unit 331 obtains the physical parameter target state code EW1U based on the obtained measurement application range code EL1U, and executes a physical parameter relationship check control GX8U based on the obtained physical parameter target state code EW1U to check a physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.

[0118] When the physical parameter application state JE1T differs from the physical parameter target state JE1U, and the processing unit 331 determines a physical parameter state difference DT81 between the physical parameter target state JE1U and the physical parameter application state JE1T by executing the physical parameter relationship check control GX8U, the processing unit 331 executes a signal generation control GY85 based on the obtained physical parameter target state code EW1U to generate an operation signal SG85, and transmits the operation signal SG85 to the physical parameter application unit 335. The physical parameter application unit 335 responds to the operation signal SG85 to cause the variable physical parameter QU1A to move from the physical parameter application state JE1T to the physical parameter target state JE1U.

[0119] Upon processing unit 331 determining the entered clock time application interval HR1EU by examining the first mathematical relation KQ81, processing unit 331 executes a data storage control operation GM8U, which causes a clock time application interval code UF8U representing the determined clock time application interval HR1EU to be stored. The variable physical parameter QU1A and the clock time TH1A belong to a physical parameter type TU11 and a clock time type TQ11, respectively. For example, the physical parameter type TU11 is different from the clock time type TQ11.

[0120] In some embodiments, the timer 342 conforms to a timer specification FT21. For example, the measurement application range RQ1U is defaulted to based on the timer specification FT21. The timer specification FT21 includes a full measurement range representation FK8E for representing a full measurement range QK8E. For example, the measurement application range RQ1U is equal to a first portion of the full measurement range QK8E. The processing unit 331 is configured to execute a measurement application function FA81 associated with the clock time application interval HR1EU. The measurement application function FA81 conforms to a measurement application function specification GAL8 associated with the clock time application interval HR1EU.

[0121] The processing unit 331 responds to the sensing signal SY81 to obtain the measurement value NY81 in a specified measurement value format HH95. For example, the specified measurement value format HH95 is characterized based on a specified number of bits UY95. The clock time TH1A is further characterized based on a nominal clock time interval HR1E. For example, the nominal clock time interval HR1E is represented by a nominal measurement value range HR1N and includes multiple different clock time reference intervals HR1E1, HR1E2, ... represented by multiple different measurement value reference ranges RQ11, RQ12, ... respectively. The multiple different clock time reference intervals HR1E1, HR1E2, ... include the clock time application interval HR1EU. The measurement application function specification GAL8 includes the timer specification FT21, a nominal clock time interval representation GA8HE for representing the nominal clock time interval HR1E, and a clock time application interval representation GA8HU for representing the clock time application interval HR1EU.

[0122] In some embodiments, the rated measurement range HR1N is equal to at least a second portion of the full measurement range QK8E, preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a first data encoding rule WX8HE, has a rated range limit pair DP1A, and includes multiple different measurement value reference ranges RQ11, RQ12, ... represented by multiple different measurement value reference range codes EL11, EL12, ... respectively. For example, the rated range limit pair DP1A is preset using the specified measurement value format HH95. The multiple different measurement value reference ranges RQ11, RQ12, ... include the measurement value application range RQ1U. The first data encoding rule WX8HE is used to convert the rated clock time interval representation GA8HE and is defined based on the timer specification FT21.

[0123] The measurement application range RQ1U is represented by a measurement application range code EL1U included in the plurality of different measurement reference range codes EL11, EL12, ..., has an application range limit pair DQ1U, and is preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a second data encoding rule WX8HU. For example, the plurality of different measurement reference range codes EL11, EL12, ... are all defaulted to based on the measurement application function specification GAL8. The second data encoding rule WX8HU is used to convert the clock time application interval representation GA8HU and is defined based on the timer specification FT21. The application range limit pair DQ1U includes a first application range limit value DQ15 and a second application range limit value DQ16 relative to the first application range limit value DQ15.

[0124] In some embodiments, the functional device 130 further includes a storage unit 332 coupled to the processing unit 331, and a trigger application unit 387 coupled to the processing unit 331. The storage unit 332 stores the default rated range limit value pair DP1A and a variable clock time interval code UF8A. When a trigger event JQ81 associated with the trigger application unit 387 occurs, the variable clock time interval code UF8A is equal to a specific measurement value range code EL14 selected from the plurality of different measurement value reference range codes EL11, EL12, ... For example, the specific measurement value range code EL14 indicates a specific clock time interval HR1E4 previously determined based on a sensing operation ZT81. The specific clock time interval HR1E4 is selected from the plurality of different clock time reference intervals HR1E1, HR1E2, ... The sensing operation ZT81, performed by the timer 342, is used to sense the clock time TH1A.

[0125] Prior to the occurrence of the trigger event JQ81, the specific measurement range code EL14 is assigned to the variable clock time interval code UF8A. The trigger application unit 387 responds to the trigger event JQ81 to cause the processing unit 331 to receive an operation request signal SJ81. Upon the occurrence of the trigger event JQ81, the processing unit 331 responds to the operation request signal SJ81 to obtain an operation reference data code XV81 from the storage unit 332, and performs a data determination AK8A using the operation reference data code XV81 by running a data determination program NK8A to determine the measurement application range code EL1U selected from the plurality of different measurement reference range codes EL11, EL12, ... in order to select the measurement application range RQ1U from the plurality of different measurement reference ranges RQ11, RQ12, ... The operation reference data code XV81 is the same as an allowed reference data code that is defaulted to based on the measurement application function specification GAL8. The data determination program NK8A is constructed based on the measurement application functional specification GAL8.

[0126] In some embodiments, the data determination AK8A is one of a first data determination operation AK81 and a second data determination operation AK82. When the operation reference data code XV81 is obtained by accessing the variable clock time interval code UF8A stored in the storage unit 332, and is identical to the specific measurement range code EL14, the data determination AK8A of the first data determination operation AK81 determines the measurement application range code EL1U based on the obtained specific measurement range code EL14. For example, the first data determination operation AK81 is a first scientific calculation MC81 using the obtained specific measurement range code EL14. The determined measurement application range code EL1U may be the same as or different from the obtained specific measurement range code EL14.

[0127] When the operation reference data code XV81 is obtained by accessing the nominal range limit value pair DP1A stored in the storage unit 332, and it is obtained to be the same as the preset nominal range limit value pair DP1A, the data determination AK8A of the second data determination operation AK82 selects the measurement value application range code EL1U from the plurality of different measurement value reference range codes EL11, EL12, ... to determine the measurement value application range code EL1U by performing a second scientific calculation MD81 using the measurement value NY81 and the obtained nominal range limit value pair DP1A. For example, the second scientific calculation MD81 is performed based on a specific empirical formula XS81. The specific empirical formula XS81 is pre-defined based on the preset nominal range limit value pair DP1A and the plurality of different measurement value reference range codes EL11, EL12, ...

[0128] In some embodiments, the processing unit 331 obtains the application range limit pair DQ1U based on the determined application range code EL1U of the measurement value, and checks the first mathematical relationship KQ81 based on a data comparison CF81 between the measurement value NY81 and the obtained application range limit pair DQ1U to make a logical decision PQ81 as to whether the measurement value NY81 is within the selected application range RQ1U of the measurement value. If the logical decision PQ81 is affirmative, the processing unit 331 determines the condition JP81. For example, the condition JP81 is a specific condition.

[0129] When the specific measurement range code EL14 is different from the determined measurement application range code EL1U, and the processing unit 331 determines the entered clock time application interval HR1EU by making the logic decision PQ81, the processing unit 331 uses the storage unit 332 to assign the determined measurement application range code EL1U to the variable clock time interval code UF8A based on a code difference DG81 between the variable clock time interval code UF8A, which is equal to the specific measurement range code EL14, and the determined measurement application range code EL1U.

[0130] The input unit 380 includes a button 3801. The physical parameter application unit 335 has the variable physical parameter QU1A. The variable physical parameter QU1A is further characterized based on a specific physical parameter state JE16, which is different from the physical parameter target state JE1U. When the processing unit 331 causes the variable physical parameter QU1A to be in the physical parameter target state JE1U by checking the first mathematical relation KQ81, the input unit 380 receives a user input operation BQ82 using the button 3801. In response to the user input operation BQ82, the processing unit 331 transmits an operation signal SG87 to the physical parameter application unit 335 to cause the variable physical parameter QU1A to leave the physical parameter target state JE1U and enter the specific physical parameter state JE16.

[0131] Please see Figure 6 A method ML82 for controlling a variable physical parameter QU1A is disclosed. For example, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1U. The method includes the following steps: sensing a clock time TH1A to generate a sensing signal SY81, wherein the clock time TH1A is characterized based on a clock time application interval HR1EU represented by a measurement application range RQ1U; obtaining a measurement value NY81 in response to the sensing signal SY81; and placing the variable physical parameter QU1A in the physical parameter target state JE1U under the condition that a case JP81 in which the clock time TH1A enters the clock time application interval HR1EU is determined by examining a first mathematical relationship KQ81 between the measurement value NY81 and the measurement application range RQ1U.

[0132] Please see Figure 7 and Figure 8 . Figure 7 To illustrate Figure 1 A schematic diagram of an embodiment 9016 of the control system 901 described herein. Figure 8This is a schematic diagram illustrating an embodiment 9017 of the control system 901 shown in Figure 1. Figure 7 and Figure 8 As shown, each of the embodiments 9016 and 9017 includes the control device 212 and the functional device 130. The functional device 130 includes the processing unit 331, the timer 342, the storage unit 332, the physical parameter application unit 335, and the receiving unit 337. The timer 342, the storage unit 332, the physical parameter application unit 335, and the receiving unit 337 are all controlled by the processing unit 331. For example, the physical parameter application unit 335 may be located either inside or outside the functional device 130.

[0133] In some embodiments, the receiving unit 337 receives from the control device 212 the control signal SC81, which serves to indicate the physical parameter application state JE1T. The processing unit 331 uses the control signal SC81 to position the variable physical parameter QU1A in the physical parameter application state JE1T. The clock time specified interval HR1ET is adjacent to the clock time application interval HR1EU and is represented by a measurement value specified range RQ1T, having a start limit time HR1ET1 and an end limit time HR1ET2 relative to the start limit time HR1ET1. The measurement value specified range RQ1T has a specified range limit value pair DQ1T and is represented by a measurement value specified range code EL1T. For example, the measurement value specified range RQ1T is a target range for a measurement time value. The measurement value specified range code EL1T is a target range code for a time value. The specified range limit value pair DQ1T is a target range limit value pair.

[0134] The control signal SC81 serves to indicate the specified clock time interval HR1ET. The processing unit 331 responds to the control signal SC81 to control the timer 342 so that the timer 342 measures the clock time TH1A according to the start limit time HR1ET1. For example, the processing unit 331 uses the control signal SC81 to ensure that the variable physical parameter QU1A is in the physical parameter application state JE1T within the specified clock time interval HR1ET.

[0135] In some embodiments, the physical parameter application state JE1T is represented by a physical parameter application state code EW1T. The control signal SC81 indicates the physical parameter application state JE1T by transmitting one of the physical parameter application state code EW1T and the measurement target range code EM1T, and indicates at least one of the clock time specified interval HR1ET and the measurement value specified range RQ1T by transmitting the specified range limit value pair DQ1T. The processing unit 331 obtains the physical parameter application state code EW1T and the specified range limit value pair DQ1T from the control signal SC81, and based on the obtained physical parameter application state code EW1T, sets the variable physical parameter QU1A to be in the physical parameter application state JE1T within the clock time specified interval HR1ET.

[0136] The functional device 130 includes the trigger application unit 387. The trigger event JQ81 occurs after the receiving unit 337 receives the control signal SC81 from the control device 212. For example, the trigger event JQ81 occurs in response to the control signal SC81. When the trigger event JQ81 occurs, the processing unit 331 responds to the trigger event JQ81 by performing a scientific calculation ME81 using the obtained specified range limit value pair DQ1T to obtain the application range limit value pair DQ1U, and by comparing the measured value NY81 and the obtained application range limit value pair DQ1U to check the mathematical relationship KQ81.

[0137] For example, the trigger event JQ81 is related to the trigger application unit 387 and is one of a trigger action event, a user input event, a signal input event, a state change event, and an integer overflow event. The trigger application unit 387 responds to the trigger event JQ81 by providing the operation request signal SJ81 to the processing unit 331, thereby causing the processing unit 331 to receive the operation request signal SJ81. The processing unit 331 responds to the operation request signal SJ81 by performing the scientific calculation ME81 to obtain the application range limit value pair DQ1U in order to check the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.

[0138] In some embodiments, the variable physical parameter QU1A is characterized based on multiple different physical parameter reference states JE11, JE12, ... . The multiple different physical parameter reference states JE11, JE12, ... include the physical parameter application state JE1T and the physical parameter target state JE1U, and are respectively represented by multiple different physical parameter reference state codes EW11, EW12, ... . For example, the physical parameter target state JE1U may be the same as or different from the physical parameter application state JE1T. The physical parameter target state JE1T is predetermined according to a physical parameter target range RD1ET. The physical parameter target state JE1U is predetermined according to a physical parameter target range RD1EU. The multiple different physical parameter reference states JE11, JE12, ... are predetermined according to multiple different physical parameter reference ranges RD1E1, RD1E2, ... . For example, the physical parameter target range RD1EU is a physical parameter candidate range.

[0139] The variable physical parameter QU1A is characterized based on the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... . The plurality of different physical parameter reference ranges RD1E1, RD1E2, ... are represented by a plurality of different measurement value reference ranges RN11, RN12, ... and include the physical parameter target range RD1ET and the physical parameter target range RD1EU. The physical parameter target range RD1ET and the physical parameter target range RD1EU are represented by a measurement value target range RN1T and a measurement value target range RN1U, respectively. The plurality of different measurement value reference ranges RN11, RN12, ... are represented by a plurality of different measurement value reference range codes EM11, EM12, ... and include the measurement value target range RN1T and the measurement value target range RN1U.

[0140] The plurality of different measurement value reference range codes EM11, EM12, ... include a measurement value target range code EM1T and a measurement value target range code EM1U, and are respectively identical to the plurality of different physical parameter reference status codes EW11, EW12, ... For example, the plurality of different physical parameter reference status codes EW11, EW12, ... include the physical parameter application status code EW1T and the physical parameter target status code EW1U, and are preset. The measurement value target range code EM1T and the measurement value target range code EM1U are respectively identical to the physical parameter application status code EW1T and the physical parameter target status code EW1U.

[0141] In some embodiments, the clock time specified interval HR1ET and the clock time application interval HR1EU each have a specified time length LH8T and an application time length LH8U that is the same as the specified time length LH8T. The specified time length LH8T and the application time length LH8U are represented by a measurement time length value VH8T and a measurement time length value VH8U, respectively. For example, the measurement time length value VH8U is the same as the measurement time length value VH8T. Both the measurement time length value VH8T and the measurement time length value VH8U are preset based on the timer specification FT21 using the specified measurement value format HH95.

[0142] The clock time application interval HR1EU has a relative interval position LE81 relative to the clock time designated interval HR1ET. The relative interval position LE81 is represented by a relative value VL81. For example, the relative value VL81 is equal to 1 when the clock time application interval HR1EU is adjacent to the clock time designated interval HR1ET. The processing unit 331 obtains the relative value VL81 in response to the operation request signal SJ81. The scientific calculation ME81 performs a subtraction operation ZF81 on the obtained designated range limit value pair DQ1T to obtain the measurement time length value VH8U, and uses the obtained relative value VL81, the obtained measurement time length value VH8U, and the obtained designated range limit value pair DQ1T to obtain the application range limit value pair DQ1U.

[0143] For example, the storage unit 332 stores the physical parameter application status code EW1T, which is stored based on the preset measurement value specified range code EL1T. The processing unit 331 obtains the measurement value specified range code EL1T by performing a scientific calculation MH81 using the obtained specified range limit value to DQ1T, and obtains the stored physical parameter application status code EW1T from the storage unit 332 based on the obtained measurement value specified range code EL1T.

[0144] Please see Figure 9 , Figure 10 , Figure 11 and Figure 12 . Figure 9 This is a schematic diagram of an embodiment 9018 of the control system 901 shown in Figure 1. Figure 10 To illustrate Figure 1 A schematic diagram of an embodiment 9019 of the control system 901 described herein. Figure 11 To illustrate Figure 1 A schematic diagram of an embodiment 9020 of the control system 901 described herein. Figure 12 To illustrate Figure 1 A schematic diagram of an embodiment 9021 of the control system 901 described herein. (See diagram below.) Figure 9 , Figure 10 , Figure 11 and Figure 12 As shown, each of the implementation structures 9018, 9019, 9020, and 9021 includes the control device 212 and the functional device 130. The functional device 130 includes the processing unit 331, the timer 342, the physical parameter application unit 335, and the storage unit 332. The timer 342, the physical parameter application unit 335, and the storage unit 332 are all controlled by the processing unit 331.

[0145] In some embodiments, the timer 342 is controlled by the processing unit 331 and is used to measure the clock time TH1A. The timer 342 is configured to conform to the timer specification FT21. The variable physical parameter QU1A is related to the clock time TH1A. The clock time TH1A is characterized based on a plurality of different clock time reference intervals HR1E1, HR1E2, ... The plurality of different clock time reference intervals HR1E1, HR1E2, ... are represented by a plurality of different measurement value reference ranges RQ11, RQ12, ... and are arranged based on a default time reference interval order QB81. The plurality of different measurement value reference ranges RQ11, RQ12, ... are arranged based on the default time reference interval order QB81. For example, the plurality of different measurement value reference ranges RQ11, RQ12, ... are a plurality of time value reference ranges.

[0146] The multiple different measurement value reference ranges RQ11, RQ12, ... are all preset using a specified measurement value format HH95 based on the timer specification FT21, and are represented by multiple different measurement value reference range codes EL11, EL12, ... For example, the specified measurement value format HH95 is a specified count value format. The multiple different measurement value reference range codes EL11, EL12, ... are multiple measurement time value reference range codes. The storage unit 332 has multiple different memory locations YS81, YS82, ..., and stores multiple physical parameter specified range codes UQ11, UQ12, ... in the multiple different memory locations YS81, YS82, ... For example, the multiple physical parameter specified range codes UQ11, UQ12, ... are equal to multiple physical parameter specified status codes. The multiple physical parameter specified status codes represent multiple physical parameter specified states related to the variable physical parameter QU1A.

[0147] The plurality of different clock time reference intervals HR1E1, HR1E2, ... are each represented by a plurality of clock time reference interval codes. For example, the plurality of clock time reference interval codes are configured to be equal to the plurality of different measurement value reference range codes EL11, EL12, ... respectively. Therefore, the plurality of different measurement value reference range codes EL11, EL12, ... are configured to indicate the plurality of different clock time reference intervals HR1E1, HR1E2, ... respectively. For example, the specified measurement value format HH95 is characterized based on the specified number of bits UY95.

[0148] The plurality of different measurement value reference range codes EL11, EL12, ... include a measurement value specified range code EL1T and a measurement value application range code EL1U. The plurality of different clock time reference intervals HR1E1, HR1E2, ... include a clock time specified interval HR1ET and a clock time application interval HR1EU. The measurement value specified range code EL1T and the measurement value application range code EL1U are configured to indicate the clock time specified interval HR1ET and the clock time application interval HR1EU, respectively. The plurality of different measurement value reference ranges RQ11, RQ12, ... include a measurement value specified range RQ1T and a measurement value application range RQ1U. The clock time specified interval HR1ET and the clock time application interval HR1EU are represented by the measurement value specified range RQ1T and the measurement value application range RQ1U, respectively.

[0149] In some embodiments, the plurality of different memory locations YS81, YS82, ... are identified based on the plurality of different measurement value reference range codes EL11, EL12, ... For example, the plurality of different memory locations YS81, YS82, ... are identified based on the plurality of memory addresses AS81, AS82, ... or are identified by the plurality of memory addresses AS81, AS82, ... The plurality of memory addresses AS81, AS82, ... are preset based on the plurality of different measurement value reference range codes EL11, EL12, ...

[0150] For example, the clock time TH1A is further characterized based on a rated clock time interval HR1E. The rated clock time interval HR1E includes the plurality of different clock time reference intervals HR1E1, HR1E2, ..., and is represented by a rated measurement range HR1N. The rated measurement range HR1N includes the plurality of different measurement reference ranges RQ11, RQ12, ..., and is preset using the specified measurement value format HH95 based on the rated clock time interval HR1E and the timer specification FT21. For example, the rated clock time interval HR1E is equal to 24 hours. The rated measurement range HR1N is a rated time value range.

[0151] For example, the measurement application function specification GAL8 includes a rated clock time interval representation GA8HE and a clock time reference interval representation GA8HR. The rated clock time interval representation GA8HE is used to represent the rated clock time interval HR1E. The clock time reference interval representation GA8HR is used to represent the plurality of different clock time reference intervals HR1E1, HR1E2, ... The rated measurement value range HR1N is equal to at least a second portion of the full measurement value range QK8E and is preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and the first data encoding rule WX8HE. The first data encoding rule WX8HE is used to convert the rated clock time interval representation GA8HE and is defined based on the timer specification FT21. For example, the rated measurement value range HR1N is preset by performing a data encoding operation ZX8HE using the first data encoding rule WX8HE.

[0152] The multiple different measurement reference ranges RQ11, RQ12, ... are preset using the specified measurement value format HH95 based on one of the timer specification FT21, the measurement application function specification GAL8, and a data encoding rule WX8HR. The data encoding rule WX8HR is used to convert the clock time reference interval representation GA8HR and is defined based on the timer specification FT21. For example, the multiple different measurement reference ranges RQ11, RQ12, ... are preset by performing a data encoding operation ZX8HR using the data encoding rule WX8HR.

[0153] In some embodiments, the plurality of physical parameter specified range codes UQ11, UQ12, ... are configured to be stored based on the plurality of different measurement value reference range codes EL11, EL12, ... respectively, and include a physical parameter target range code UQ1T and a physical parameter target range code UQ1U. The plurality of physical parameter specified range codes UQ11, UQ12, ... are all selected from the plurality of different physical parameter reference status codes EW11, EW12, ... For example, the physical parameter target range code UQ1U is a physical parameter candidate range code.

[0154] The physical parameter target range code UQ1T represents a physical parameter target range RD1ET that the variable physical parameter QU1A is expected to be within the specified clock time interval HR1ET, and is configured to be stored in a memory location YS8T based on the measurement value specified range code EL1T. The memory location YS8T is identified based on a memory address AS8T. The multiple different measurement value reference range codes EL11, EL12, ... are all defaulted based on the measurement application function specification GAL8. For example, the physical parameter target range code UQ1T is equal to the preset physical parameter application status code EW1T. The physical parameter target range code UQ1U is the same as the physical parameter application status code EW1U.

[0155] The physical parameter target range code UQ1U represents a physical parameter target range RD1EU in which the variable physical parameter QU1A is expected to be within the clock time application interval HR1EU, and is configured to be stored in a memory location YS8U based on the measurement application range code EL1U. The memory location YS8U is identified based on a memory address AS8U. Both the physical parameter target range RD1ET and the physical parameter target range RD1EU are selected from the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... For example, the clock time application interval HR1EU is adjacent to the clock time specified interval HR1ET. The physical parameter target range code UQ1U is the same as the physical parameter target status code EW1U. The physical parameter target range RD1EU has a default physical parameter target range limit ZD1U1 and a default physical parameter target range limit ZD1U2 relative to the default physical parameter target range limit ZD1U1.

[0156] In some embodiments, when the receiving unit 337 receives the control signal SC81, the physical parameter target range code UQ1T is equal to the preset physical parameter application status code EW1T. The control signal SC81 transmits the default measurement value specified range code EL1T. The processing unit 331 obtains the transmitted measurement value specified range code EL1T from the control signal SC81, obtains the memory address AS8T based on the obtained measurement value specified range code EL1T, and accesses the physical parameter target range code UQ1T stored in the memory location YS8T based on the obtained memory address AS8T to obtain one of the physical parameter target range code UQ1T and the preset physical parameter application status code EW1T. For example, there is a preset time interval between the clock time specified interval HR1ET and the clock time application interval HR1EU.

[0157] For example, when the physical parameter target range code UQ1T is equal to the preset physical parameter application state code EW1T, the control signal SC81 indirectly indicates the physical parameter application state JE1T by transmitting the preset measurement value specified range code EL1T. When the receiving unit 337 receives the control signal SC81, the variable physical parameter QU1A is in a physical parameter application state JE1L. The processing unit 331 executes a physical parameter relationship check control GX8T based on the obtained physical parameter application state code EW1T to check a physical parameter relationship KD9T between the variable physical parameter QU1A and the physical parameter application state JE1T. For example, the control signal SC81 indicates at least one of the clock time specified interval HR1ET and the measurement value specified range RQ1T by transmitting the preset measurement value specified range code EL1T, and indicates the physical parameter application state JE1T by indicating the clock time specified interval HR1ET.

[0158] In some embodiments, when the physical parameter application state JE1L is different from the physical parameter application state JE1T, and the processing unit 331 determines a physical parameter state difference DT8T between the physical parameter application states JE1T and JE1L by executing the physical parameter relationship check control GX8T, the processing unit 331 executes a signal generation control GY81 based on the obtained physical parameter application state code EW1T to generate an operation signal SG81, and transmits the operation signal SG81 to the physical parameter application unit 335. The physical parameter application unit 335 responds to the operation signal SG81 to cause the variable physical parameter QU1A to enter the physical parameter application state JE1T from the physical parameter application state JE1L. For example, the variable physical parameter QU1A enters the physical parameter application state JE1T by entering the physical parameter target range RD1ET.

[0159] The processing unit 331 executes a data storage control operation GM8T based on the obtained measurement value specifying range code EL1T. The data storage control operation GM8T causes a clock time application interval code UF8T representing the clock time specifying interval HR1ET to be stored. For example, the clock time application interval code UF8T is the same as the obtained measurement value specifying range code EL1T. The data storage control operation GM8T assigns the clock time application interval code UF8T to the variable clock time interval code UF8A using the storage unit 332.

[0160] For example, the storage unit 332 stores a variable physical parameter range code UN8A. When the physical parameter application state JE1L differs from the physical parameter application state JE1T, and the processing unit 331 determines the physical parameter state difference DT8T by executing the physical parameter relationship check control GX8T, the processing unit 331 uses the storage unit 332 to assign one of the obtained physical parameter target range code UQ1T and the obtained physical parameter application state code EW1T to the variable physical parameter range code UN8A.

[0161] In some embodiments, the timer 342 is configured to represent the clock time specified interval HR1ET by using the measured value specified range RQ1T, and is configured to represent the clock time application interval HR1EU by using the measured value application range RQ1U. The control signal SC81 further transmits the measured time length value VH8T representing the specified time length LH8T and a clock reference time value NR81 representing a clock reference time TR81. For example, the clock reference time TR81 is close to a current time. For example, the time difference between the clock reference time TR81 and the current time is within a preset time length. The clock reference time value NR81 is preset in the specified measured value format HH95 based on the clock reference time TR81 and the timer specification FT21.

[0162] The specified range RQ1T of the measured value has the specified range limit value pair DQ1T. The specified range limit value pair DQ1T includes a specified range limit value DQ13 and a specified range limit value DQ14 relative to the specified range limit value DQ13. For example, the specified range limit value DQ13 and the specified range limit value DQ14 are an initial range limit value and an end range limit value, respectively. The specified range limit value DQ13 is equal to the clock reference time value NR81.

[0163] The control signal SC81 transmits control information CG81. The control information CG81 includes the measurement value specified range code EL1T, the clock reference time value NR81, and the measurement time length value VH8T. For example, the measurement application function specification GAL8 includes a clock time representation GA8TR. The clock time representation GA8TR is used to represent the clock reference time TR81. The clock reference time value NR81 is preset in the specified measurement value format HH95 based on the clock time representation GA8TR, the timer specification FT21, and a data encoding operation ZX8TR for converting the clock time representation GA8TR.

[0164] The control device 212 includes an operation unit 297. The processing unit 331 responds to the control signal SC81 to obtain the measurement value specification range code EL1T, the clock reference time value NR81, and the clock reference time value NR81 from the control signal SC81. For example, the operation unit 297 is configured to obtain the default measurement value specification range code EL1T, the preset clock reference time value NR81, and the preset measurement time length value VH8T, and output the control signal SC81 that transmits the control information CG81 based on the obtained clock reference time value NR81, the obtained measurement value specification range code EL1T, and the obtained measurement time length value VH8T.

[0165] In some embodiments, the processing unit 331 causes the timer 342 to start within a startup time TT82 based on the obtained clock reference time value NR81, thereby causing the timer 342 to generate a sensing signal SY80 by sensing the clock time TH1A within the startup time TT82. For example, the sensing signal SY80 is a clock time signal. The sensing signal SY80 is an initial time signal and transmits a measurement value NY80 in the specified measurement value format HH95. For example, the measurement value NY80 is an initial count value. For example, the measurement value NY80 is equal to the clock reference time value NR81.

[0166] For example, the timer 342 is configured to have a variable count value NY8A. When the receiving unit 337 receives the control signal SC81 from the control device 212, which transmits the clock reference time value NR81, the processing unit 331 starts the timer 342 based on the obtained clock reference time value NR81 to perform a counting operation BD81 for the measurement application function FA81 to change the variable count value NY8A. The variable count value NY8A is configured to be equal to the measured value NY80 within the start time TT82 and is provided in the specified measured value format HH95. For example, the measured value NY80 is configured to be the same as the obtained clock reference time value NR81.

[0167] When the variable physical parameter QU1A is configured based on the control signal SC81 to be within the target range RD1ET of the physical parameter, the processing unit 331 reaches an operation time TY81 based on the counting operation BD81. Within the operation time TY81, the timer 342 senses the clock time TH1A to cause the variable count value NY8A to equal a measured value NY81, thereby generating a sensing signal SY81 that transmits the measured value NY81. For example, the operation time TY81 is a specified time.

[0168] For example, the triggering application unit 387 responds to the triggering event JQ81 to provide the operation request signal SJ81 to the processing unit 331, thereby causing the processing unit 331 to receive the operation request signal SJ81. The processing unit 331 responds to the operation request signal SJ81 to obtain the measurement value NY81 from the sensing signal SY81 in the specified measurement value format HH95 within the operation time TY81, and within the operation time TY81, obtains or determines the measurement value application range code EL1U by performing a scientific calculation MH85 using the obtained measurement value specified range code EL1T to check the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.

[0169] In some embodiments, the specified measurement range RQ1T has the specified range limit pair DQ1T. The specified range limit pair DQ1T includes the specified range limit value DQ13 and the specified range limit value DQ14 relative to the specified range limit value DQ13. Both the specified measurement range RQ1T and the specified range limit pair DQ1T are preset using the specified measurement value format HH95 based on the clock time specified interval HR1ET and the timer specification FT21. The specified measurement application range RQ1U has the application range limit pair DQ1U. The application range limit pair DQ1U includes the first application range limit value DQ15 and the second application range limit value DQ16 relative to the first application range limit value DQ15. Both the specified measurement application range RQ1U and the application range limit pair DQ1U are preset using the specified measurement value format HH95 based on the clock time application interval HR1EU and the timer specification FT21.

[0170] For example, the measurement application function specification GAL8 includes a clock time specified interval representation GA8HT and a clock time application interval representation GA8HU. The clock time specified interval representation GA8HT is used to represent the clock time specified interval HR1ET. The clock time application interval representation GA8HU is used to represent the clock time application interval HR1EU. The specified measurement value range RQ1T and the specified range limit pair DQ1T are both preset using the specified measurement value format HH95 based on the clock time specified interval representation GA8HT, the timer specification FT21, and a data encoding operation ZX8HT for converting the clock time specified interval representation GA8HT. The specified measurement value application range RQ1U and the application range limit pair DQ1U are both preset using the specified measurement value format HH95 based on the clock time application interval representation GA8HU, the timer specification FT21, and a data encoding operation ZX8HU for converting the clock time application interval representation GA8HU.

[0171] In some embodiments, the processing unit 331 determines the measurement application range code EL1U within the operation time TY81 based on the control signal SC81 to check the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U. For example, the processing unit 331 determines the measurement application range code EL1U within the operation time TY81 based on the control signal SC81 in response to the operation request signal SJ81. The processing unit 331 determines the relative value VL81 within the operation time TY81 and obtains the application range limit value pair DQ1U by performing a scientific calculation ME85 using the determined relative value VL81, the obtained measurement time length value VH8T, and the obtained clock reference time value NR81.

[0172] For example, the processing unit 331 responds to the operation request signal SJ81 to determine the relative value VL81 within the operation time TY81, and determines the measurement value application range code EL1U based on the determined relative value VL81 and the obtained measurement value specification range code EL1T. The processing unit 331 checks the mathematical relationship KQ81 based on the data comparison CF81 between the obtained measurement value NY81 and the obtained application range limit value DQ1U to make the logical decision PQ81 whether the measurement value NY81 is within the selected measurement value application range RQ1U. If the logical decision PQ81 is affirmative, the processing unit 331 determines the clock time application interval HR1EU in which the clock time TH1A is currently located.

[0173] If the obtained measurement value specified range code EL1T is different from the determined measurement value application range code EL1U, and the processing unit 331 determines the current clock time application interval HR1EU of the clock time TH1A by making the logic decision PQ81, the processing unit 331 executes the data storage control operation GM8U based on a one-code difference DG83 between the variable clock time interval code UF8A, which is equal to the measurement value specified range code EL1T, and the determined measurement value application range code EL1U. The data storage control operation GM8U uses the storage unit 332 to assign the determined measurement value application range code EL1U to the variable clock time interval code UF8A.

[0174] In some embodiments, when the trigger event JQ81 occurs, the physical parameter target range code UQ1U is equal to the preset physical parameter target status code EW1U. Under the condition that the trigger event JQ81 occurs, the processing unit 331 responds to the operation request signal SJ81 to determine the measurement value application range code EL1U based on the control signal SC81. When the processing unit 331 determines, by making the logical decision PQ81, that the clock time TH1A is currently in the clock time application interval HR1EU, the processing unit 331 obtains the memory address AS8U based on the determined measurement value application range code EL1U, and accesses the physical parameter target range code UQ1U stored in the memory location YS8U based on the obtained memory address AS8U to obtain one of the physical parameter target range code UQ1U and the preset physical parameter target status code EW1U.

[0175] For example, when the processing unit 331 checks the mathematical relationship KQ81, the variable physical parameter QU1A is in the physical parameter application state JE1T. The processing unit 331 executes the physical parameter relationship check control GX8U based on the obtained physical parameter target state code EW1U to check the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U. If the physical parameter application state JE1T is different from the physical parameter target state JE1U, and the processing unit 331 determines the physical parameter state difference DT81 between the physical parameter target state JE1U and the physical parameter application state JE1T by executing the physical parameter relationship check control GX8U, the processing unit 331 executes the signal generation control GY85 based on the obtained physical parameter target state code EW1U to generate the operation signal SG85, and transmits the operation signal SG85 to the physical parameter application unit 335.

[0176] The physical parameter application unit 335 responds to the operation signal SG85 to cause the variable physical parameter QU1A to move from the physical parameter application state JE1T to the physical parameter target state JE1U. For example, the variable physical parameter QU1A enters the physical parameter target state JE1U by entering the physical parameter target range RD1EU. For example, when the physical parameter application state JE1T is different from the physical parameter target state JE1U and the processing unit 331 determines the physical parameter state difference DT81 by executing the physical parameter relationship check control GX8U, the processing unit 331 uses the storage unit 332 to assign one of the obtained physical parameter target range code UQ1U and the obtained physical parameter target state code EW1U to the variable physical parameter range code UN8A.

[0177] In some embodiments, the control device 212 includes the operation unit 297 and a state change detector 475 coupled to the operation unit 297. The plurality of physical parameter specification range codes UQ11, UQ12, ... belong to a physical parameter specification range code type TS81. The physical parameter specification range code type TS81 is identified by a physical parameter specification range code type identifier HS81. The physical parameter specification range code type identifier HS81 is preset. The memory address AS8T is preset based on the preset physical parameter specification range code type identifier HS81 and the preset measurement value specification range code EL1T. The memory address AS8U is preset based on the preset physical parameter specification range code type identifier HS81 and the preset measurement value application range code EL1U. For example, the state change detector 475 is used to cause the operation unit 297 to transmit the control signal SC81 to the receiving unit 337.

[0178] Before the receiving unit 337 receives the control signal SC81, the operation unit 297 is configured to obtain the default physical parameter target range code UQ1T, the preset physical parameter specified range code type identifier HS81, and the preset measurement value specified range code EL1T, and to obtain the memory address AS8T in advance based on the obtained physical parameter specified range code type identifier HS81 and the obtained measurement value specified range code EL1T. The operation unit 297 provides a write request message WS8T to the receiving unit 337 based on the obtained physical parameter target range code UQ1T and the obtained memory address AS8T. The write request message WS8T includes the obtained physical parameter target range code UQ1T and the obtained memory address AS8T.

[0179] For example, before the receiving unit 337 receives the control signal SC81, the receiving unit 337 receives the write request information WS8T from the operation unit 297. The processing unit 331 obtains the physical parameter target range code UQ1T and the memory address AS8T contained in the received write request information WS8T, and uses the storage unit 332 to store the obtained physical parameter target range code UQ1T at the memory location YS8T based on the obtained physical parameter target range code UQ1T and the obtained memory address AS8T.

[0180] Before the receiving unit 337 receives the control signal SC81, the operation unit 297 is configured to obtain the physical parameter target range code UQ1U and the preset measurement value application range code EL1U, and to obtain the memory address AS8U in advance based on the obtained physical parameter specified range code type identifier HS81 and the obtained measurement value application range code EL1U. The processing unit 331 provides a write request information WS8U to the receiving unit 337 based on the obtained physical parameter target range code UQ1U and the obtained memory address AS8U. The write request information WS8U includes the obtained physical parameter target range code UQ1U and the obtained memory address AS8U.

[0181] For example, before the receiving unit 337 receives the control signal SC81, the receiving unit 337 receives the write request information WS8U from the operation unit 29. The processing unit 331 obtains the physical parameter target range code UQ1U and the memory address AS8U contained in the received write request information WS8U, and uses the storage unit 332 to store the obtained physical parameter target range code UQ1U at the memory location YS8U based on the obtained physical parameter target range code UQ1U and the obtained memory address AS8U.

[0182] Please see Figure 13 and Figure 14 . Figure 13 To illustrate Figure 1 A schematic diagram of an embodiment 9022 of the control system 901 described herein. Figure 14 To illustrate Figure 1 A schematic diagram of an embodiment 9023 of the control system 901 is shown. Figure 13 and Figure 14 As shown, each of the embodiments 9022 and 9023 includes the control device 212 and the functional device 130. The functional device 130 includes an operation unit 397, a physical parameter application unit 335, a storage unit 332, and a sensing unit 334 coupled to the processing unit 331. The operation unit 397 includes the processing unit 331, the receiving unit 337, and the timer 342. The receiving unit 337, the timer 342, the physical parameter application unit 335, the storage unit 332, and the sensing unit 334 are all controlled by the processing unit 331.

[0183] In some embodiments, the variable physical parameter QU1A is further characterized based on a physical parameter target range RD1ET and a physical parameter application range RD1EL, which is different from the physical parameter target range RD1ET. The physical parameter application range RD1EL is represented by a measurement value application range RN1L. The sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN81. When the receiving unit 337 receives the control signal SC81, which indicates the physical parameter target range RD1ET, the processing unit 331 responds to the sensing signal SN81 to obtain a measurement value VN81. For example, the measurement value VN81 is a physical parameter measurement value. When the receiving unit 337 receives the control signal SC81, the sensing unit 334 senses the variable physical parameter QU1A to generate the sensing signal SN81.

[0184] When the processing unit 331 determines the current physical parameter application range RD1EL of the variable physical parameter QU1A by checking a mathematical relationship KV81 between the measured value VN81 and the measured value application range RN1L, the processing unit 331 causes the variable physical parameter QU1A to enter the physical parameter target range RD1ET based on the control signal SC81. For example, when the processing unit 331 determines that the variable physical parameter QU1A is currently in the physical parameter application range RD1EL, the processing unit 331 transmits an operation signal SG81 to the physical parameter application unit 335 based on the control signal SC81. The operation signal SG81 is used to cause the variable physical parameter QU1A to enter the physical parameter target range RD1ET from the current physical parameter application range RD1EL of the variable physical parameter QU1A.

[0185] In some embodiments, the clock time specified interval HR1ET is related to the physical parameter target range RD1ET. The control signal SC81 indicates the physical parameter target range RD1ET by indicating the clock time specified interval HR1ET. For example, the control signal SC81 indicates the physical parameter target range RD1ET by transmitting the measurement value specified range code EL1T to enable the processing unit 331 to obtain the physical parameter application status code EW1T. When the processing unit 331 determines that the variable physical parameter QU1A is currently in the physical parameter application range RD1EL, the processing unit 331 determines a range difference DB81 between the physical parameter target range RD1ET and the physical parameter application range RD1EL based on the control signal SC81 and transmits the operation signal SG81 to the physical parameter application unit 335.

[0186] The physical parameter application state JE1T is predetermined based on the physical parameter target range RD1ET. The operation signal SG81 is used to cause the variable physical parameter QU1A to enter the physical parameter application state JE1T. The clock time specified interval HR1ET is adjacent to the clock time application interval HR1EU. When the clock time TH1A is within the clock time specified interval HR1ET, the variable physical parameter QU1A is in one of the physical parameter target range RD1ET and the physical parameter application state JE1T. The processing unit 331 responds to the control signal SC81 to start the timer 342 so that the timer 342 senses the clock time TH1A within the clock time specified interval HR1ET and within the clock time application interval HR1EU.

[0187] In some embodiments, the target range of physical parameters RD1ET is represented by a target range of measured values ​​RN1T. The control signal SC81 indicates the target range of physical parameters RD1ET by indicating the target range of measured values ​​RN1T. For example, the processing unit 331 determines a range difference DS81 between the target range of measured values ​​RN1T and the applied range of measured values ​​RN1L based on the control signal SC81 to determine the range difference DB81. For example, the processing unit 331 determines the range difference DB81 by executing the physical parameter relationship check control GX8T. The physical parameter relationship check control GX8T includes a check operation BV81 for checking the mathematical relationship KV81 between the measured value VN81 and the applied range of measured values ​​RN1L.

[0188] For example, the sensing unit 334, coupled to the operation unit 397, senses the variable physical parameter QU1A to generate the sensing signal SN81. When the operation unit 397 receives the control signal SC81, the operation unit 397 responds to the sensing signal SN81 to obtain the measured value VN81. When the operation unit 397 determines the current application range RD1EL of the physical parameter QU1A by checking the mathematical relationship KV81, the operation unit 397 causes the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter based on the control signal SC81.

[0189] In some embodiments, the physical parameter target range RD1EU is represented by a measured value target range RN1U. The control signal SC81 causes the functional device 130 to execute the physical parameter relationship check control GX8U. Upon the occurrence of the trigger event JQ81 or the acquisition of the measured value NY81 by the processing unit 331, the sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN85. The processing unit 331 responds to the sensing signal SN85 to acquire a measured value VN85. Upon the determination or acquisition of the physical parameter target range code UQ1U based on the control signal SC81, the processing unit 331 performs a check operation BV86 based on the determined physical parameter target range code UQ1U to check a mathematical relationship KV86 between the measured value VN85 and a measured value indication range RN1G. For example, the measured value indication range RN1G is equal to one of the measured value target range RN1T and the measured value target range RN1U.

[0190] Under the condition that the processing unit 331 determines a range difference DB86 between the physical parameter target range RD1ET and the physical parameter target range RD1EU based on the inspection operation BV86, the processing unit 331 executes the signal generation control GY85 to generate the operation signal SG85 based on the determined physical parameter target range code UQ1U. The operation signal SG85 is used to control the physical parameter application unit 335 to cause the variable physical parameter QU1A to enter the physical parameter target state JE1U within the clock time application interval HR1EU.

[0191] For example, the processing unit 331 determines the range difference DB86 by executing the physical parameter relationship check control GX8U. The physical parameter relationship check control GX8U includes the check operation BV86 for checking the mathematical relationship KV86 between the measured value VN85 and the measured value indication range RN1G. The processing unit 331 checks a physical parameter relationship KD8U between the variable physical parameter QU1A and the physical parameter target range RD1EU by checking the mathematical relationship KV86.

[0192] Please see Figure 15 and Figure 16 . Figure 15 To illustrate Figure 1 A schematic diagram of an embodiment 9024 of the control system 901 described herein. Figure 16 To illustrate Figure 1 A schematic diagram of an embodiment 9025 of the control system 901 is shown below. Please refer to the attached diagram for further details. Figure 13 .like Figure 15 and Figure 16 As shown, each of the embodiments 9024 and 9025 includes the control device 212 and the functional device 130. In some embodiments, the sensing unit 334 is configured to conform to a sensor specification FU11 associated with the application range RN1L of the measured value. For example, the sensor specification FU11 includes a sensor measurement range representation GW8R for representing a sensor measurement range RB8E and a sensor sensitivity representation GW81 for representing a sensor sensitivity YW81. The sensor sensitivity YW81 is related to a sensing signal generation HF81 performed by the sensing unit 334. The measured value VN81 is obtained by the processing unit 331 in a specified measurement value format HH81.

[0193] The target measurement range RN1T and the application range RN1L are both preset using the specified measurement value format HH81 based on one of the sensor measurement range representation GW8R and the sensor specification FU11. For example, the target measurement range RN1T and the application range RN1L are both preset using the specified measurement value format HH81 based on the sensor measurement range representation GW8R and the sensor sensitivity representation GW81. The target measurement range RN1T and the application range RN1L each have a target range limit pair DN1T and an application range limit pair DN1L, respectively. The control signal SC81 transmits the target range limit pair DN1T, the application range limit pair DN1L, and a handle CC1T. For example, the handle CC1T is preset based on a specified physical parameter QD1T within the target physical parameter range RD1ET. The control signal SC81, by transmitting the target range limit value pair DN1T, serves to indicate at least one of the target range of the measured value RN1T and the target range of the physical parameter RD1ET.

[0194] In some embodiments, the functional device 130 further includes a transmission unit 384 coupled to the processing unit 331. The transmission unit 384 is controlled by the processing unit 331. The processing unit 331 obtains the application range limit value pair DN1L from the control signal SC81, and checks the mathematical relationship KV81 by comparing the measured value VN81 with the obtained application range limit value pair DN1L to make a logical decision PB81 as to whether the measured value VN81 is within the application range RN1L of the measured value. If the logical decision PB81 is affirmative, the processing unit 331 determines the current application range RD1EL of the physical parameter QU1A.

[0195] The processing unit 331 obtains the target range limit value pair DN1T from the control signal SC81. When the processing unit 331 determines that the variable physical parameter QU1A is currently within the physical parameter application range RD1EL, the processing unit 331 checks a range relationship KE8A between the measured value target range RN1T and the measured value application range RN1L by comparing the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L to make a logical decision PY81 regarding whether the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L are equal.

[0196] If the logic determines PY81 is negative, the processing unit 331 identifies the range relationship KE8A as a range disparity relationship to determine the range difference DS81. The processing unit 331 obtains the handle CC1T from the control signal SC81. If the processing unit 331 determines the range difference DS81, the processing unit 331 executes a signal generation control GY81 based on the obtained handle CC1T to generate an operation signal SG81 for causing the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter. For example, the operation signal SG81 is one of a function signal and a control signal.

[0197] In some embodiments, after the processing unit 331 executes the signal generation control GY81 within an operation time TF81, the sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN82. Within a specified time TG82 following the operation time TF81, the processing unit 331 responds to the sensing signal SN82 to obtain a measurement value VN82 in the specified measurement value format HH81. Within the specified time TG82, the processing unit 331 determines, by comparing the measurement value VN82 with the obtained target range limit value DN1T, that the variable physical parameter QU1A is currently within the target physical parameter range RD1ET. Based on the measurement value VN82, the processing unit 331 causes the transmission unit 384 to transmit a control response signal SE81 in response to the control signal SC81 to the control device 212, and executes a data storage control operation GU81.

[0198] The control response signal SE81 transmits the measured value VN82. The data storage control operation GU81 causes a physical parameter target range code UN8T representing the determined physical parameter target range RD1ET to be recorded. For example, the data storage control operation GU81 is a safeguard operation. The processing unit 331 assigns the physical parameter target range code UN8T to the variable physical parameter range code UN8A in the storage space SU11 by executing the data storage control operation GU81.

[0199] The timer 342 is used to measure the clock time TH1A in a timed operation mode WU21. The variable physical parameter QU1A is related to a variable time length LF8A. For example, the timer 342 is used to measure the variable time length LF8A in a timed operation mode WU11, which is different from the timed operation mode WU21. The variable time length LF8A is characterized based on a reference time length LJ8V. The reference time length LJ8V is represented by a measured time length value CL8V. For example, the measured time length value CL8V is defaulted based on the timer specification FT21.

[0200] In some embodiments, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1V and a physical parameter target state JE1W that is different from the physical parameter target state JE1V. The physical parameter target state JE1V may be the same as or different from the physical parameter target state JE1U. The physical parameter target state JE1V is represented by a physical parameter target state code EW1V. When the variable physical parameter QU1A is in the physical parameter target state JE1U within the clock time application interval HR1EU, the receiving unit 337 receives a control signal SC88 from the control device 212. The control signal SC88 transmits the measurement time length value CL8V and the physical parameter target state code EW1V. The plurality of different physical parameter reference states JE11, JE12, ... include the physical parameter target state JE1V and the physical parameter target state JE1W.

[0201] The processing unit 331 obtains the measurement time length value CL8V and the physical parameter target status code EW1V from the control signal SC88, stops the timer 342 in response to the control signal SC88, restarts the timer 342 based on the obtained measurement time length value CL8V, and operates the timer 342 in the timing operation mode WU11 by restarting the timer 342. The timer 342 is restarted to start an application time length LT8V that matches the reference time length LJ8V, and in the timing operation mode WU11, it experiences the application time length LT8V by executing a counting operation BC8V for the application time length LT8V to reach a specific time TJ8T.

[0202] The processing unit 331, based on the obtained physical parameter target state code EW1V, causes the variable physical parameter QU1A to be in the physical parameter target state JE1V within the application time length LT8V. When the processing unit 331 reaches the specific time TJ8T, the processing unit 331 executes a signal generation operation BY89 within the specific time TJ8T to cause the variable physical parameter QU1A to leave the physical parameter target state JE1V and enter the physical parameter target state JE1W.

[0203] For example, the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... include a physical parameter target range RD1EV and a physical parameter target range RD1EW that is different from the physical parameter target range RD1EV. The physical parameter target state JE1V and the physical parameter target state JE1W are predetermined based on the physical parameter target range RD1EV and the physical parameter target range RD1EW, respectively. For example, the processing unit 331 generates an operation signal SG89 by executing the signal generation operation BY89 to cause the variable physical parameter QU1A to leave the physical parameter target state JE1V and enter the physical parameter target state JE1W, and transmits the operation signal SG89 to the physical parameter application unit 335.

[0204] In some embodiments, when the variable physical parameter QU1A is in the target physical parameter state JE1U within the clock time application interval HR1EU by checking the mathematical relationship KQ81, the receiving unit 337 receives a control signal SC8H from the control device 212. When the receiving unit 337 receives the control signal SC8H, the sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN8H. When the receiving unit 337 receives the control signal SC8A, the timer 342 senses the clock time TH1A to generate a sensing signal SY8H.

[0205] The processing unit 331 responds to the sensing signal SN8H to obtain a measurement value VN8H in the specified measurement value format HH81, and responds to the sensing signal SY8H to obtain a measurement value NY8H in the specified measurement value format HH95. The processing unit 331 responds to the control signal SC8H to use the measurement values ​​VN8H and NY8H to cause the transmission unit 384 to transmit a control response signal SE8H in response to the control signal SC8H to the control device 212. The control response signal SE8H transmits the measurement values ​​VN8H and NY8H, and is used by the control device 212 to perform a specific practical operation related to at least one of the variable physical parameter QU1A and the clock time TH1A. For example, the control device 212 receives the control response signal SE8H, obtains the measured value VN8A and the measured value NY8H from the received control response signal SE8H, displays a measurement information LZ8H related to the variable physical parameter QU1A based on the obtained measured value VN8H, and displays a measurement information LX8H related to the clock time TH1A based on the obtained measured value NY8H.

[0206] Please see Figure 17 , Figure 18 , Figure 19 , Figure 20 and Figure 21 . Figure 17 To illustrate Figure 1 A schematic diagram of an embodiment 9026 of the control system 901 is shown. Figure 18 To illustrate Figure 1 A schematic diagram of an embodiment 9027 of the control system 901 is shown. Figure 19 To illustrate Figure 1 A schematic diagram of an embodiment 9028 of the control system 901 is shown. Figure 20 To illustrate Figure 1 A schematic diagram of an embodiment 9029 of the control system 901 is shown. Figure 21 To illustrate Figure 1 A schematic diagram of an embodiment 9030 of the control system 901 described herein. (See diagram below.) Figure 17 , Figure 18 , Figure 19 , Figure 20 and Figure 21 As shown, each of the implementation structures 9026, 9027, 9028, 9029 and 9030 includes the control device 212 and the functional device 130.

[0207] Please refer to the following additional information. Figure 13In some embodiments, the functional device 130 includes the operation unit 397, the physical parameter application unit 335, the storage unit 332, and the sensing unit 334 coupled to the processing unit 331. The operation unit 397 includes the processing unit 331, the timer 342, the receiving unit 337, an input unit 380 coupled to the processing unit 331, a display unit 382 coupled to the processing unit 331, and a transmission unit 384 coupled to the processing unit 331. The physical parameter application unit 335, the storage unit 332, the sensing unit 334, the timer 342, the receiving unit 337, the input unit 380, the display unit 382, ​​and the transmission unit 384 are all controlled by the processing unit 331. For example, the physical parameter application unit 335 may be disposed inside or outside the functional device 130.

[0208] The processing unit 331 is configured to execute a measurement application function FA81 related to the physical parameter application range RD1EL, and includes an output component 338 coupled to the physical parameter application unit 335. The measurement application function FA81 is configured to conform to a measurement application function specification GAL8 related to the physical parameter application range RD1EL. The sensing unit 334 is configured to conform to a sensor specification FU11 related to the measurement value application range RN1L. For example, the sensor specification FU11 includes a sensor measurement range representation GW8R for representing a sensor measurement range RB8E, and a sensor sensitivity representation GW81 for representing a sensor sensitivity YW81. The sensor sensitivity YW81 is related to a sensing signal generation HF81 performed by the sensing unit 334.

[0209] When the receiving unit 337 receives the control signal SC81 from a control device 212, the processing unit 331 responds to the sensing signal SN81 to obtain the measurement value VN81 in a specified measurement value format HH81. For example, the specified measurement value format HH81 is characterized based on a specified number of bits UY81. For example, when the receiving unit 337 receives the control signal SC81, the sensing unit 334 senses the variable physical parameter QU1A to perform the sensing signal generation HF81, which is dependent on the sensor sensitivity YW81, and the sensing signal generation HF81 is used to generate the sensing signal SN81. When the processing unit 331 determines the range difference DS81 based on the control signal SC81, the processing unit 331 uses the output component 338 to output the operation signal SG81 for causing the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter.

[0210] The variable physical parameter QU1A is further characterized based on a nominal physical parameter range RD1E. For example, the nominal physical parameter range RD1E is represented by a nominal measurement range RD1N, and includes multiple different physical parameter reference ranges RD1E1, RD1E2, ... represented by multiple different measurement reference ranges RN11, RN12, ... . The target physical parameter range RD1ET and the application physical parameter range RD1EL are both included in the multiple different physical parameter reference ranges RD1E1, RD1E2, ... . The measurement application function specification GAL8 includes the sensor specification FU11, a nominal physical parameter range representation GA8E for representing the nominal physical parameter range RD1E, and a physical parameter application range representation GA8L for representing the application physical parameter range RD1EL.

[0211] The rated measurement range RD1N is preset using the specified measurement value format HH81 based on the rated physical parameter range representation GA8E, the sensor measurement range representation GW8R, and a data encoding operation ZX81 for converting the rated physical parameter range representation GA8E. It has a rated range limit pair DD1A and includes multiple different measurement value reference ranges RN11, RN12, ... represented by multiple different measurement value reference range codes EM11, EM12, ... For example, the rated range limit pair DD1A is preset using the specified measurement value format HH81. The multiple different measurement value reference ranges RN11, RN12, ... include the measurement value target range RN1T and the measurement value application range RN1L. Both the rated measurement range RD1N and the rated range limit pair DD1A are preset using the specified measurement value format HH81 based on one of the sensor measurement range representation GW8R and the sensor specification FU11.

[0212] In some embodiments, the target range RN1T of the measured value is represented by a target range code EM1T included among the plurality of different measurement reference range codes EM11, EM12, ...; thereby, the target range code EM1T is configured to indicate the target range RD1ET of the physical parameter. For example, the plurality of different measurement reference range codes EM11, EM12, ... are all defaulted based on the measurement application function specification GAL8. The control signal SC81, by transmitting the target range code EM1T, serves to indicate at least one of the target range RN1T of the measured value and the target range RD1ET of the physical parameter. For example, the target range code EM1T of the measured value is equal to the physical parameter application status code EW1T.

[0213] The measurement application range RN1L is represented by a measurement application range code EM1L included among the plurality of different measurement reference range codes EM11, EM12, ..., and has an application range limit pair DN1L; thereby, the measurement application range code EM1L is configured to indicate the physical parameter application range RD1EL. For example, the application range limit pair DN1L is preset using the specified measurement value format HH81 based on the physical parameter application range representation GA8L, the sensor measurement range representation GW8R, and a data encoding operation ZX82 for converting the physical parameter application range representation GA8L. The measurement application range RN1L is preset using the specified measurement value format HH81 based on the physical parameter application range representation GA8L, the sensor measurement range representation GW8R, and the data encoding operation ZX82.

[0214] In some embodiments, the storage unit 332 stores the default rated range limit value pair DD1A and a variable physical parameter range code UN8A. The control signal SC81 further transmits the rated range limit value pair DD1A. When the receiving unit 337 receives the control signal SC81, the variable physical parameter range code UN8A is equal to a specific measurement value range code EM14 selected from the plurality of different measurement value reference range codes EM11, EM12, ...

[0215] For example, the specific measurement range code EM14 indicates a specific physical parameter range RD1E4 previously determined by the processing unit 331 based on a sensing operation ZS81. The specific physical parameter range RD1E4 is selected from the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... . The sensing operation ZS81 performed by the sensing unit 334 is used to sense the variable physical parameter QU1A. Before the receiving unit 337 receives the control signal SC81, the specific measurement range code EM14 is assigned to the variable physical parameter range code UN8A.

[0216] For example, before the receiving unit 337 receives the control signal SC81, the processing unit 331 obtains the specific measurement range code EM14. Given that the processing unit 331 determines the specific physical parameter range RD1E4 based on the sensing operation ZS81 before the receiving unit 337 receives the control signal SC81, the processing unit 331 assigns the obtained specific measurement range code EM14 to the variable physical parameter range code UN8A using the storage unit 332. The specific measurement range code EM14 represents a specific measurement range configured to represent the specific physical parameter range RD1E4. The specific measurement range is preset using the specified measurement value format HH81 based on one of the sensor measurement range representation GW8R and the sensor specification FU11. For example, the sensing unit 334 generates a sensing signal by performing the sensing operation ZS81, which is dependent on the sensor sensitivity YW81.

[0217] Before the receiving unit 337 receives the control signal SC81, the processing unit 331 receives the sensing signal, obtains a specific measurement value in the specified measurement value format HH81 in response to the sensing signal, and performs a specific check operation to check a mathematical relationship between the specific measurement value and the specific measurement value range. When the processing unit 331 determines, based on the specific check operation, that the variable physical parameter QU1A falls within the specific physical parameter range RD1E4, the processing unit 331 uses the storage unit 332 to assign the obtained specific measurement value range code EM14 to the variable physical parameter range code UN8A. The processing unit 331 determines whether to use the storage unit 332 to change the variable physical parameter range code UN8A in response to a specific sensing operation for sensing the variable physical parameter QU1A. For example, the specific sensing operation is performed by the sensing unit 334.

[0218] In some embodiments, when the receiving unit 337 receives the control signal SC81, the processing unit 331 responds to the control signal SC81 to obtain an operation reference data code XU81 from one of the control signal SC81 and the storage unit 332, and performs a data determination AA8A using the operation reference data code XU81 by running a data determination program NA8A to determine the measurement value application range code EM1L selected from the plurality of different measurement value reference range codes EM11, EM12, ... in order to select the measurement value application range RN1L from the plurality of different measurement value reference ranges RN11, RN12, ...

[0219] The operation reference data code XU81 is the same as a default permissible reference data code based on the measurement application function specification GAL8. The data determination procedure NA8A is constructed based on the measurement application function specification GAL8. The data determination AA8A is one of a data determination operation AA81 and a data determination operation AA82. When the operation reference data code XU81 is obtained by accessing the variable physical parameter range code UN8A stored in the storage unit 332, and is identical to the specific measurement value range code EM14, the data determination AA8A of the data determination operation AA81 determines the measurement value application range code EM1L based on the obtained specific measurement value range code EM14. For example, the determined measurement value application range code EM1L may be the same as or different from the obtained specific measurement value range code EM14.

[0220] When the operation reference data code XU81 is obtained from one of the control signal SC81 and the storage unit 332 with the same nominal range limit value for DD1A as the preset nominal range limit value, the data determination operation AA8A of the data determination operation AA82 selects the measurement value application range code EM1L from the plurality of different measurement value reference range codes EM11, EM12, ... to determine the measurement value application range code EM1L by performing a scientific calculation MR81 using the measured value VN81 and the obtained nominal range limit value for DD1A. For example, the scientific calculation MR81 is performed based on a specific empirical formula XR81. The specific empirical formula XR81 is predetermined based on the preset nominal range limit value for DD1A and the plurality of different measurement value reference range codes EM11, EM12, ... For example, the specific empirical formula XR81 is predetermined based on the measurement application function specification GAL8.

[0221] In some embodiments, the processing unit 331 obtains the application range limit pair DN1L based on the determined application range code EM1L of the measurement value, and checks the mathematical relationship KV81 based on a data comparison CD81 between the measurement value VN81 and the obtained application range limit pair DN1L to make a logical decision PB81 as to whether the measurement value VN81 is within the selected application range RN1L of the measurement value. If the logical decision PB81 is affirmative, the processing unit 331 determines the current application range RD1EL of the physical parameter QU1A.

[0222] The processing unit 331 obtains the target range code EM1T of the measured value from the control signal SC81. When the processing unit 331 determines that the variable physical parameter QU1A is currently within the application range RD1EL of the physical parameter, the processing unit 331 checks a range relationship KE8A between the target range RN1T and the application range RN1L of the measured value by comparing the obtained target range code EM1T and the determined application range code EM1L of the measured value to make a logical decision PZ81 on whether the obtained target range code EM1T and the determined application range code EM1L are equal. If the logical decision PZ81 is negative, the processing unit 331 identifies the range relationship KE8A as a range disparity relationship to determine the range difference DS81.

[0223] For example, when processing unit 331 determines that the variable physical parameter QU1A is currently within the physical parameter application range RD1EL, processing unit 331 checks a range relationship KE9A between the physical parameter target range RD1ET and the physical parameter application range RD1EL by comparing the obtained measurement value target range code EM1T and the determined measurement value application range code EM1L to make a logical decision PZ91 on whether the physical parameter target range RD1ET and the physical parameter application range RD1EL are equal. If the logical decision PZ91 is negative, processing unit 331 identifies the range relationship KE9A as a range dissimilarity relationship to determine the range difference DB81. If the logical decision PZ81 is negative, then the logical decision PZ91 is negative.

[0224] In some embodiments, the application range limit value pair DN1L includes an application range limit value DN15 of the application range RN1L of the measured value and an application range limit value DN16 relative to the application range limit value DN15. The functional device 130 further includes a physical parameter application unit 335 coupled to the output component 338. The physical parameter application unit 335 has the variable physical parameter QU1A. For example, the sensing unit 334 is coupled to the physical parameter application unit 335. The processing unit 331 uses the output component 338 to cause the physical parameter application unit 335 to perform a specific functional operation ZH81 associated with the variable physical parameter QU1A. For example, the specific functional operation ZH81 is used to cause a trigger event EQ81 to occur, and is a spatial motion operation. The control device 212 responds to the trigger event EQ81 by outputting the control signal SC81.

[0225] For example, when the application range limit value DN15 is different from the application range limit value DN16 and the measured value VN81 is between the application range limit values ​​DN15 and DN16, the processing unit 331 makes the logical decision PB81 to be affirmative by comparing the measured value VN81 with the obtained application range limit value pair DN1L. When the application range limit value DN15, the application range limit value DN16, and the measured value VN81 are equal, the processing unit 331 makes the logical decision PB81 to be affirmative by comparing the measured value VN81 with the obtained application range limit value pair DN1L.

[0226] The measurement application function specification GAL8 further includes a physical parameter representation GA8T1. The physical parameter representation GA8T1 is used to represent a specified physical parameter QD1T within the target range RD1ET of the physical parameter. The storage unit 332 has a memory location YM8L and a memory location YX8T different from the memory location YM8L. The application range limit value pair DN1L is stored in the memory location YM8L, and a handle CC1T is stored in the memory location YX8T.

[0227] For example, the memory location YM8L is identified based on the preset measurement value application range code EM1L. The memory location YX8T is identified based on the preset measurement value target range code EM1T. The handle CC1T is preset based on the physical parameter representation GA8T1 and a data encoding operation ZX91 for converting the physical parameter representation GA8T1. For example, the application range limit value pair DN1L and the handle CC1T are stored in the storage unit 332 based on the preset measurement value application range code EM1L and the preset measurement value target range code EM1T, respectively.

[0228] In some embodiments, the processing unit 331 executes a data acquisition AD8A using the determined measurement application range code EM1L to obtain the application range limit value pair DN1L by running a data acquisition program ND8A. For example, the data acquisition AD8A is one of a data acquisition operation AD81 and a data acquisition operation AD82. The data acquisition program ND8A is constructed based on the measurement application function specification GAL8. The data acquisition operation AD81 uses the storage unit 332 to access the application range limit value pair DN1L stored in the memory location YM8L based on the determined measurement application range code EM1L to obtain the application range limit value pair DN1L.

[0229] The data acquisition operation AD82 relies on one of the control signal SC81 and the storage unit 332 to obtain the rated range limit value pair DD1A, and obtains the application range limit value pair DN1L by performing a scientific calculation MZ81 using the determined measurement application range code EM1L and the obtained rated range limit value pair DD1A. For example, the rated range limit value pair DD1A includes a rated range limit value DD11 of the rated measurement range RD1N and a rated range limit value DD12 relative to the rated range limit value DD11, and is preset using the specified measurement value format HH81 based on the rated physical parameter range representation GA8E, the sensor measurement range representation GW8R, and the data encoding operation ZX81.

[0230] Upon determining the range difference DS81, the processing unit 331 uses the storage unit 332 to access the handle CC1T stored in the memory location YX8T based on the obtained target range code EM1T of the measured value, and executes a signal generation control GY81 for the measurement application function FA81 to control the output component 338 based on the accessed handle CC1T. The output component 338 responds to the signal generation control GY81 by executing a signal generation operation BY81 for the measurement application function FA81 to generate an operation signal SG81, which controls the physical parameter application unit 335 to cause the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter.

[0231] For example, the operation unit 397 includes the processing unit 331, the receiving unit 337, the timer 342, and the output component 338 coupled to the processing unit 331. The output component 338 is located outside the processing unit 331 and is controlled by the processing unit 331. The processing unit 331 executes the signal generation control GY81 for controlling the output component 338 to provide a control signal SF81 to the output component 338. The output component 338 responds to the control signal SF81 to execute the signal generation operation BY81 for the measurement application function FA81 to generate the operation signal SG81 and transmits the operation signal SG81 to the physical parameter application unit 335.

[0232] In some embodiments, the control device 212 is an external device. The plurality of different measurement reference ranges RN11, RN12, ... have a total reference range number NT81. The total reference range number NT81 is defaulted based on the measurement application functional specification GAL8. The processing unit 331 responds to the control signal SC81 to obtain the total reference range number NT81. The scientific calculation MR81 further uses the obtained total reference range number NT81. The scientific calculation MZ81 further uses the obtained total reference range number NT81. For example, the total reference range number is greater than or equal to 2. For example, the total reference range number NT11 ≥ 3; the total reference range number NT11 ≥ 4; the total reference range number NT11 ≥ 5; the total reference range number NT11 ≥ 6; and the total reference range number NT11 ≤ 255.

[0233] The physical parameter application unit 335 responds to the operation signal SG81 to change the variable physical parameter QU1A from a specific physical parameter QU17 to a specific physical parameter QU18. For example, the specific physical parameter QU17 is within the physical parameter application range RD1EL; and the specific physical parameter QU18 is within the physical parameter target range RD1ET. The measurement application function specification GAL8 further includes a physical parameter candidate range representation GA8T for representing the physical parameter target range RD1ET.

[0234] The target measurement range RN1T is a first part of the nominal measurement range RD1N and has a target range limit pair DN1T. For example, the target range limit pair DN1T is preset using the specified measurement value format HH81 based on the physical parameter candidate range representation GA8T, the sensor measurement range representation GW8R, and a data encoding operation ZX83 for converting the physical parameter candidate range representation GA8T. The target measurement range RN1T is preset using the specified measurement value format HH81 based on the physical parameter candidate range representation GA8T, the sensor measurement range representation GW8R, and the data encoding operation ZX83. The measurement application range RN1L is a second part of the nominal measurement range RD1N.

[0235] The target range of the physical parameter RD1ET and the application range of the physical parameter RD1EL are either separate or adjacent. When the target range of the physical parameter RD1ET and the application range of the physical parameter RD1EL are separate, the target range of the measured value RN1T and the application range of the measured value RN1L are separate. When the target range of the physical parameter RD1ET and the application range of the physical parameter RD1EL are adjacent, the target range of the measured value RN1T and the application range of the measured value RN1L are adjacent.

[0236] For example, the measurement application range code EM1L is configured to be equal to an integer. The rated range limit value DD12 is greater than the rated range limit value DD11. The rated range limit value DD12 and the rated range limit value DD11 have a relative value VA11 relative to the rated range limit value DD11. The relative value VA11 is equal to a calculated result of subtracting the rated range limit value DD11 from the rated range limit value DD12. For example, the application range limit value pair DN1L is preset based on a ratio of the rated range limit value DD11, the rated range limit value DD12, the integer, and the relative value VA11 to the total number of reference ranges NT81. The scientific calculation MZ81 uses one of the rated range limit values ​​DD11, DD12, the integer, the ratio, and any combination thereof.

[0237] In some embodiments, the storage unit 332 further has a memory location YM8T different from the memory location YX8T, and stores the target range limit value pair DN1T in the memory location YM8T. For example, the memory location YM8T is identified based on a preset target range code EM1T for the measured value. After the processing unit 331 executes the signal generation control GY81 within an operation time TF81, the sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN82. For example, after the processing unit 331 executes the signal generation control GY81, the sensing unit 334 senses the variable physical parameter QU1A to execute a sensing signal generation HF82 dependent on the sensor sensitivity YW81, the sensing signal generation HF82 being used to generate the sensing signal SN82.

[0238] The processing unit 331 responds to the sensing signal SN82 within a specified time TG82 after the operation time TF81 to obtain a measurement value VN82 in the specified measurement value format HH81. Based on the obtained measurement value target range code EM1T, the processing unit 331 uses the storage unit 332 to access the target range limit value pair DN1T stored in the memory location YM8T, and checks a mathematical relationship KV91 between the measurement value VN82 and the accessed target range limit value pair DN1T to make a logical decision PB91 as to whether the measurement value VN82 is within the measurement value target range RN1T.

[0239] Under the condition that the logic decision PB91 is affirmative, the processing unit 331 determines within the specified time TG82 the current physical parameter target range RD1ET of the variable physical parameter QU1A, generates a positive operation report RL81, and causes the transmission unit 384 to output a control response signal SE81 that transmits the positive operation report RL81. The control response signal SE81 is used to cause the control device 212 to obtain the positive operation report RL81. For example, the positive operation report RL81 indicates an operation condition EP81 in which the variable physical parameter QU1A successfully enters the physical parameter target range RD1ET. The processing unit 331 responds to the control signal SC81 by causing the transmission unit 384 to generate the control response signal SE81. For example, the processing unit 331 further transmits the obtained measurement value VN82 based on the obtained measurement value VN82 in the control response signal SE81.

[0240] In some embodiments, when the specific measurement range code EM14 is different from the obtained measurement target range code EM1T and the processing unit 331 determines, by making the logical decision PB91, that the variable physical parameter QU1A is currently in the physical parameter target range RD1ET, the processing unit 331 uses the storage unit 332 to assign the obtained measurement target range code EM1T to the variable physical parameter range code UN8A based on a code difference DF81 between the variable physical parameter range code UN8A, which is equal to the specific measurement range code EM14, and the obtained measurement target range code EM1T.

[0241] When the receiving unit 337 receives the control signal SC81, the display unit 382 displays a status indicator LB81. For example, the status indicator LB81 indicates a specific state XJ81 where the variable physical parameter QU1A is configured within the specific physical parameter range RD1E4. If the specific measurement range code EM14 differs from the obtained measurement target range code EM1T, and the processing unit 331 determines, by making the logic decision PB91, that the variable physical parameter QU1A is currently in the physical parameter target range RD1ET, the processing unit 331 further causes the display unit 382 to change the status indicator LB81 to a status indicator LB82 based on the code difference DF81. For example, the status indicator LB82 indicates a specific state XJ82 where the variable physical parameter QU1A is configured within the physical parameter target range RD1ET.

[0242] The control signal SC81 is one of an electrical signal SP81 and an optical signal SQ81. The receiving unit 337 includes a receiving component 3371 and a receiving component 3372. The receiving component 3371 is coupled to the processing unit 331. When the control signal SC81 is the electrical signal SP81, the receiving component 3371 causes the processing unit 331 to obtain the control information CG81 by receiving the electrical signal SP81 that transmits control information CG81. For example, the control information CG81 includes the measurement value specified range code EL1T. The processing unit 331 obtains the preset measurement value target range code EM1T based on the measurement value specified range code EL1T of the control information CG81. For example, the control information CG81 further includes the measurement value target range code EM1T. For example, the receiving component 3371 and the receiving component 3372 are both two-input components.

[0243] The receiving component 3372 is coupled to the processing unit 331. When the control signal SC81 is the optical signal SQ81, the receiving component 3372 receives the optical signal SQ81, which transmits an encoded image FY81. For example, the encoded image FY81 represents the control information CG81. The input unit 380 is coupled to the processing unit 331 and includes a button 3801. When the variable physical parameter QU1A is configured within the target range RD1ET of the physical parameter based on the control signal SC81, the input unit 380 receives a user input operation BQ81 using the button 3801 and responds to the user input operation BQ81 to cause the processing unit 331 to receive an operation request signal SJ91. The processing unit 331 responds to the operation request signal SJ91 to determine a specific input code UW81. For example, the input unit 380 responds to the user input operation BQ81 using the button 3801 to provide the operation request signal SJ91 to the processing unit 331, thereby enabling the processing unit 331 to receive the operation request signal SJ91. The specific input code UW81 is selected from the plurality of different measurement value reference range codes EM11, EM12, ...

[0244] In some embodiments, when the control signal SC81 is the optical signal SQ81, the receiving component 3372 senses the coded image FY81 to determine coded data DY81, and decodes the coded data DY81 to provide the control information CG81 to the processing unit 331. For example, when the input unit 380 receives the user input operation BQ81, the variable physical parameter range code UN8A is equal to the preset measurement target range code EM1T. The processing unit 331 responds to the operation request signal SJ91 to obtain the measurement target range code EM1T from the variable physical parameter range code UN8A. When the specific input code UW81 is different from the preset target range code EM1T, the processing unit 331 uses the output component 338 based on a code difference DX81 between the variable physical parameter range code UN8A, which is equal to the obtained target range code EM1T, and the specific input code UW81, to cause the variable physical parameter QU1A to leave the target range RD1ET and enter a specific physical parameter range RD1E5 contained in the plurality of different physical parameter reference ranges RD1E1, RD1E2, ...

[0245] For example, button 3801 receives user input operation BQ81. The specific physical parameter range RD1E5 is represented by a specific physical parameter range code UN85. When the specific input code UW81 is equal to the specific physical parameter range code UN85, the processing unit 331 causes the output component 338 to transmit an operation signal SG82 to the physical parameter application unit 335 based on the code difference DX81. The operation signal SG82 is used to cause the variable physical parameter QU1A to leave the physical parameter target range RD1ET and enter the specific physical parameter range RD1E5.

[0246] When the variable physical parameter QU1A is configured to be within the specific physical parameter range RD1E5 based on the function signal SG82, the input unit 380 receives a user input operation BQ8A using the button 3801 and responds to the user input operation BQ8A by providing an operation request signal SJ9A to the processing unit 331. For example, when the variable physical parameter QU1A is within the specific physical parameter range RD1E5, the button 3801 receives the user input operation BQ8A to cause the input unit 380 to receive the user input operation BQ8A. The processing unit 331 responds to the operation request signal SJ9A by causing the output component 338 to transmit an operation signal SG8A to the physical parameter application unit 335. The operation signal SG8A is used to cause the variable physical parameter QU1A to leave the specific physical parameter range RD1E5 and enter a specific physical parameter range RD1EA included in the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... For example, the specific physical parameter range RD1EA is the same as the target physical parameter range RD1ET.

[0247] The sensing unit 334 senses the variable physical parameter QU1A under a constraint condition FR81 to provide the sensing signal SN81 to the processing unit 331. For example, the constraint condition FR81 is that the variable physical parameter QU1A is equal to a specific physical parameter QU15 included in the nominal physical parameter range RD1E. The processing unit 331 estimates the specific physical parameter QU15 based on the sensing signal SN81 to obtain the measured value VN81. Since the variable physical parameter QU1A under the constraint condition FR81 is within the physical parameter application range RD1EL, the processing unit 331 identifies the measured value VN81 as an allowable value within the measurement value application range RN1L, thereby identifying the mathematical relationship KV81 between the measured value VN81 and the measurement value application range RN1L as a numerical intersection relationship, and thereby determining the physical parameter application range RD1EL in which the variable physical parameter QU1A is currently located.

[0248] In some embodiments, the sensing unit 334 is characterized based on the sensor sensitivity YW81 associated with the generation of the sensing signal HF81 and configured to conform to the sensor specification FU11. The sensor specification FU11 includes a sensor sensitivity representation GW81 for representing the sensor sensitivity YW81 and a sensor measurement range representation GW8R for representing the sensor measurement range RB8E. For example, the nominal physical parameter range RD1E is configured to be the same as, or a part of, the sensor measurement range RB8E. The sensor measurement range RB8E is related to a physical parameter sensing performed by the sensing unit 334. The sensor measurement range representation GW8R is provided based on a first default unit of measurement. For example, the first default unit of measurement is one of a metric unit and an imperial unit.

[0249] The rated measurement range RD1N, the rated range limit pair DD1A, the measurement application range RN1L, the application range limit pair DN1L, the measurement target range RN1T, the target range limit pair DN1T, the measurement target range RN1U, and the multiple different measurement reference ranges RN11, RN12, ... are all preset using the specified measurement value format HH81 based on one of the sensor measurement range representation GW8R and the sensor specification FU11. For example, the rated measurement range RD1N and the rated range limit pair DD1A are both preset using the specified measurement value format HH81 based on the rated physical parameter range representation GA8E, the sensor measurement range representation GW8R, the sensor sensitivity representation GW81, and the data encoding operation ZX81. The measured value application range RN1L and the application range limit value pair DN1L are both preset using the specified measured value format HH81 based on the physical parameter application range representation GA8L, the sensor measurement range representation GW8R, the sensor sensitivity representation GW81, and the data encoding operation ZX82.

[0250] The target range RN1T and the target range limit pair DN1T are both preset using the specified measurement value format HH81 based on the physical parameter candidate range representation GA8T, the sensor measurement range representation GW8R, the sensor sensitivity representation GW81, and the data encoding operation ZX83. The rated physical parameter range representation GA8E, the physical parameter application range representation GA8L, the physical parameter representation GA8T1, and the physical parameter candidate range representation GA8T are all provided based on a second default measurement unit. For example, the second default measurement unit is one of a metric unit and an imperial unit, and may be the same as or different from the first default measurement unit.

[0251] The variable physical parameter QU1A is further characterized based on the sensor measurement range RB8E. For example, the sensor measurement range representation GW8R, the rated physical parameter range representation GA8E, the physical parameter application range representation GA8L, the physical parameter candidate range representation GA8T, and the physical parameter representation GA8T1 are all decimal data types. The measured values ​​VN81, VN82, the rated range limit pair DD1A, the application range limit pair DN1L, the target range limit pair DN1T, and the handle CC1T are all binary data types and are suitable for computer processing. The sensor specification FU11 and the measurement application function specification GAL8 are both defaulted.

[0252] In some embodiments, before the receiving unit 337 receives the control signal SC81, the receiving unit 337 receives a write request message WN8L containing the default application range limit value pair DN1L and a memory address AM8L. For example, the memory location YM8L is identified based on the memory address AM8L; and the memory address AM8L is preset based on the preset measurement value application range code EM1L. The processing unit 331 responds to the write request message WN8L by using the storage unit 332 to store the application range limit value pair DN1L of the write request message WN8L into the memory location YM8L.

[0253] Before the receiving unit 337 receives the control signal SC81, the receiving unit 337 receives a write request message WC8T containing the default handle CC1T and a memory address AX8T. For example, the memory location YX8T is identified based on the memory address AX8T; and the memory address AX8T is preset based on the preset measurement target range code EM1T. The processing unit 331 responds to the write request message WC8T by using the storage unit 332 to store the handle CC1T of the write request message WC8T into the memory location YX8T.

[0254] In some embodiments, the functional device 130 is used to control the variable physical parameter QU1A by generating an operation signal SG81. The variable physical parameter QU1A is characterized based on the physical parameter target range RD1ET represented by the measured value target range RN1T and the physical parameter application range RD1EL represented by the measured value application range RN1L. The sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN81. When the receiving unit 337 receives a control signal SC81 that indicates the measured value target range RN1T, the processing unit 331 responds to the sensing signal SN81 to obtain a measured value VN81.

[0255] Under the condition that the processing unit 331 determines the current physical parameter application range RD1EL of the variable physical parameter QU1A by checking a mathematical relationship KV81 between the measured value VN81 and the measured value application range RN1L, the processing unit 331 determines a range relationship KE8A between the measured value target range RN1T and the measured value application range RN1L based on the control signal SC81 to make a reasonable decision PW81 on whether the operation signal SG81 for causing the variable physical parameter QU1A to enter the physical parameter target range RD1ET should be generated by the output component 338.

[0256] For example, when the processing unit 331 determines the current application range RD1EL of the variable physical parameter QU1A by checking the mathematical relationship KV81, the processing unit 331 determines a range relationship KE9A between the target range RD1ET of the physical parameter and the application range RD1EL of the physical parameter based on the control signal SC81 to make the reasonable decision PW81.

[0257] In some embodiments, when the processing unit 331 determines that the variable physical parameter QU1A is currently in the application range RD1EL of the physical parameter, the processing unit 331 checks the range relationship KE8A by comparing the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L to make a logical decision PY81 on whether the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L are equal.

[0258] If the logical decision PY81 is negative, the processing unit 331 identifies the range relationship KE8A as a range disparity relationship to make the reasonable decision PW81 affirmative. If the reasonable decision PW81 is affirmative, the processing unit 331 executes a signal generation control GY81 based on the obtained handle CC1T to cause the output component 338 to generate an operation signal SG81 for causing the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter.

[0259] In some embodiments, when the processing unit 331 determines that the variable physical parameter QU1A is currently within the physical parameter application range RD1EL, the processing unit 331 checks the range relationship KE8A by comparing the obtained target range code EM1T and the determined application range code EM1L of the measurement value to make a logical decision PZ81 on whether the obtained target range code EM1T and the determined application range code EM1L of the measurement value are equal. If the logical decision PZ81 is negative, the processing unit 331 identifies the range relationship KE8A as a range disparity relationship to make the reasonable decision PW81 to be positive.

[0260] For example, when processing unit 331 determines that the variable physical parameter QU1A is currently within the physical parameter application range RD1EL, processing unit 331 checks the range relationship KE9A between the physical parameter target range RD1ET and the physical parameter application range RD1EL by comparing the obtained measurement value target range code EM1T and the determined measurement value application range code EM1L to make a logical decision PZ91 on whether the physical parameter target range RD1ET and the physical parameter application range RD1EL are equal. If the logical decision PZ91 is negative, processing unit 331 determines the range difference DB81 by identifying the range relationship KE9A as a range dissimilarity relationship to make a reasonable decision PW81 to be positive. If the logical decision PZ81 is negative, the logical decision PZ91 is negative.

[0261] Under the condition that the reasonable decision PW81 is affirmative, the processing unit 331 uses the storage unit 332 to access the handle CC1T stored in the memory location YX8T based on the obtained target range code EM1T of the measurement value. Based on the accessed handle CC1T, the processing unit 331 executes a signal generation control GY81 for the measurement application function FA81. The output component 338 responds to the signal generation control GY81 to execute a signal generation operation BY81 for the measurement application function FA81 to generate an operation signal SG81. The operation signal SG81 controls the physical parameter application unit 335 to cause the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter.

[0262] In some embodiments, the plurality of different physical parameter reference states JE11, JE12, ... includes the specific physical parameter state JE16. The specific physical parameter state JE16 is represented by a specific physical parameter state code EW16. The plurality of different physical parameter reference state codes EW11, EW12, ... include the specific physical parameter state code EW16. When the processing unit 331 causes the variable physical parameter QU1A to be in the physical parameter target state JE1U by checking the first mathematical relation KQ81, the input unit 380 receives the user input operation BQ82 using the button 3801 and responds to the user input operation BQ82 to cause the processing unit 331 to receive an operation request signal SJ92. For example, the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... includes a specific physical parameter range RD1E6 that is different from the physical parameter target range RD1E6. The specific physical parameter state JE16 is predetermined based on the specific physical parameter range RD1E6.

[0263] For example, the input unit 380 responds to the user input operation BQ82 using the button 3801 to provide the operation request signal SJ92 to the processing unit 331, thereby causing the processing unit 331 to receive the operation request signal SJ92. The processing unit 331 responds to the operation request signal SJ92 to determine a specific input code UW82. For example, the specific input code UW82 is selected from the plurality of different physical parameter reference status codes EW11, EW12, ... For example, the specific input code UW82 is selected from the plurality of different measurement value reference range codes EM11, EM12, ... When the input unit 380 receives the user input operation BQ82, the variable physical parameter range code UN8A is equal to the preset physical parameter target status code EW1U. The processing unit 331 responds to the operation request signal SJ92 to obtain the physical parameter target status code EW1U from the variable physical parameter range code UN8A.

[0264] In some embodiments, the specific physical parameter range RD1E6 is represented by a specific physical parameter range code UN86. When the specific input code UW82 is equal to the specific physical parameter range code UN86 and different from the preset physical parameter target state code EW1U, the processing unit 331 uses the output component 338 to generate the operation signal SG87 based on a code difference DX82 between the variable physical parameter range code UN8A (which is equal to the obtained measurement target range code EM1U) and the specific input code UW82. The operation signal SG87 causes the variable physical parameter QU1A to leave the physical parameter target state JE1U and enter the specific physical parameter state JE16. The output component 338 transmits the operation signal SG87 to the physical parameter application unit 335. The physical parameter application unit 335 responds to the operation signal SG87 to cause the variable physical parameter QU1A to leave the physical parameter target state JE1U and enter the specific physical parameter state JE16.

[0265] For example, when the variable physical parameter QU1A is configured to be within the specific physical parameter range RD1E6 (or the specific physical parameter state JE16) based on the function signal SG87, the input unit 380 receives a user input operation BQ8B using the button 3801 and responds to the user input operation BQ8B by providing an operation request signal SJ9B to the processing unit 331. For example, when the variable physical parameter QU1A is within the specific physical parameter range RD1E6, the button 3801 receives the user input operation BQ8B to cause the input unit 380 to receive the user input operation BQ8B.

[0266] The processing unit 331 responds to the operation request signal SJ9B to cause the output component 338 to transmit an operation signal SG8B to the physical parameter application unit 335. The operation signal SG8B causes the variable physical parameter QU1A to leave the specific physical parameter range RD1E6 (or the specific physical parameter state JE16) and enter a specific physical parameter range RD1EB (or a specific physical parameter state JE1B) included in the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... For example, the specific physical parameter range RD1EB is the same as the physical parameter target range RD1EU. The specific physical parameter state JE1B is predetermined based on the specific physical parameter range RD1EB.

[0267] Please see Figure 22 and Figure 23 . Figure 22 To illustrate Figure 1 A schematic diagram of an embodiment 9031 of the control system 901 is shown. Figure 23 To illustrate Figure 1 A schematic diagram of an embodiment 9032 of the control system 901 is shown. Figure 22 and Figure 23 As shown, each of the embodiments 9031 and 9032 includes the control device 212 and the functional device 130. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the receiving unit 337, the input unit 380, and the transmission unit 384. The receiving unit 337 includes the receiving component 3371 and the receiving component 3372. The transmission unit 384 includes a transmission component 3842 and a transmission component 3843. The sensing unit 334, the physical parameter application unit 335, the storage unit 332, the receiving component 3371, the receiving component 3372, the input unit 380, the transmission component 3842, and the transmission component 3843 are all coupled to the processing unit 331 and are all controlled by the processing unit 331. The processing unit 331 includes the output component 338.

[0268] In some embodiments, the output component 338 is coupled to the physical parameter application unit 335. The processing unit 331 executes the signal generation control GY81 based on the obtained handle CC1T within the operation time TF81. The output component 338, in response to the signal generation control GY81, executes the signal generation operation BY81 for the measurement application function FA81 to generate the operation signal SG81 within the operation time TF81. For example, the operation signal SG81 is a control signal. The output component 338 transmits the operation signal SG81 to the physical parameter application unit 335. The physical parameter application unit 335, in response to the operation signal SG81, causes the variable physical parameter QU1A to enter the physical parameter target range RD1ET. For example, the operation signal SG81 is one of a pulse width modulation signal, a level signal, a drive signal, and a command signal.

[0269] Upon processing unit 331 checking the mathematical relationship KV91 to determine that the variable physical parameter QU1A is currently within the target range RD1ET of the physical parameter, processing unit 331 determines the affirmative operation report RL81, causing transmission unit 384 to generate the control response signal SE81, which transmits the affirmative operation report RL81 and the measured value VN82. The control response signal SE81 is one of an electrical signal LP81 and an optical signal LQ81. Transmission component 3842 is a transmitter. Transmission component 3843 is an optical transmitting component. For example, transmission components 3842 and 3843 are both two-output components.

[0270] For example, the processing unit 331 determines the current physical parameter status of the variable physical parameter QU1A within the target physical parameter range RD1ET by examining the mathematical relation KV91, and thereby identifies a physical parameter relation KD8T between the variable physical parameter QU1A and the target physical parameter range RD1ET as a physical parameter intersection relationship where the variable physical parameter QU1A is currently within the target physical parameter range RD1ET. For example, the processing unit 331 examines one of the physical parameter relations KD8T and KD9T by examining the mathematical relation KV91.

[0271] In some embodiments, when the transmission component 3842 is configured to generate the control response signal SE81, the processing unit 331 causes the transmission component 3842 to transmit the electrical signal LP81, which conveys the affirmative operation report RL81, to the control device 212 based on the determined affirmative operation report RL81. When the transmission component 3843 is configured to generate the control response signal SE81, the processing unit 331 causes the transmission component 3843 to generate the optical signal LQ81, which conveys the affirmative operation report RL81, based on the determined affirmative operation report RL81, thereby the control device 212 receives the generated optical signal LQ81 from the transmission component 3843. For example, the light emitting component is a display component. The optical signal LQ81 conveys an coded image FZ81 representing the affirmative operation report RL81. For example, the coded image FZ81 is a barcode image. For example, the electrical signal LP81 is a radio signal. The optical signal LQ81 is an infrared signal.

[0272] For example, the control device 212 is identified by a control device identifier HA0T. The control signal SC81 further transmits the control device identifier HA0T. The processing unit 331 responds to the control signal SC81 to obtain the control device identifier HA0T from the control signal SC81, and based on the obtained control device identifier HA0T and the determined positive operation report RL81, causes the transmission component 3842 to transmit the electrical signal LP81 that transmits the positive operation report RL81 to the control device 212.

[0273] In some embodiments, the operation unit 297 of the control device 212 is configured to communicate wiredly or wirelessly with the operation unit 397; therefore, the operation unit 297 is configured to transmit the control signal SC81 wiredly or wirelessly to the operation unit 397. For example, the receiving unit 337 receives the control signal SC81 wiredly or wirelessly from the control device 212. The control signal SC81 is one of the electrical signal SP81 and the optical signal SQ81. The receiving component 3371 is a receiver and receives the electrical signal SP81 from the control device 212 when the control signal SC81 is the electrical signal SP81. The receiving component 3372 is a reader and receives the optical signal SQ81 that transmits the encoded image FY81 from the control device 212 when the control signal SC81 is the optical signal SQ81. For example, the encoded image FY81 is a barcode image. For example, the electrical signal SP81 is a radio signal. The optical signal SQ81 is an infrared signal.

[0274] The physical parameter application unit 335 has the variable physical parameter QU1A. The receiving unit 337 further includes a receiving component 3374. The receiving component 3374 is coupled to the processing unit 331, controlled by the processing unit 331, and receives a physical parameter signal SB81 from the control device 212 when the variable physical parameter QU1A is provided by the control device 212. The physical parameter application unit 335 receives the physical parameter signal SB81 from the receiving component 3374. The processing unit 331 causes the physical parameter application unit 335 to use the physical parameter signal SB81 to form the variable physical parameter QU1A depending on the physical parameter signal SB81 by using the output component 338. For example, the receiving component 3374 is a receiving component. The control device 212 transmits the physical parameter signal SB81 to the receiving component 3374 wired or wirelessly. For example, receiving component 3371, receiving component 3372 and receiving component 3374 are all three-input components.

[0275] The physical parameter target range RD1ET has a default physical parameter target range limit ZD1T1 and a default physical parameter target range limit ZD1T2 relative to the default physical parameter target range limit ZD1T1. The target range limit value pair DN1T includes a target range limit value DN17 of the measured value target range RN1T and a target range limit value DN18 relative to the target range limit value DN17. The default physical parameter target range limit ZD1T1 is represented by the target range limit value DN17. The default physical parameter target range limit ZD1T2 is represented by the target range limit value DN18.

[0276] The physical parameter application range RD1EL has a preset physical parameter application range limit ZD1L1 and a preset physical parameter application range limit ZD1L2 relative to the preset physical parameter application range limit ZD1L1. The preset physical parameter application range limit ZD1L1 is represented by the application range limit value DN15. The preset physical parameter application range limit ZD1L2 is represented by the application range limit value DN16.

[0277] In some embodiments, the trigger event EQ81 is a state change event. The control device 212 includes an operation unit 297 and a state change detector 475 coupled to the operation unit 297. For example, the state change detector 475 is one of a limit detector and an edge detector. The limit detector is a limit switch 485. The state change detector 475 is configured to detect a characteristic physical parameter associated with a default characteristic physical parameter UL81 reaching ZL82. For example, the default characteristic physical parameter UL81 is a default limit position. The characteristic physical parameter reaching ZL82 is a limit position arrival.

[0278] The physical parameter application unit 335 includes a physical parameter application area AJ11. The physical parameter application area AJ11 has a variable physical parameter QG1A. The variable physical parameter QG1A depends on the variable physical parameter QU1A and is characterized based on the default characteristic physical parameter UL81. For example, the physical parameter application area AJ11 is one of a load area, a display area, a sensing area, a power supply area, and an ambient area. The default characteristic physical parameter UL81 is related to the variable physical parameter QU1A.

[0279] Before receiving the control signal SC81, receiving unit 337 receives a control signal SC80 from operation unit 297. Processing unit 331 responds to the received control signal SC80 by executing a signal generation control GY80 to control output component 338. Output component 338 responds to the signal generation control GY80 by generating an operation signal SG80 to control the variable physical parameter QU1A. Physical parameter application unit 335 receives the operation signal SG80 from output component 338 and responds to the received operation signal SG80 by executing a specific function operation ZH81 associated with the variable physical parameter QU1A. The specific function operation ZH81 controls the variable physical parameter QG1A and causes the trigger event EQ81 to occur by changing the variable physical parameter QG1A. The variable physical parameter QG1A is configured to be in a variable physical state XA8A. For example, the operation unit 397 is controlled by the control device 212 to cause the physical parameter application unit 335 to perform the specific function operation ZH81. The state change detector 475 responds to the specific function operation ZH81 by generating a trigger signal SX8A.

[0280] When the variable physical parameter QU1A is within the specific physical parameter range RD1E4, the specific function operation ZH81 causes the variable physical parameter QG1A to reach the default characteristic physical parameter UL81 to form the characteristic physical parameter reaching ZL82, and by forming the characteristic physical parameter reaching ZL82, the variable physical state XA8A is changed from a non-characteristic physical parameter reaching state XA81 to an actual characteristic physical parameter reaching state XA82. The state change detector 475 generates the trigger signal SX8A in response to the characteristic physical parameter reaching ZL82. For example, the actual characteristic physical parameter reaching state XA82 is characterized based on the default characteristic physical parameter UL81. The state change detector 475 generates the trigger signal SX8A in response to a state change event in which the variable physical parameter QG1A is changed from the non-characteristic physical parameter reaching state XA81 to the actual characteristic physical parameter reaching state XA82.

[0281] For example, the state change detector 475 is a trigger application unit. The trigger event EQ81 is the state change event in which the variable physical parameter QG1A enters the actual characteristic physical parameter reaching state XA82. The operation unit 297 receives the trigger signal SX8A and generates the control signal SC81 in response to the received trigger signal SX8A. For example, when the state change detector 475 is the limit switch 485, the characteristic physical parameter reaching ZL82 is the variable physical parameter QG1A reaching a limit position equal to a variable spatial position, and the default characteristic physical parameter UL81 reaching a limit position equal to a default limit position. The trigger signal SX8A is an operation request signal.

[0282] For example, the operation unit 297 responds to the received trigger signal SX8A to obtain a control application code UA8T containing at least one of the target range limit value pair DN1T and the measured value target range code EM1T, and generates a control signal SC81 based on the control application code UA8T to transmit at least one of the target range limit value pair DN1T and the measured value target range code EM1T. For example, the physical parameter application unit 335 forms the variable physical parameter QG1A in the physical parameter application area AJ11 by performing the specific function operation ZH81 caused by the variable physical parameter QU1A. Under the condition that the physical parameter application area AJ11 is coupled to the state change detector 475, the state change detector 475 detects that the characteristic physical parameter arrives at ZL82.

[0283] In some embodiments, the variable physical parameter QU1A is one of a first variable electrical parameter, a first variable mechanical parameter, a first variable optical parameter, a first variable temperature, a first variable voltage, a first variable current, a first variable electrical power, a first variable resistance, a first variable capacitance, a first variable inductance, a first variable frequency, a first clock time, a first variable time length, a first variable brightness, a first variable light intensity, a first variable volume, a first variable data flow, a first variable amplitude, a first variable spatial position, a first variable displacement, a first variable sequential position, a first variable angle, a first variable spatial length, a first variable distance, a first variable translational velocity, a first variable angular velocity, a first variable acceleration, a first variable force, a first variable pressure, and a first variable mechanical power.

[0284] The operation unit 397 is configured to execute the measurement application function FA81 related to the variable physical parameter QU1A by relying on the control signal SC81. The functional device 130 is one of a plurality of application devices. The measurement application function FA81 is one of a plurality of specific control functions, including a light control function, a force control function, an electrical control function, a magnetic control function, and any combination thereof. The plurality of application devices include a control target device, a relay, a control switch device, a motor, a lighting device, a door, a vending machine, an energy converter, a load device, a timing device, a toy, an electrical appliance, a printing device, a display device, a mobile device, a speaker, and any combination thereof.

[0285] The physical parameter application unit 335 is one of a plurality of application targets and is configured to perform a specific application function. The specific application function is one of a plurality of physical parameter application functions, including a light-use function, a force-use function, an electrical-use function, a magnetic-use function, and any combination thereof. The plurality of application targets include an electronic component, an actuator, a resistor, a capacitor, an inductor, a relay, a control switch, a transistor, a motor, a lighting unit, an energy conversion unit, a load unit, a timing unit, a printing unit, a display target, a speaker, and any combination thereof. For example, the physical parameter application unit 335 is a physically realizable functional unit.

[0286] For example, the variable physical parameter QU1A and the variable physical parameter QG1A belong to a physical parameter type TU11 and a physical parameter type TU1G, respectively. The physical parameter type TU11 may be the same as or different from the physical parameter type TU1G. The default feature physical parameter UL81 belongs to the physical parameter type TU1G. The physical parameter application unit 335 further includes a physical parameter forming region AU11 having the variable physical parameter QU1A. The physical parameter application region AJ11 is coupled to the physical parameter forming region AU11. For example, the specific function operation ZH81 is used to drive the physical parameter application region AJ11 to form the feature physical parameter to ZL82. For example, the physical parameter forming region AU11 is one of a load region, a display region, a sensing region, a power supply region, and an environmental region. For example, the physical parameter type TU11 is different from a time type.

[0287] The variable physical parameter QG1A is one of the following: a variable electrical parameter, a variable mechanical parameter, a variable optical parameter, a variable temperature, a variable voltage, a variable current, a variable electrical power, a variable resistance, a variable capacitance, a variable inductance, a variable frequency, a clock time, a variable time length, a variable brightness, a variable light intensity, a variable volume, a variable data flow rate, a variable amplitude, a variable spatial position, a variable displacement, a variable sequential position, a variable angle, a variable spatial length, a variable distance, a variable translational velocity, a variable angular velocity, a variable acceleration, a variable force, a variable pressure, and a variable mechanical power. For example, the variable physical parameter QU1A may be the same as or different from the variable physical parameter QG1A.

[0288] Please see Figure 24 , Figure 25 and Figure 26 . Figure 24 To illustrate Figure 1 A schematic diagram of an embodiment 9033 of the control system 901 described herein. Figure 25 To illustrate Figure 1 A schematic diagram of an embodiment 9034 of the control system 901 is shown. Figure 26 To illustrate Figure 1 A schematic diagram of an embodiment 9035 of the control system 901 is shown. Figure 24 , Figure 25 and Figure 26As shown, each of the implementation structures 9033, 9034, and 9035 includes the control device 212 and the functional device 130. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the receiving unit 337, the display unit 382, ​​and the transmission unit 384. The receiving unit 337, the display unit 382, ​​the transmission unit 384, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332 are all controlled by the processing unit 331.

[0289] In some embodiments, the sensing unit 334 senses the variable physical parameter QU1A to generate the sensing signal SN81. For example, when the receiving unit 337 receives the control signal SC81, the sensing unit 334 senses the variable physical parameter QU1A to generate the sensing signal SN81. After the processing unit 331 uses the output component 338 to generate the operation signal SG81 within the operation time TF81 by executing the signal generation control GY81, the sensing unit 334 senses the variable physical parameter QU1A to generate the sensing signal SN82. For example, the sensing unit 334 is one of a time sensing unit, an electrical parameter sensing unit, a mechanical parameter sensing unit, an optical parameter sensing unit, a temperature sensing unit, a humidity sensing unit, a motion sensing unit, and a magnetic parameter sensing unit.

[0290] The sensing unit 334 includes a sensing component 3341 coupled to the processing unit 331, and uses the sensing component 3341 to generate the sensing signal SN81 and the sensing signal SN82. The sensing component 3341 belongs to a sensor type 7341 and is one of a first plurality of application sensors. The first plurality of application sensors include a first voltage sensor, a first current sensor, a first resistance sensor, a first capacitance sensor, a first inductance sensor, a first accelerometer, a first gyroscope, a first pressure transducer, a first strain gauge, a first timer, a first photosensor, a first temperature sensor, and a first humidity sensor. For example, the sensing component 3341 generates a sensing signal component SN811. The sensing signal SN81 includes the sensing signal component SN811.

[0291] The sensing unit 334 further includes a sensing component 3342 coupled to the processing unit 331, and uses the sensing component 3342 to generate the sensing signal SN81 and the sensing signal SN82. The sensing component 3342 belongs to a sensor type 7342 and is one of a second plurality of application sensors. The sensor type 7342 is different from or independent of the sensor type 7341. The second plurality of application sensors includes a second voltage sensor, a second current sensor, a second resistance sensor, a second capacitance sensor, a second inductance sensor, a second accelerometer, a second gyroscope, a second pressure transducer, a second strain gauge, a second timer, a second photodetector, a second temperature sensor, and a second humidity sensor.

[0292] For example, the sensing component 3342 generates a sensing signal component SN812. The sensing signal SN81 further includes the sensing signal component SN812. For example, the sensing unit 334 belongs to a sensor type 734. The sensor type 734 is related to the sensor type 7341 and the sensor type 7342. For example, the sensing unit 334, the sensing component 3341, and the sensing component 3342 are respectively an electric power sensing unit, a voltage sensor, and a current sensor. For example, the sensing unit 334, the sensing component 3341, and the sensing component 3342 are respectively an inertial measurement unit, an accelerometer, and a gyroscope.

[0293] In some embodiments, the variable physical parameter QU1A is dependent on a variable physical parameter JA1A and a variable physical parameter JB1A that is different from the variable physical parameter JA1A. For example, the variable physical parameter QU1A, the variable physical parameter JA1A, and the variable physical parameter JB1A are respectively a variable power, a variable voltage, and a variable current, and belong to a first physical parameter type, a second physical parameter type, and a third physical parameter type, respectively. The second physical parameter type and the third physical parameter type are different or independent. The first physical parameter type is dependent on the second physical parameter type and the third physical parameter type. The sensing component 3341 senses the variable physical parameter JA1A to generate the sensing signal component SN811. The sensing component 3342 senses the variable physical parameter JB1A to generate the sensing signal component SN812.

[0294] The processing unit 331 receives the sensing signal component SN811 and the sensing signal component SN812. When the receiving unit 337 receives the control signal SC81, the processing unit 331 responds to the sensing signal component SN811 and the sensing signal component SN812 to obtain the measured value VN81. For example, the processing unit 331 obtains a measured value VN811 in response to the sensing signal component SN811, obtains a measured value VN812 in response to the sensing signal component SN812, and obtains the measured value VN81 by performing a scientific calculation MY81 using the measured values ​​VN811 and VN812. The scientific calculation MY81 is pre-defined based on the first physical parameter type, the second physical parameter type, and the third physical parameter type.

[0295] Each of the variable physical parameters JA1A and JB1A is one of the following: a variable electrical parameter, a variable mechanical parameter, a variable optical parameter, a variable temperature, a variable voltage, a variable current, a variable electrical power, a variable resistance, a variable capacitance, a variable inductance, a variable frequency, a clock time, a variable time length, a variable brightness, a variable light intensity, a variable volume, a variable data flow rate, a variable amplitude, a variable spatial position, a variable displacement, a variable sequential position, a variable angle, a variable spatial length, a variable distance, a variable translational speed, a variable angular velocity, a variable acceleration, a variable force, a variable pressure, and a variable mechanical power.

[0296] In some embodiments, the sensing unit 334 is configured to conform to the sensor specification FU11. The sensing unit 334 generates the sensing signal SN81 by performing the sensing signal generation HF81, which is dependent on the sensor sensitivity YW81. The physical parameter application unit 335 includes the physical parameter forming region AU11 having the variable physical parameter QU1A. When the receiving unit 337 receives the control signal SC81 and the variable physical parameter QU1A is present in the physical parameter forming region AU11, the sensing unit 334 senses the variable physical parameter QU1A to generate the sensing signal SN81. For example, the sensing unit 334 is coupled to or located in the physical parameter forming region AU11. The processing unit 331 receives the sensing signal SN81 and obtains the measurement value VN81 in the specified measurement value format HH11 by processing the received sensing signal SN81.

[0297] The processing unit 331 performs a check operation BV81 by comparing the measured value VN81 with the obtained application range limit value pair DN1L to check the mathematical relationship KV81 between the measured value VN81 and the application range RN1L, and makes the logical decision PB81 based on the check operation BV81. In some embodiments, the processing unit 331 processes the received sensing signal SN81 to obtain a measurement value sequence JN81 including the measured value VN81. The processing unit 331 performs a check operation BV85 by comparing the measurement value sequence JN81 with the obtained application range limit value pair DN1L to check the mathematical relationship KV85 between the measurement value sequence JN81 and the application range RN1L. The processing unit 331 makes the logical decision PB81 based on the check operation BV85. For example, the check operation BV85 includes the check operation BV81.

[0298] For example, if processing unit 331 identifies the measured value VN81 as an acceptable value VG81 within the application range RN1L of the measured value based on the data comparison CD81, processing unit 331 makes the logical decision PB81 to be affirmative. Alternatively, if processing unit 331 identifies the mathematical relation KV81 as a numerical intersection relation KW81, processing unit 331 makes the logical decision PB81 to be affirmative.

[0299] In some embodiments, the processing unit 331 responds to the control signal SC81 to obtain the target range code EM1T of the measurement value from the control signal SC81. The processing unit 331 performs a verification operation ZU81 related to the variable physical parameter QU1A within a specified time TG82 following the operation time TF81. If the processing unit 331 determines, based on the verification operation ZU81, that the variable physical parameter QU1A has entered the target range RD1ET of the physical parameter, the processing unit 331 uses the storage unit 332 to assign the obtained target range code EM1T of the measurement value to the variable physical parameter range code UN8A. For example, the verification operation ZU81 responds to the sensing signal SN82 within the specified time TG82 following the operation time TF81 to obtain the measurement value VN82 in the specified measurement value format HH81.

[0300] The verification operation ZU81 obtains the target range limit value pair DN1T based on the obtained target range code EM1T of the measured value, and checks the mathematical relationship KV91 between the measured value VN82 and the target range RN1T of the measured value by comparing the measured value VN82 with the obtained target range limit value pair DN1T to make the logical decision PB91 on whether the measured value VN82 is within the target range RN1T of the measured value. If the logical decision PB91 is positive, the verification operation ZU81 determines the target range RD1ET of the physical parameter that the variable physical parameter QU1A is currently in, or determines the target range RD1ET that the variable physical parameter QU1A has entered.

[0301] When the specific measurement range code EM14 is different from the obtained measurement target range code EM1T, and the processing unit 331 determines, based on the verification operation ZU81, that the variable physical parameter QU1A is currently in the physical parameter target range RD1ET, the processing unit 331 uses the storage unit 332 to assign the obtained measurement target range code EM1T to the variable physical parameter range code UN8A based on the code difference DF81 between the variable physical parameter range code UN8A, which is equal to the specific measurement range code EM14, and the obtained measurement target range code EM1T.

[0302] In some embodiments, if the processing unit 331 determines, within the specified time TG82, that the variable physical parameter QU1A is currently in the target range RD1ET of the physical parameter based on the verification operation ZU81, the processing unit 331 performs a data comparison CE8T between the variable physical parameter range code UN8A equal to the specific measurement range code EM14 and the obtained target range code EM1T. If the processing unit 331 determines, based on the data comparison CE8T, the code difference DF81 between the variable physical parameter range code UN8A equal to the specific measurement range code EM14 and the obtained target range code EM1T, the processing unit 331 uses the storage unit 332 to assign the obtained target range code EM1T to the variable physical parameter range code UN8A.

[0303] For example, when the processing unit 331 determines the code difference DF81 based on the data comparison CE8T, the processing unit 331 executes the data storage control operation GU81, which causes the physical parameter target range code UN8T, representing the determined physical parameter target range RD1ET, to be recorded by the storage unit 332. For example, the physical parameter target range code UN8T is equal to the obtained measurement value target range code EM1T. The data storage control operation GU81 uses the storage unit 332 to assign the obtained measurement value target range code EM1T to the variable physical parameter range code UN8A.

[0304] When the receiving unit 337 receives the control signal SC81, the display unit 382 displays the status indicator LB81. For example, the status indicator LB81 is used to indicate a specific state XJ81 where the variable physical parameter QU1A is configured within the specific physical parameter range RD1E4. Before the receiving unit 337 receives the control signal SC81, the processing unit 331 is configured to obtain the specific measurement value range code EM14, and based on the obtained specific measurement value range code EM14, cause the display unit 382 to display the status indicator LB81.

[0305] Under the condition that the processing unit 331 determines the code difference DF81 based on the data comparison CE8T, the processing unit 331 causes the display unit 382 to change the status indication LB81 to the status indication LB82 based on the obtained target range code EM1T of the measurement value. For example, the status indication LB82 is used to indicate the specific state XJ82 where the variable physical parameter QU1A is currently within the target range RD1ET of the physical parameter.

[0306] In some embodiments, both the target physical parameter range RD1ET and the application range RD1EL are included in the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... . The target physical parameter range RD1ET may be the same as or different from the application range RD1EL. The variable physical parameter QU1A is further characterized based on a candidate physical parameter range RD1E2. The candidate physical parameter range RD1E2 is different from the application range RD1EL and may be the same as or different from the target physical parameter range RD1ET. For example, the application range RD1EL is a candidate physical parameter range.

[0307] The target physical parameter range RD1ET is configured to correspond to a corresponding physical parameter range RY1ET. The nominal physical parameter range RD1E is equal to a range combination of the target physical parameter range RD1ET and the corresponding physical parameter range RY1ET, and includes the physical parameter application range RD1EL and the physical parameter candidate range RD1E2. The target measurement value range RN1T is configured to correspond to a corresponding measurement value range RX1T. The nominal measurement value range RD1N is equal to a range combination of the target measurement value range RN1T and the corresponding measurement value range RX1T. The corresponding physical parameter range RY1ET is represented by the corresponding measurement value range RX1T. For example, the corresponding measurement value range RX1T is preset using the specified measurement value format HH81 based on one of the sensor measurement range representation GW8R and the sensor specification FU11.

[0308] The target measurement range RN1T and the application range RN1L are both included in the plurality of different measurement reference ranges RN11, RN12, ... The target measurement range RN1T may be the same as or different from the application range RN1L. The physical parameter candidate range RD1E2 is represented by a measurement candidate range RN12. The measurement candidate range RN12 is different from the application range RN1L and may be the same as or different from the target measurement range RN1T. The rated measurement range RD1N includes the application range RN1L and the measurement candidate range RN12. For example, the measurement candidate range RN12 is preset based on the physical parameter candidate range RD1E2 and the rated measurement range RD1N. The application range RN1L is a measurement candidate range. The rated measurement range RD1N is preset using the specified measurement value format HH81 based on the rated physical parameter range representation GA8E, the sensor measurement range representation GW8R, and the rated physical parameter range representation GA8E.

[0309] In some embodiments, the physical parameter application range RD1E1 and the physical parameter candidate range RD1E2 are separate or adjacent. When the physical parameter application range RD1E1 and the physical parameter candidate range RD1E2 are separate, the measured value application range RN1L and the measured value candidate range RN12 are separate. When the physical parameter application range RD1E1 and the physical parameter candidate range RD1E2 are adjacent, the measured value application range RN1L and the measured value candidate range RN12 are adjacent. The plurality of different physical parameter reference ranges RD1E1, RD1E2, ... including the physical parameter candidate range RD1E2, are respectively represented by the plurality of different measured value reference ranges RN11, RN12, ... and are respectively represented by a plurality of physical parameter reference range codes.

[0310] The candidate range of measured values ​​RN12 is represented by a candidate range code EM12 and has a candidate range limit pair DN1B, whereby the candidate range code EM12 is configured to indicate the candidate range of physical parameters RD1E2. For example, the candidate range limit pair DN1B includes a candidate range limit value DN13 and a candidate range limit value DN14 relative to the candidate range limit value DN13. Both the candidate range code EM12 and the candidate range limit pair DN1B are preset. The plurality of different measurement reference range codes EM11, EM12, ... include the preset candidate range code EM12. The plurality of different measurement reference ranges RN11, RN12, ... include the candidate range of measured values ​​RN12 and are respectively represented by the plurality of different measurement reference range codes EM11, EM12, ... For example, the plurality of physical parameter reference range codes are configured to be equal to the plurality of different measurement reference range codes EM11, EM12, ... respectively.

[0311] For example, the trigger application function specification GAL8 further includes a physical parameter candidate range representation GA82 for representing the physical parameter candidate range RD1E2. The measured value candidate range RN12 and the candidate range limit pair DN1B are both preset using the specified measured value format HH81 based on the sensor specification FU11. For example, the measured value candidate range RN12 and the candidate range limit pair DN1B are both preset using the specified measured value format HH81 based on the physical parameter candidate range representation GA82, the sensor measurement range representation GW8R, the sensor sensitivity representation GW81, and a data encoding operation ZX84 for converting the physical parameter candidate range representation GA82.

[0312] In some embodiments, the measurement application function specification GAL8 is used to represent the rated physical parameter range RD1E and the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... . The rated measurement value range RD1N, the rated range limit value pair DD1A, the plurality of different measurement value reference ranges RN11, RN12, ..., and the plurality of different measurement value reference range codes EM11, EM12, ... are all defaulted to based on the measurement application function specification GAL8. The measurement application function FA81 is selected from the plurality of different physical parameter control functions. The storage unit 332 stores the measurement application function specification GAL8.

[0313] The processing unit 331 pre-sets the rated range limit pair DD1A, the application range limit pair DN1L, the target range limit pair DN1T, the candidate range limit pair DN1B, ... according to the measurement application function specification GAL8. The sensing signal SN81 contains sensing data. For example, the sensing data belongs to the binary data type. The processing unit 331 obtains the measurement value VN81 based on the sensing data in the specified measurement value format HH81.

[0314] In some embodiments, the operation unit 397 is configured to execute the measurement application function FA81 based on the control signal SC81. The processing unit 331 makes a logical decision PB81 based on the check operation BV81 for the measurement application function FA81 to determine whether the measured value VN81 is within the application range RN1L of the measured value. If the logical decision PB81 is affirmative, the processing unit 331 checks the range relationship KE8A by comparing the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L to make the reasonable decision PW81.

[0315] For example, if the logical decision PW81 is affirmative, the processing unit 331 executes the signal generation control GY81 based on the obtained handle CC1T to cause the output component 338 to generate the operation signal SG81 for causing the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter. If the logical decision PB81 is negative, the processing unit 331 determines the candidate range code EM12 of the measurement value selected from the plurality of different measurement value reference range codes EM11, EM12, ... by performing a scientific calculation MR82 using the determined measurement value application range code EM1L, so as to select the candidate range RN12 of the measurement value from the plurality of different measurement value reference ranges RN11, RN12, ...

[0316] The processing unit 331 obtains the candidate range limit pair DN1B based on the determined candidate range code EM12, and checks a mathematical relationship KV82 between the measured value VN81 and the selected candidate range RN12 based on a data comparison CD82 between the measured value VN81 and the obtained candidate range limit pair DN1B to make a logical decision PB82 on whether the measured value VN81 is within the selected candidate range RN12. If the logical decision PB82 is affirmative, the processing unit 331 determines the current candidate range RD1E2 of the physical parameter QU1A.

[0317] If the logical decision PB82 is affirmative, the processing unit 331 checks a range relationship KE8B between the target range RN1T and the selected candidate range RN12 by comparing the obtained target range code EM1T and the determined candidate range code EM12 to make a logical decision PZ82 on whether the obtained target range code EM1T and the determined candidate range code EM12 are equal. If the logical decision PZ82 is negative, the processing unit 331 uses the output component 338 to generate the operation signal SG81 that causes the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter.

[0318] For example, if the logical decision PB82 is affirmative, the processing unit 331 checks a range relationship KE9B between the physical parameter target range RD1ET and the selected physical parameter candidate range RD1E2 by comparing the obtained measurement target range code EM1T and the determined measurement candidate range code EM12 to make a logical decision PZ92 on whether the physical parameter target range RD1ET and the selected physical parameter candidate range RD1E2 are equal. If the logical decision PZ92 is negative, the processing unit 331 uses the output component 338 to generate the operation signal SG81 to cause the variable physical parameter QU1A to enter the physical parameter target range RD1ET by identifying that the range relationship KE9B is a range dissimilarity relationship. If the logical decision PZ82 is negative, the logical decision PZ92 is negative.

[0319] In some embodiments, when the variable physical parameter QU1A is configured within the target range RD1ET of the physical parameter based on the control signal SC81, the input unit 380 receives the user input operation BQ81 and provides input data DH81 to the processing unit 331 in response to the user input operation BQ81. The processing unit 331 performs a data encoding operation EA81 on the input data DH81 to determine the specific input code UW81. In response to determining the specific input code UW81, the processing unit 331 performs a check operation ZP81 for the measurement application function FA81 to determine whether the determined specific input code UW81 is equal to the variable physical parameter range code UN8A.

[0320] For example, when the processing unit 331 determines the specific input code UW81, the processing unit 331 reads the variable physical parameter range code UN8A, which is equal to the target range code EM1T of the measurement value, using the storage unit 332, and executes a check operation ZP81 to check an arithmetic relationship KP81 between the determined specific input code UW81 and the read target range code EM1T of the measurement value. The check operation ZP81 is configured to compare the determined specific input code UW81 and the read target range code EM1T of the measurement value by performing a data comparison CE81 for the measurement application function FA81 to determine whether the determined specific input code UW81 and the read target range code EM1T of the measurement value are different.

[0321] When the processing unit 331 determines, by performing the data comparison CE81, the code difference DX81 between the determined specific input code UW81 and the variable physical parameter range code UN8A equal to the obtained target range code EM1T of the measurement value, the processing unit 331 causes the output component 338 to perform a signal generation operation BY82 for the measurement application function FA81 to generate an operation signal SG82. For example, the operation signal SG82 is one of a function signal and a control signal. The output component 338 transmits the operation signal SG82 to the physical parameter application unit 335.

[0322] The physical parameter application unit 335 responds to the operation signal SG82 to cause the variable physical parameter QU1A to move from the physical parameter target range RD1ET into the corresponding physical parameter range RY1ET. For example, the operation signal SG82 is one of a pulse width modulation signal, a level signal, a drive signal, and a command signal. For example, the physical parameter application unit 335 responds to the operation signal SG82 to cause the variable physical parameter QU1A to leave the physical parameter target range RD1ET and enter the specific physical parameter range RD1E5, which is included in the plurality of different physical parameter reference ranges RD1E1, RD1E2, ...

[0323] For example, the plurality of different measurement reference range codes EM11, EM12, ... include a specific measurement range code EM15 that is different from the measurement target range code EM1T. The specific measurement range code EM15 is configured to indicate the specific physical parameter range RD1E5. Under the condition that the determined specific input code UW81 is equal to the specific measurement range code EM15, resulting in the determination of the specific input code UW81 and the variable physical parameter range code UN8A that is equal to the obtained measurement target range code EM1T, the processing unit 331 determines the code difference DX81 by performing the data comparison CE81, and in response to determining the code difference DX81, uses the output component 338 to generate the operation signal SG82. The physical parameter application unit 335 responds to the operation signal SG82 to cause the variable physical parameter QU1A to leave the physical parameter target range RD1ET and enter the specific physical parameter range RD1E5 included in the corresponding physical parameter range RY1ET.

[0324] For example, after the processing unit 331 causes the output component 338 to perform the signal generation operation BY82, the processing unit 331 performs a verification operation related to the variable physical parameter QU1A within a specified time. If the processing unit 331 determines, based on the verification operation, that the variable physical parameter QU1A enters the specific physical parameter range RD1E5, the processing unit 331 assigns the determined specific input code UW81, which is equal to the specific measurement range code EM15, to the variable physical parameter range code UN8A. For example, the specific physical parameter range RD1E5 is equal to one of the physical parameter application range RD1EL and the physical parameter target range RD1EU.

[0325] In some embodiments, when the processing unit 331 causes the variable physical parameter QU1A to be in the target physical parameter state JE1U by checking the first mathematical relation KQ81, the input unit 380 receives the user input operation BQ82 and provides input data DH82 to the processing unit 331 in response to the user input operation BQ82. The processing unit 331 performs a data encoding operation EA82 on the input data DH82 to determine the specific input code UW82.

[0326] Please see Figure 27 , Figure 28 and Figure 29 . Figure 27 To illustrate Figure 1 A schematic diagram of an embodiment 9036 of the control system 901 is shown. Figure 28 To illustrate Figure 1 A schematic diagram of an embodiment 9037 of the control system 901 is shown. Figure 29 To illustrate Figure 1 A schematic diagram of an embodiment 9038 of the control system 901 is shown. Figure 27 , Figure 28 and Figure 29 As shown, each of the implementation structures 9036, 9037, and 9038 includes the control device 212 and the functional device 130. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the receiving unit 337, and the transmission unit 384.

[0327] In some embodiments, the storage unit 332 has the memory location YM8L, and stores the application range limit value pair DN1L in the memory location YM8L. The memory location YM8L is identified based on a preset measurement value application range code EM1L. For example, the memory location YM8L is identified based on, or by, the memory address AM8L.

[0328] The storage unit 332 has memory location YM8T and memory location YX8T, which is different from memory location YM8T. The target range limit value pair DN1T is stored in memory location YM8T, and the handle CC1T is stored in memory location YX8T. For example, both memory locations YM8T and YX8T are identified based on a preset target range code EM1T for the measured value. The handle CC1T is preset based on the specified physical parameter QD1T within the target range RD1ET for the physical parameter. Memory location YM8T is identified based on or by a memory address AM8T. Memory location YX8T is identified based on or by a memory address AX8T. Memory location YM8T is different from memory location YX8T.

[0329] The storage unit 332 further has a memory location YM82 and a memory location YX82 different from the memory location YM82. The candidate range limit value pair DN1B is stored in the memory location YM82, and a handle CC12 is stored in the memory location YX82. For example, both the memory location YM82 and the memory location YX82 are identified based on a preset measurement value candidate range code EM12. The handle CC12 is preset based on a specified physical parameter QD12 within the physical parameter candidate range RD1E2.

[0330] For example, the measurement application functional specification GAL8 includes a physical parameter representation GA812, which represents the specified physical parameter QD12 within the target range RD1E2. The handle CC12 is preset based on the physical parameter representation GA812 and a data encoding operation ZX92 for converting the physical parameter representation GA812. The memory location YM82 is identified based on, or by, the memory address AM82. The memory location YX82 is identified based on, or by, the memory address AX82.

[0331] For example, the storage unit 332 further has a memory location YX8L, and a handle CC1L is stored in the memory location YX8L. The memory location YX8L is identified based on, or by, a memory address AX8L. The handle CC1L is preset based on a specified physical parameter QD1L within the application range RD1EL of the physical parameter.

[0332] In some embodiments, the application range limit pair DN1L, the target range limit pair DN1T, and the candidate range limit pair DN1B all belong to a measurement range limit data code type TN81. The measurement range limit data code type TN81 is identified by a measurement range limit data code type identifier HN81. The handles CC1T and CC12 both belong to a handle type TC81. The handle type TC81 is identified by a handle type identifier HC81. Both the measurement range limit data code type identifier HN81 and the handle type identifier HC81 are preset.

[0333] The memory address AM8L is preset based on the preset measurement value application range code EM1L and the preset measurement range limit data code type identifier HN81. The memory address AX8L is preset based on the preset measurement value application range code EM1L and the preset handle type identifier HC81. The memory address AX8T is preset based on the preset measurement value target range code EM1T and the preset handle type identifier HC81. The third memory address AM8T is preset based on the preset measurement value target range code EM1T and the preset measurement range limit data code type identifier HN81. The memory address AM82 is preset based on the preset measurement value candidate range code EM12 and the preset measurement range limit data code type identifier HN81. The memory address AX82 is preset based on the preset measurement value candidate range code EM12 and the preset handle type identifier HC81.

[0334] In some embodiments, the processing unit 331 responds to the control signal SC81 to determine the measurement value application range code EM1L, responds to the control signal SC81 to obtain the preset measurement range limit data code type identifier HN81, obtains the memory address AM8L based on the determined measurement value application range code EM1L and the obtained measurement range limit data code type identifier HN81, and uses the storage unit 332 to access the application range limit value pair DN1L stored in the memory location YM8L based on the obtained memory address AM8L to obtain the application range limit value pair DN1L.

[0335] The processing unit 331 checks the mathematical relationship KV81 based on the data comparison CD81 between the measured value VN81 and the obtained application range boundary value DN1L to make a logical decision PB81 on whether the measured value VN81 is within the selected application range RN1L. If the logical decision PB81 is affirmative, the processing unit 331 determines the current application range RD1EL of the variable physical parameter QU1A. For example, if the logical decision PB81 is affirmative, the processing unit 331 determines a physical parameter situation where the variable physical parameter QU1A is currently within the application range RD1EL, and thereby identifies a physical parameter relationship KD8L between the variable physical parameter QU1A and the application range RD1EL as a physical parameter intersection relationship where the variable physical parameter QU1A is currently within the application range RD1EL. The processing unit 331 checks the physical parameter relationship KD8L by checking the mathematical relationship KV81.

[0336] The processing unit 331 responds to the control signal SC81 to obtain the preset handle type identifier HC81, and obtains the measurement target range code EM1T from the control signal SC81. Under the condition that the processing unit 331 determines the range difference DS81, the processing unit 331 obtains the memory address AX8T based on the obtained measurement target range code EM1T and the obtained handle type identifier HC81, and uses the storage unit 332 to access the handle CC1T stored at the memory location YX8T based on the obtained memory address AX8T. The processing unit 331, based on the accessed handle CC1T, causes the output component 338 to perform the signal generation operation BY81 for the measurement application function FA81 to generate the operation signal SG81. The operation signal SG81 is used to control the physical parameter application unit 335 to cause the variable physical parameter QU1A to enter the physical parameter target range RD1ET.

[0337] The processing unit 331 obtains the third memory address AM8T based on the obtained target range code EM1T and the obtained measurement range boundary data code type identifier HN81, and uses the storage unit 332 to access the target range boundary value pair DN1T stored in the memory location YM8T based on the obtained third memory address AM8T to obtain the target range boundary value pair DN1T. The processing unit 331 checks the mathematical relationship KV91 between the measured value VN82 and the target range RN1T by comparing the measured value VN82 and the obtained target range boundary value pair DN1T to make the logical decision PB91 on whether the measured value VN82 is within the target range RN1T.

[0338] In some embodiments, before the receiving unit 337 receives the control signal SC81, one of the receiving components 3371 and 3372 receives write request information WN8L containing the preset application range limit value pair DN1L and the default memory address AM8L. For example, one of the receiving components 3371 and 3372 receives the write request information WN8L in advance from the control device 212. The processing unit 331 responds to the write request information WN8L by using the storage unit 332 to store the application range limit value pair DN1L of the write request information WN8L into the memory location AM8L.

[0339] Before the receiving unit 337 receives the control signal SC81, one of the receiving components 3371 and 3372 receives the write request information WC8T, which includes the preset handle CC1T and the default memory address AX8T. For example, one of the receiving components 3371 and 3372 receives the write request information WC8T in advance from the control device 212. The processing unit 331 responds to the write request information WC8T by using the storage unit 332 to store the handle CC1T of the write request information WC8T into the memory location AX8T.

[0340] Before the receiving unit 337 receives the control signal SC81, one of the receiving components 3371 and 3372 receives a write request message WN8T containing the default application target limit value pair DN1T and the preset third memory address AM8T. For example, one of the receiving components 3371 and 3372 receives the write request message WN8T in advance from the control device 212. The processing unit 331 responds to the write request message WN8T by using the storage unit 332 to store the application target limit value pair DN1T of the write request message WN8T into the memory location AM8T.

[0341] The storage unit 332 further has a memory location YN81, and the nominal range limit value pair DD1A is stored in the memory location YN81. The memory location YN81 is identified based on, or by, a memory address AN81. For example, the memory address AN81 is defaulted. Before the receiving unit 337 receives the control signal SC81, one of the receiving components 3371 and 3372 receives a write request message WD81 containing the preset nominal range limit value pair DD1A and the default memory address AN81. For example, one of the receiving components 3371 and 3372 receives the write request message WD81 in advance from the control device 212. The processing unit 331 responds to the write request message WD81 by using the storage unit 332 to store the nominal range limit value pair DD1A of the write request message WD81 into the memory location YN81.

[0342] In some embodiments, the processing unit 331 obtains the memory address AM82 based on the determined candidate range code EM12 of the measurement value and the obtained measurement range limit data code type identifier HN81, and uses the storage unit 332 to access the candidate range limit value pair DN1B stored in the memory location YM82 based on the obtained memory address AM82 to obtain the candidate range limit value pair DN1B.

[0343] In some embodiments, the specific physical parameter range RD1E5 is represented by a specific measurement value range RN15. The specific measurement value range RN15 has a specific range limit pair DN1E. The storage unit 332 further has a memory location YM85 and a memory location YX85 different from the memory location YM85. The memory location YM85 is identified based on a memory address AM85 and preset based on the specific measurement value range code EM15 and the measurement range limit data code type identifier HN81. The memory location YX85 is identified based on a memory address AX85 and preset based on the specific measurement value range code EM15 and the handle type identifier HC81.

[0344] The storage unit 332 stores the specific range limit value pair DN1E at memory location YM85 and a handle CC15 at memory location YX85. The specific range limit value pair DN1E is configured to represent the specific physical parameter range RD1E5 and belongs to the measurement range limit data code type TN81. The handle CC15 belongs to the handle type TC81 and is preset based on a specified physical parameter QD5T within the specific physical parameter range RD1E5. The obtained measurement value target range code EM1T.

[0345] Under the condition that the determined specific input code UW81 is equal to the preset specific measurement range code EM15, resulting in a code difference DX81 between the determined specific input code UW81 and the variable physical parameter range code UN8A equal to the obtained measurement target range code EM1T, the processing unit 331 determines the code difference DX81 by performing the data comparison CE11. Under the condition that the processing unit 331 determines the code difference DX81, the processing unit 331 obtains the memory address AX85 based on the determined specific input code UW81 equal to the preset specific measurement range code EM15 and the obtained handle type identifier HC81.

[0346] The processing unit 331 uses the storage unit 332 to access the handle CC15 stored in the memory location YX85 based on the obtained memory address AX85, and causes the output component 338 to perform the signal generation operation BY82 for the measurement application function FA81 to generate the operation signal SG82. The operation signal SG82 is used to control the physical parameter application unit 335 to cause the variable physical parameter QU1A to enter the specific physical parameter range RD1E5 contained in the corresponding physical parameter range RY1ET.

[0347] In some embodiments, after the processing unit 331 causes the output component 338 to perform the signal generation operation BY82 to generate the operation signal SG82 within an operation time TF82, the sensing unit 334 senses the variable physical parameter QU1A to generate a sensing signal SN83. The processing unit 331 responds to the sensing signal SN83 at a specified time TG83 after the operation time TF82 to obtain a measurement value VN83. The processing unit 331 is configured to obtain the memory address AM85 based on the determined specific input code UW81 equal to the preset specific measurement value range code EM15 and the obtained measurement range limit data code type identifier HN81, and to use the storage unit 332 to access the specific range limit value pair DN1E stored at the memory location YM85 based on the obtained memory address AM85.

[0348] When the processing unit 331 checks the mathematical relationship KV83 between the measured value VN83 and the specific measurement range RN15 by comparing the measured value VN83 and the obtained specific range limit value pair DN1E to determine that the variable physical parameter QU1A is currently in the specific physical parameter range RD1E5, the processing unit 331 uses the storage unit 332 to assign the determined specific input code UW81 to the variable physical parameter range code UN8A based on a code difference between the variable physical parameter range code UN8A and the determined specific input code UW81, which is equal to the preset specific measurement range code EM15.

[0349] For example, the processing unit 331 determines the current physical parameter status of the variable physical parameter QU1A within the specific physical parameter range RD1E5 by examining the mathematical relationship KV83, and thereby identifies a physical parameter relationship KD85 between the variable physical parameter QU1A and the specific physical parameter range RD1E5 as a physical parameter intersection relationship where the variable physical parameter QU1A is currently within the specific physical parameter range RD1E5. The processing unit 331 examines the physical parameter relationship KD85 by examining the mathematical relationship KV83.

[0350] Please see Figure 30 , Figure 31 and Figure 32 . Figure 30 To illustrate Figure 1 A schematic diagram of an embodiment 9039 of the control system 901 is shown. Figure 31 To illustrate Figure 1 A schematic diagram of an embodiment 9040 of the control system 901 described herein. Figure 32 To illustrate Figure 1 A schematic diagram of an embodiment 9041 of the control system 901 described herein. (See diagram below.) Figure 30 , Figure 31 and Figure 32 As shown, each of the implementation structures 9039, 9040, and 9041 includes the control device 212 and the functional device 130. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the timer 342, the receiving unit 337, and the transmission unit 384.

[0351] In some embodiments, the control signal SC81 received by the receiving unit 337 transmits the control information CG81. The control information CG81 includes a timing operation mode code CP21, a measurement value specified range code EL1T, a specified range limit value pair DQ1T, a measurement time length value VH8T, a target range limit value pair DN1T, a rated range limit value pair DD1A, a handle CC1T, and a measurement value target range code EM1T. The timing operation mode code CP21 represents the timing operation mode WU21 in which the timer 342 operates.

[0352] The processing unit 331 obtains the control information CG81 from the control signal SC81 and starts the timer 342 based on the obtained timing operation mode code CP21 to operate the timer 342 in the timing operation mode WU21. The timer 342 senses the clock time TH1A in the timing operation mode WU21. The timing operation mode WU21 is characterized based on the plurality of different clock time reference intervals HR1E1, HR1E2, ... . When the processing unit 331 determines the range difference DS81 based on the control signal SC81, the processing unit 331 causes the output component 338 to perform the signal generation operation BY81 based on the obtained handle CC1T. The signal generation operation BY81 is used to cause the variable physical parameter QU1A to enter the target range RD1ET of the physical parameter.

[0353] In some embodiments, the processing unit 331 obtains the target range code EM1T and the target range limit pair DN1T from the received control signal SC81. When the specific measurement range code EM14 differs from the obtained target range code EM1T, and the processing unit 331 determines the target range RD1ET of the physical parameter QU1A by comparing the measurement value VN82 and the obtained target range limit pair DN1T, the processing unit 331 uses the storage unit 332 to assign the obtained target range code EM1T to the variable physical parameter range code UN8A based on the code difference DF81 between the variable physical parameter range code UN8A (equal to the specific measurement range code EM14) and the obtained target range code EM1T.

[0354] For example, the processing unit 331 determines the current physical parameter status of the variable physical parameter QU1A within the target physical parameter range RD1ET by comparing the measured value VN82 with the obtained target range limit value pair DN1T, and thereby identifies a physical parameter relationship KD8T between the variable physical parameter QU1A and the target physical parameter range RD1ET as a physical parameter intersection relationship where the variable physical parameter QU1A is currently within the target physical parameter range RD1ET. The processing unit 331 checks the physical parameter relationship KD8T by comparing the measured value VN82 with the obtained target range limit value pair DN1T.

[0355] In some embodiments, the processing unit 331 responds to the control signal SC81 to perform a check operation BV51 for checking a mathematical relationship KV51 between the measured value VN81 and the target range RN1T of the measured value. When the processing unit 331 determines, based on the check operation BV51, that the variable physical parameter QU1A is currently in the corresponding physical parameter range RY1ET, the processing unit 331, based on the control signal SC81, executes the signal generation control GY81 within the operation time TF81 to transmit the operation signal SG81 to the physical parameter application unit 335. The operation signal SG81 is used to cause the variable physical parameter QU1A to move from the corresponding physical parameter range RY1ET in which the variable physical parameter QU1A is currently in into the target range RD1ET.

[0356] The control signal SC81 transmits the target range limit value pair DN1T, the rated range limit value pair DD1A, and the handle CC1T. The processing unit 331 obtains the target range limit value pair DN1T from the control signal SC81 and performs the check operation BV51 by comparing the measured value VN81 with the obtained target range limit value pair DN1T to make a logical decision PB51 regarding whether the measured value VN81 is within the corresponding measured value range RX1T. If the logical decision PB51 is affirmative, the processing unit 331 determines the current corresponding physical parameter range RY1ET in which the variable physical parameter QU1A is located.

[0357] The processing unit 331 obtains the handle CC1T from the control signal SC81 and executes the signal generation control GY81 based on the obtained handle CC1T. The output component 338 generates the operation signal SG81 in response to the signal generation control GY81. For example, the control signal SC81 transmits the measurement target range code EM1T, the measurement target range code EM1T is obtained from the control signal SC81, and the stored handle CC1T is obtained from the storage unit 332 based on the obtained measurement target range code EM1T.

[0358] In some embodiments, the processing unit 331 obtains the nominal range limit value pair DD1A from the control signal SC81 and performs a check operation BM51 to check a mathematical relationship KM51 between the measured value VN81 and the nominal measured value range RD1N by comparing the measured value VN81 with the obtained nominal range limit value pair DD1A. For example, the processing unit 331 makes the logical decision PB51 based on the check operation BV51 and the check operation BM51. For example, the physical parameter relationship check control GX8T includes the check operation BV51 and the check operation BM51.

[0359] The processing unit 331 responds to the sensing signal SN82 within the specified time TG82 after the operation time TF81 to obtain the measurement value VN82 in the specified measurement value format HH81. The processing unit 331 checks the mathematical relationship KV91 between the measurement value VN82 and the target range RN1T by comparing the measurement value VN82 with the target range limit value DN1T obtained from the control signal SC81 to make the logical decision PB91 on whether the measurement value VN82 is within the target range RN1T. If the logical decision PB91 is affirmative, the processing unit 331 determines within the specified time TG82 that the variable physical parameter QU1A is currently in the target range RD1ET of the physical parameter, and causes the transmission unit 384 to transmit the control response signal SE81, which transmits the obtained measurement value VN82, to the operation unit 297.

[0360] In some embodiments, the variable physical parameter QU1A is characterized based on the physical parameter target range RD1ET and a physical parameter application range RD1EJ different from the physical parameter target range RD1ET, and one of the physical parameter target range RD1ET and the physical parameter application range RD1EJ is represented by a measurement value indication range RN1H. When the processing unit 331 determines that the variable physical parameter QU1A is currently in the physical parameter application range RD1EJ by examining a mathematical relationship KH81 between the measurement value VN81 and the measurement value indication range RN1H, the processing unit 331 causes the variable physical parameter QU1A to move from the physical parameter application range RD1EJ into the physical parameter target range RD1ET. For example, the physical parameter application range RD1EJ is equal to one of the corresponding physical parameter range RY1ET and the physical parameter application range RC1EL.

[0361] In a first case: the physical parameter application range RD1EJ is represented by the measurement value indication range RN1H; the measurement value indication range RN1H is equal to the measurement value application range RN1L; and the mathematical relation KH81 is equal to the mathematical relation KV81. In a second case, different from the first case: the physical parameter application range RD1EJ corresponds to the physical parameter target range RD1ET and is equal to the corresponding physical parameter range RY1ET; the corresponding physical parameter range RY1ET is represented by the corresponding measurement value range RX1T; the physical parameter target range RD1ET is represented by the measurement value indication range RN1H; the measurement value indication range RN1H is equal to the measurement value target range RN1T; and the mathematical relation KH81 is equal to the mathematical relation KV51.

[0362] In some embodiments, the variable physical parameter QU1A is associated with a variable time length LF8A and is characterized based on a physical parameter target range RD1EV. The physical parameter target range RD1EV is indicated by a physical parameter target range code UN1V. The timer 342 is used to sense or measure the variable time length LF8A in a fixed-time operation mode WU11, which is different from the timing operation mode WU21. The timing operation mode WU11 is represented by a fixed-time operation mode code CP11, which is different from the timing operation mode code CP21. The variable time length LF8A is characterized based on a reference time length LJ8V.

[0363] The reference time length LJ8V is represented by a measurement time length value CL8V. The measurement time length value CL8V is preset based on the reference time length LJ8V and the timer specification FT21 in a specified measurement value format HH91. For example, the specified measurement value format HH91 is characterized based on a specified number of bits UY91. When the variable physical parameter QU1A is within the target range RD1EU of the physical parameter within the clock time application interval HR1EU, the receiving unit 337 receives a control signal SC88 from the control device 212. For example, the specified measurement value format HH91 is a specified count value format.

[0364] The control signal SC88 transmits the timing operation mode code CP11, the physical parameter target range code UN1V, the measurement time length value CL8V, and a handle CC1V. For example, the handle CC1V is preset based on a specified physical parameter QD1V within the physical parameter target range RD1EV. The control signal SC88, by transmitting the physical parameter target range code UN1V, serves to indicate at least one of the physical parameter target range RD1EV and the physical parameter target state JE1V.

[0365] In some embodiments, the processing unit 331 is configured to obtain the timing operation mode code CP11, the physical parameter target range code UN1V, the measurement time length value CL8V, and the handle CC1V from the control signal SC88. The processing unit 331 stops the timer 342 based on the obtained timing operation mode code CP11, restarts the timer 342 based on the obtained measurement time length value CL8V, and operates the timer 342 in the timing operation mode WU11 by restarting the timer 342. The timer 342 is restarted to begin an application time length LT8V that matches the reference time length LJ8V. In the timing operation mode WU11, the timer 342 senses the variable time length LF8A to experience the application time length LT8V by performing a counting operation BC8V for the application time length LT8V. The timing operation mode WU11 is characterized based on the reference time length LJ8V.

[0366] The processing unit 331 traverses the application time length LT8V based on the counting operation BC8V to reach a specific time TJ8V. The application time length LT8V has an end time TZ8V. The specific time TJ8V is adjacent to the end time TZ8V. For example, the control signal SC88 transmits control information CG88. The control information CG88 includes the timing operation mode code CP11, the physical parameter target range code UN1V, the measurement time length value CL8V, and the handle CC1V. The processing unit 331 is configured to obtain the control information CG88 from the control signal SC88. In response to the obtained control information CG88, the processing unit 331 ensures that the variable physical parameter QU1A is within the physical parameter target range RD1EV within the application time length LT8V.

[0367] The measurement application functional specification GAL8 includes a time length representation GA8KV. The time length representation GA8KV is used to represent the reference time length LJ8V. For example, the time length value CL8V is preset in the specified measurement value format HH91 based on the time length representation GA8KV, the timer specification FT21, and a data encoding operation ZX8KV for converting the time length representation GA8KV. The physical parameter target range RD1EV is configured to correspond to a corresponding physical parameter range RY1EV. The nominal physical parameter range RD1E is equal to a range combination of the physical parameter target range RD1EV and the corresponding physical parameter range RY1EV.

[0368] In some embodiments, the processing unit 331 causes the timer 342 to operate in the timing operation mode WU11 based on the obtained timing operation mode code CP11. The processing unit 331 causes the timer 342 to perform the counting operation BC8V in the timing operation mode WU11 based on the obtained measurement time length value CL8V. When the variable physical parameter QU1A is configured to be within the target physical parameter range RD1EV based on the control signal SC81, the processing unit 331 reaches the specific time TJ8V based on the counting operation BC8V, and within the specific time TJ8V, causes the output component 338 to perform the signal generation operation BY89, which causes the variable physical parameter QU1A to leave the target physical parameter range RD1EV and enter the corresponding physical parameter range RY1EV.

[0369] For example, when the variable physical parameter QU1A is configured to be within the physical parameter target range RD1EV based on the control signal SC88, the processing unit 331 experiences the application time length LT8V based on the counting operation BC8V to reach the specific time TJ8V. Within the specific time TJ8V, the processing unit 331 obtains a physical parameter target range code UN1W, which is different from the obtained physical parameter target range code UN1V, by performing a scientific calculation MK81 using the obtained physical parameter target range code UN1V. The physical parameter target range RD1EV is represented by the physical parameter target range code UN1W. For example, the physical parameter target range code UN1W indicates the physical parameter target state JE1W.

[0370] For example, the control device 212 determines the measurement time length value CL8V based on the reference time length LJ8V and the timer specification FT21, and outputs the control signal SC88 based on the determined measurement time length value CL8V. The control information CG88 further includes the measurement time length value CL8V. The control signal SC88 is used to cause the variable physical parameter QU1A to have an application time length LT8V that matches the reference time length LJ8V within the physical parameter target range RD1EV. For example, the physical parameter target range code UN1W is the same as the measurement value candidate range code EM12.

[0371] For example, when the receiving unit 337 receives the control signal SC88, the variable physical parameter range code UN8A is equal to the physical parameter target status code EW1U. When the physical parameter target range code UN1V of the control signal SC88 is different from the physical parameter target status code EW1U of the variable physical parameter range code UN8A, the processing unit 331 generates an operation signal SG88 based on a code difference DX88 between the physical parameter target range code UN1V of the control signal SC88 and the physical parameter target status code EW1U of the variable physical parameter range code UN8A, and transmits the operation signal SG88 to the physical parameter application unit 335. The operation signal SG88 is used to bring the variable physical parameter QU1A into the physical parameter target range RD1EV.

[0372] In some embodiments, the processing unit 331 obtains the memory address AX82 based on the obtained candidate range code EM12 of the measurement value (or the obtained target range code UN1W of the physical parameter) and the obtained handle type identifier HC81. The processing unit 331 uses the storage unit 332 to read the handle CC12 stored at the memory location YX82 based on the obtained memory address AX82, and executes a signal generation control GY89 for controlling the output component 338 based on the read handle CC12.

[0373] The output component 338 responds to the signal generation control GY89 to perform the signal generation operation BY89 for the measurement application function FA81 to generate the operation signal SG89, which controls the physical parameter application unit 335 to cause the variable physical parameter QU1A to enter the physical parameter target range RD1EW contained in the corresponding physical parameter range RY1EV. For example, the operation signal SG89 is one of a function signal and a control signal. The physical parameter target range RD1EW is one of the physical parameter application range RD1ET, the physical parameter target range RD1EU, and the physical parameter candidate range RD1E2, and is different from the physical parameter target range RD1EV.

[0374] For example, the processing unit 331 causes the timer 342 to execute the counting operation BC8V based on the obtained measurement time length value CL8V to reach the end time TZ8V. When the timer 342 reaches the end time TZ8V by executing the counting operation BC8V, the timer 342 transmits an interrupt request signal UH8V to the processing unit 331 to reach the specific time TJ8V. Within the specific time TJ8V, the processing unit 331 responds to the interrupt request signal UH8V to perform the scientific calculation MK81 using the obtained physical parameter target range code UN1V to obtain a physical parameter target range code UN1W that is different from the obtained physical parameter target range code UN1V. For example, the processing unit 331 identifies the specific time TJ8V by receiving the interrupt request signal UH8V from the timer 342, and thereby experiences the application time length LT8V. The specific time TJ8V is adjacent to the end time TZ8V.

[0375] In some embodiments, the variable physical parameter QU1A is characterized based on the nominal physical parameter range RD1E. The nominal physical parameter range RD1E includes the target physical parameter range RD1ET, the application physical parameter range RD1EL, and the candidate physical parameter range RD1E2, and is represented by the nominal measurement range RD1N. For example, the nominal measurement range RD1N includes the target measurement range RN1T, the application measurement range RN1L, and the candidate measurement range RN12. The target physical parameter range RD1ET, the application physical parameter range RD1EL, and the candidate physical parameter range RD1E2 are represented by the target measurement range RN1T, the application measurement range RN1L, and the candidate measurement range RN12, respectively.

[0376] The application range RD1EL of the physical parameter and the candidate range RD1E2 of the physical parameter are different. The target range RD1ET of the physical parameter may be the same as or different from the application range RD1EL of the physical parameter. The target range RD1ET of the physical parameter may be the same as or different from the candidate range RD1E2 of the physical parameter. The application range RN1L of the measured value and the candidate range RN12 of the measured value are different. The target range RN1T of the measured value may be the same as or different from the application range RN1L of the measured value. The target range RN1T of the measured value may be the same as or different from the candidate range RN12 of the measured value.

[0377] In some embodiments, the nominal physical parameter range RD1E of the variable physical parameter QU1A includes the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... . The plurality of different physical parameter reference ranges RD1E1, RD1E2, ... includes the physical parameter target range RD1ET, the physical parameter application range RD1EL, and the physical parameter candidate range RD1E2. The variable physical parameter QU1A is in one of a plurality of different reference states based on the plurality of different physical parameter reference ranges RD1E1, RD1E2, ... The plurality of different reference states includes a first reference state, a second reference state, and a third reference state, thereby the variable physical parameter QU1A is characterized by a variable current state. The variable current state is one of the plurality of different reference states.

[0378] For example, the first reference state and the second reference state are complementary. When the variable physical parameter QU1A is within the application range RD1EL of the physical parameter, the variable physical parameter QU1A is in the first reference state. When the variable physical parameter QU1A is within the candidate range RD1E2 of the physical parameter, the variable physical parameter QU1A is in the second reference state. When the variable physical parameter QU1A is within the target range RD1ET of the physical parameter, the variable physical parameter QU1A is in the third reference state. The third reference state may be the same as or different from the first reference state.

[0379] The handle CC1T transmitted by the control signal SC81 and the handle CC1T stored by the storage unit 332 are both preset based on the specified physical parameter QD1T within the target range of the physical parameter RD1ET. Upon determining the range difference DS81, the processing unit 331, based on the obtained handle CC1T, causes the output component 338 to perform the signal generation operation BY81 for the measurement application function FA81 to generate the operation signal SG81.

[0380] The physical parameter application unit 335 responds to the operation signal SG81 to cause the variable physical parameter QU1A to change from a current state to the third reference state, or responds to the operation signal SG81 to cause the variable physical parameter QU1A to change from a specific physical parameter QU17 to a specific physical parameter QU18. For example, the current state is one of the first reference state and the second reference state. The specific physical parameter QU17 is within the physical parameter application range RD1EL or within the physical parameter candidate range RD1E2. The specific physical parameter QU18 is within the physical parameter target range RD1ET. For example, the specific physical parameter QU17 is within the corresponding physical parameter range RY1ET.

[0381] In some embodiments, the plurality of different reference states respectively cause the physical parameter application unit 335 to be in a plurality of different functional states. The plurality of different functional states are distinct and include a first functional state, a second functional state, and a third functional state. For example, the first functional state and the second functional state are complementary. The physical parameter application unit 335 is in the first functional state when the variable physical parameter QU1A is within the physical parameter application range RD1EL. The physical parameter application unit 335 is in the second functional state when the variable physical parameter QU1A is within the physical parameter candidate range RD1E2. The physical parameter application unit 335 is in the third functional state when the variable physical parameter QU1A is within the physical parameter target range RD1ET. The third functional state may be the same as or different from the first functional state.

[0382] For example, the target range code EM1T is a measurement reference range number. The target range RN1T is arranged within the nominal measurement range RD1N based on the target range code EM1T. The application range code EM1L is a measurement reference range number. The application range RN1L is arranged within the nominal measurement range RD1N based on the application range code EM1L. The candidate range code EM12 is a measurement reference range number. The candidate range RN12 is arranged within the nominal measurement range RD1N based on the candidate range code EM12.

[0383] In some embodiments, the target physical parameter range RD1ET is one of a relatively high physical parameter range and a relatively low physical parameter range; and the application range RD1EL is the other of the relatively high physical parameter range and the relatively low physical parameter range. When the variable physical parameter QU1A is the first variable voltage, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high voltage range and a relatively low voltage range. When the variable physical parameter QU1A is the first variable current, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high current range and a relatively low current range. When the variable physical parameter QU1A is the first variable resistance, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high resistance range and a relatively low resistance range.

[0384] When the variable physical parameter QU1A is the first variable brightness, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high brightness range and a relatively low brightness range. When the variable physical parameter QU1A is the first variable light intensity, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high light intensity range and a relatively low light intensity range. When the variable physical parameter QU1A is the first variable volume, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high volume range and a relatively low volume range. When the variable physical parameter QU1A is the first variable angular velocity, the relatively high physical parameter range and the relatively low physical parameter range are respectively a relatively high angular velocity range and a relatively low angular velocity range.

[0385] For example, the target physical parameter range RD1ET is one of a relatively high physical parameter range and a relatively low physical parameter range; and the candidate physical parameter range RD1E2 is the other of the relatively high physical parameter range and the relatively low physical parameter range. For example, the application range RD1EL of the physical parameter is one of a relatively high physical parameter range and a relatively low physical parameter range; and the candidate physical parameter range RD1E2 is the other of the relatively high physical parameter range and the relatively low physical parameter range. For example, the target physical parameter range RD1ET is one of a relatively high physical parameter range and a relatively low physical parameter range; and the specific physical parameter range RD1E4 is the other of the relatively high physical parameter range and the relatively low physical parameter range. For example, the target physical parameter range RD1ET is one of a relatively high physical parameter range and a relatively low physical parameter range; and the specific physical parameter range RD1E5 is the other of the relatively high physical parameter range and the relatively low physical parameter range.

[0386] In some embodiments, where the functional device 130 is a relay, the physical parameter application unit 335 is a control switch. When the physical parameter application unit 335 is the control switch, the control switch has a variable switching state and is in one of an on state and an off state based on the variable physical parameter QU1A. For example, the variable switching state is equal to one of the on state and the off state, and the on state and the off state are complementary. The on state is one of the first functional state and the second functional state, and the off state is the other of the first functional state and the second functional state.

[0387] When the processing unit 331 determines the range difference DS81, the processing unit 331 identifies the variable current state as a specific state different from the third reference state, and thereby generates the operation signal SG81. The physical parameter application unit 335 responds to the operation signal SG81 to cause the variable physical parameter QU1A to enter the physical parameter target range RD1ET, thus changing the variable current state to the third reference state. When the processing unit 331 determines the code difference DX81, the processing unit 331 uses the output component 338 to generate the operation signal SG82. The physical parameter application unit 335 responds to the operation signal SG82 to cause the variable physical parameter QU1A to move from the physical parameter target range RD1ET to the specific physical parameter range RD1E5 contained in the corresponding physical parameter range RY1ET; therefore, when the specific physical parameter range RD1E5 is equal to the physical parameter candidate range RD1E2, the variable current state is changed to the second reference state.

[0388] For example, the variable physical parameter QU1A is the first variable current. The physical parameter application range RD1EL, the physical parameter candidate range RD1E2, and the physical parameter target range RD1ET are respectively a first current reference range, a second current reference range, a third current reference range, and a fourth current reference range. The handle CC1L is preset based on a first specified current within the first current reference range. The handle CC12 is preset based on a second specified current within the second current reference range. The handle CC1T is preset based on a third specified current within the third current reference range. The handle CC1V is preset based on a fourth specified current within the fourth current reference range.

[0389] The measurement time length value CL8V is preset in the specified measurement value format HH91 based on the time length representation GA8KV, the timer specification FT21, and the data encoding operation ZX8KV. The processing unit 331 obtains the measurement time length value CL8V from the control signal SC88 and causes the timer 342 to execute the counting operation BC8V based on the obtained measurement time length value CL8V. Under the condition that the first variable current is configured to be within the fourth current reference range based on the control signal SC88, the processing unit 331 experiences the application time length LT8V based on the counting operation BC8V to reach the specific time TJ8V, thereby maintaining the first variable current within the fourth current reference range within the application time length LT8V related to the counting operation BC8V.

[0390] For example, when the variable physical parameter QU1A is a variable speed, the application range RD1EL, the candidate range RD1E2, and the target range RD1ET are respectively a first speed reference range, a second speed reference range, and a third speed reference range. When the variable physical parameter QU1A is a variable temperature, the application range RD1EL, the candidate range RD1E2, and the target range RD1ET are respectively a first temperature reference range, a second temperature reference range, and a third temperature reference range.

[0391] Please see Figure 33 . Figure 33 To illustrate Figure 1 A schematic diagram of an embodiment 9042 of the control system 901 described herein. (See diagram below.) Figure 33 As shown, the implementation structure 9042 includes the control device 212, the functional device 130, and a server 280. The control device 212 is linked to the server 280. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the receiving unit 337, the transmission unit 384, and a timer 340 coupled to the processing unit 331. The timer 340 is controlled by the processing unit 331.

[0392] In some embodiments, the receiving component 3374, included in the receiving unit 337, is coupled to the processing unit 331 and receives the physical parameter signal SB81 from the control device 212 when the variable physical parameter QU1A is to be provided by the control device 212. The physical parameter application unit 335 receives the physical parameter signal SB81 from the receiving component 3374. The processing unit 331 causes the physical parameter application unit 335 to use the physical parameter signal SB81 to form the variable physical parameter QU1A depending on the physical parameter signal SB81.

[0393] The control device 212 includes the operation unit 297, a storage unit 250 coupled to the operation unit 297, and a sensing unit 560 coupled to the operation unit 297. The operation unit 297 executes one of a read operation BR81 and a sensing operation BZ81 to output the physical parameter signal SB81. The read operation BR81 reads a physical parameter data record DU81 stored in one of the storage unit 250 and the server 280. The sensing unit 560 senses a variable physical parameter QL1A by executing the sensing operation BZ81, causing the operation unit 297 to output the physical parameter signal SB81. For example, the sensing unit 560 is controlled by the operation unit 297 to sense the variable physical parameter QL1A.

[0394] For example, the variable physical parameter QU1A belongs to the physical parameter type TU11. The variable physical parameter QL1A belongs to a physical parameter type TL11. The physical parameter type TU11 may be the same as or different from the physical parameter type TL11. The control device 212 is in an application environment EX81. One of the control device 212 and the application environment EX81 has the variable physical parameter QL1A. The physical parameter data record DU81 is provided in advance based on a variable physical parameter QY1A. The variable physical parameter QY1A belongs to the physical parameter type TL11. For example, the physical parameter type TU11 is different from a time type.

[0395] In some embodiments, the physical parameter application unit 335 includes a driving circuit 3355 and a physical parameter forming portion 3351 coupled to the driving circuit 3355. The physical parameter forming portion 3351 is used to form the variable physical parameter QU1A and includes the physical parameter forming region AU11. The driving circuit 3355 is coupled to the receiving component 3374 and the output component 338, and is controlled by the processing unit 331 through the output component 338. The driving circuit 3355 receives the physical parameter signal SB81 from the receiving component 3374, receives the operation signal SG81 from the output component 338, and processes the physical parameter signal SB81 in response to the operation signal SG81 to output a driving signal SL81.

[0396] The physical parameter forming section 3351 receives the drive signal SL81 and responds to the drive signal SL81 to bring the variable physical parameter QU1A within the target physical parameter range RD1ET. For example, if the reasonable decision PW81 is affirmative, the processing unit 331 causes the output component 338 to perform the signal generation operation BY81 for the measurement application function FA81 to provide the operation signal SG81 to the drive circuit 3355. The drive circuit 3355 responds to the operation signal SG81 to drive the physical parameter forming section 3351 to bring the variable physical parameter QU1A into the target physical parameter range RD1ET.

[0397] In some embodiments, the nominal measurement range RD1N is configured to have a plurality of different measurement reference ranges RN11, RN12, ... For example, the plurality of different measurement reference ranges RN11, RN12, ... have a total number of reference ranges NT81 and include the target measurement range RN1T. For example, the total number of reference ranges NT81 is preset. The storage unit 332 stores the nominal range limit value pair DD1A. The processing unit 331 is configured to obtain the total number of reference ranges NT81 from one of the control signal SC81 and the storage unit 332, obtain the target measurement range code EM1T from the control signal SC81, and obtain the nominal range limit value pair DD1A from the storage unit 332 in response to the control signal SC81.

[0398] The processing unit 331 performs the scientific calculation MR81 based on the measured value VN81, the obtained total number of reference ranges NT81, and the obtained nominal range limit value pair DD1A to select the measured value application range code EM1L from the plurality of different measured value reference range codes EM11, EM12, ... to determine the measured value application range code EM1L. For example, the scientific calculation MR81 is pre-constructed based on the preset total number of reference ranges NT81 and the preset nominal range limit value pair DD1A.

[0399] The processing unit 331 performs the scientific calculation MZ81 to obtain the application range limit pair DN1L based on the determined measurement application range code EM1L, the obtained total number of reference ranges NT81, and the obtained nominal range limit pair DD1A. For example, the scientific calculation MZ81 is pre-constructed based on the preset total number of reference ranges NT81 and the preset nominal range limit pair DD1A.

[0400] In some embodiments, the processing unit 331, in response to the signal generation control GY81 performed within the operation time TF81, causes the timer 340 to perform a counting operation BE81. The processing unit 331 reaches the designated time TG82 based on the counting operation BE81, and at the designated time TG82, in response to the sensing signal SN82, obtains the measured value VN82.

[0401] The variable physical parameter QL1A is one of the following: a second variable electrical parameter, a second variable mechanical parameter, a second variable optical parameter, a second variable temperature, a second variable voltage, a second variable current, a second variable electrical power, a second variable resistance, a second variable capacitance, a second variable inductance, a second variable frequency, a second clock time, a second variable time length, a second variable brightness, a second variable light intensity, a second variable volume, a second variable data flow, a second variable amplitude, a second variable spatial position, a second variable displacement, a second variable sequential position, a second variable angle, a second variable spatial length, a second variable distance, a second variable translational velocity, a second variable angular velocity, a second variable acceleration, a second variable force, a second variable pressure, and a second variable mechanical power.

[0402] The variable physical parameter QY1A is one of the following: a third variable electrical parameter, a third variable mechanical parameter, a third variable optical parameter, a third variable temperature, a third variable voltage, a third variable current, a third variable electrical power, a third variable resistance, a third variable capacitance, a third variable inductance, a third variable frequency, a third clock time, a third variable time length, a third variable brightness, a third variable light intensity, a third variable volume, a third variable data flow, a third variable amplitude, a third variable spatial position, a third variable displacement, a third variable sequential position, a third variable angle, a third variable spatial length, a third variable distance, a third variable translational velocity, a third variable angular velocity, a third variable acceleration, a third variable force, a third variable pressure, and a third variable mechanical power.

[0403] Please see Figure 34 , Figure 35 and Figure 36 . Figure 34 To illustrate Figure 1 A schematic diagram of an embodiment 9043 of the control system 901 described herein. Figure 35 To illustrate Figure 1 A schematic diagram of an embodiment 9044 of the control system 901 described herein. Figure 36 To illustrate Figure 1 A schematic diagram of an embodiment 9045 of the control system 901 described herein. (See diagram below.) Figure 34 , Figure 35 and Figure 36 As shown, each of the implementation structures 9043, 9044, and 9045 includes the control device 212, the functional device 130, and the server 280. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the receiving unit 337, the input unit 380, the transmission unit 384, the timer 342 coupled to the processing unit 331, and a timer 343 coupled to the processing unit 331.

[0404] In some embodiments, the control device 212, the functional device 130, and the server 280 are all coupled to a network 410. The control device 212 is linked to the server 280 via the network 410. The functional device 130 includes the operation unit 397, the sensing unit 334, the physical parameter application unit 335, and the storage unit 332. The operation unit 397 includes the processing unit 331, the receiving unit 337, and the transmission unit 384. The control device 212 transmits the control signal SC81 to the functional device 130 via the network 410. The functional device 130 transmits the control response signal SE81 to the control device 212 via the network 410.

[0405] For example, the operation unit 397 includes a communication interface unit 386 coupled to the processing unit 331. The processing unit 331 is coupled to the network 410 through the communication interface unit 386. For example, the communication interface unit 386 is controlled by the processing unit 230 and includes the transmission component 3842 coupled to the processing unit 331 and the receiving component 3371 coupled to the processing unit 331. The processing unit 331 is coupled to the server 280 through the communication interface unit 386 and the network 410. For example, the communication interface unit 386 is one of a wired communication interface unit and a wireless communication interface unit.

[0406] The receiving unit 337, the transmitting unit 384, the timer 342, the timer 343, the sensing unit 334, the physical parameter application unit 335, the storage unit 332, and the communication interface unit 386 are all controlled by the processing unit 331. When the triggering event JQ81 is the integer overflow event, the integer overflow event occurs because the timer 343 of the triggering application unit 387 responds to a timing control GD81 associated with the processing unit 331. For example, the processing unit 331 responds to the control signal SC81 to execute the timing control GD81 for controlling the timer 343. The timer 343 responds to the timing control GD81 to generate the integer overflow event.

[0407] Please refer to the following additional information. Figure 9 , Figure 10 , Figure 11 and Figure 12 In some embodiments, when the receiving unit 337 receives the control signal SC81, the physical parameter target range code UQ1T is equal to the preset measurement value target range code EM1T. The control signal SC81 transmits the default measurement value specified range code EL1T. The processing unit 331 obtains the transmitted measurement value specified range code EL1T from the control signal SC81, obtains the memory address AS8T based on the obtained measurement value specified range code EL1T, and accesses the physical parameter target range code UQ1T stored in the memory location YS8T based on the obtained memory address AS8T to obtain the preset measurement value target range code EM1T.

[0408] For example, when the physical parameter target range code UQ1T is equal to the preset measurement value target range code EM1T, the control signal SC81 indicates the measurement value target range RN1T by transmitting the preset measurement value specified range code EL1T. The processing unit 331 executes the data acquisition AD8A using the obtained measurement value target range code EM1T to obtain the target range limit value pair DN1T.

[0409] In some embodiments, when the processing unit 331 determines the current physical parameter application range RD1EL of the variable physical parameter QU1A by comparing the measured value VN81 and the obtained application range limit value pair DN1L, the processing unit 331 checks the range relationship KE8A between the measured value target range RN1T and the measured value application range RN1L by comparing the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L to make the logical decision PY81 on whether the obtained target range limit value pair DN1T and the obtained application range limit value pair DN1L are equal.

[0410] Under the condition that the logic determines PY81 is negative, the processing unit 331 identifies the range relationship KE8A as the range dissimilarity relationship to determine the range difference DS81. For example, the processing unit 331 obtains the predetermined application range limit value pair DN1L based on the determined measurement value application range code EM1L. For example, the processing unit 331 determines the range difference DB81 between the physical parameter target range RD1ET and the physical parameter application range RD1EL by determining the range difference DS81.

[0411] In some embodiments, when the processing unit 331 determines the current application range RD1EL of the variable physical parameter QU1A by comparing the measured value VN81 and the obtained application range limit value DN1L, the processing unit 331 makes a logical decision PZ81 to determine whether the obtained measured value target range code EM1T and the determined measured value application range code EM1L are equal. If the logical decision PZ81 is negative, the processing unit 331 identifies the range relationship KE8A as a range disparity relationship to determine the range difference DS81.

[0412] Under the condition that the processing unit 331 determines at least one of the range difference DS81 and the range difference DB81, the processing unit 331 executes the signal generation control GY81 for generating the operation signal SG81 within the operation time TF81. The operation signal SG81 is used to cause the variable physical parameter QU1A to enter the physical parameter target range RD1ET, which is the same as the physical parameter target range RD1ET. The processing unit 331 executes the verification operation ZU81 related to the variable physical parameter QU1A within the specified time TG82 after the operation time TF81. Under the condition that the processing unit 331 determines the physical parameter target range RD1ET in which the variable physical parameter QU1A is currently located based on the verification operation ZU81 within the specified time TG82, the processing unit 331 executes the data comparison CE8T between the variable physical parameter range code UN8A, which is equal to the specific measurement value range code EM14, and the obtained measurement value target range code EM1T.

[0413] Under the condition that the processing unit 331 determines the code difference DF81 between the variable physical parameter range code UN8A, which is equal to the specific measurement range code EM14, and the obtained measurement target range code EM1T based on the data comparison CE8T, the processing unit 331 uses the storage unit 332 to assign the obtained measurement target range code EM1T to the variable physical parameter range code UN8A.

[0414] In some embodiments, when the variable physical parameter QU1A is configured based on the control signal SC81 to be within the target range RD1ET of the physical parameter, the processing unit 331 reaches the operation time TY81 based on the counting operation BD81. Within the operation time TY81, the timer 342 senses the clock time TH1A to cause the variable count value NY8A to equal the measured value NY81, thereby generating the sensing signal SY81 that transmits the measured value NY81.

[0415] For example, the triggering application unit 387 responds to the trigger event JQ81 to provide the operation request signal SJ81 to the processing unit 331, thereby causing the processing unit 331 to receive the operation request signal SJ81. The processing unit 331 responds to the operation request signal SJ81 to obtain the measurement value NY81 from the sensing signal SY81 in the specified measurement value format HH95 within the operation time TY81, and within the operation time TY81, obtains or determines the measurement value application range code EL1U by performing the scientific calculation MH85 using the obtained measurement value specified range code EL1T to check the mathematical relationship KQ81 between the obtained measurement value NY81 and the measurement value application range RQ1U. For example, the triggering application unit 387 is one of the receiving unit 337, the input unit 380, the display unit 382, ​​the sensing unit 334, and the timer 343.

[0416] In some embodiments, the specified measurement range RQ1T has the specified range limit pair DQ1T. The specified range limit pair DQ1T includes the specified range limit value DQ13 and the specified range limit value DQ14 relative to the specified range limit value DQ13. Both the specified measurement range RQ1T and the specified range limit pair DQ1T are preset using the specified measurement value format HH95 based on the clock time specified interval HR1ET and the timer specification FT21. The specified measurement application range RQ1U has the application range limit pair DQ1U. The application range limit pair DQ1U includes the first application range limit value DQ15 and the second application range limit value DQ16 relative to the first application range limit value DQ15. Both the specified measurement application range RQ1U and the application range limit pair DQ1U are preset using the specified measurement value format HH95 based on the clock time application interval HR1EU and the timer specification FT21.

[0417] For example, within the operation time TY81, the physical parameter target range code UQ1U is equal to one of the preset measurement value target range code EM1U and the preset physical parameter target status code EW1U. The storage unit 332 stores the specified range limit value pair DQ1T and the application range limit value pair DQ1U. The specified range limit value pair DQ1T and the application range limit value pair DQ1U are stored in the storage unit 332 based on the measurement value specified range code EL1T and the measurement value application range code EL1U, respectively. For example, the default physical parameter target status code EW1U is equal to the preset measurement value target range code EM1U.

[0418] The processing unit 331 is configured to obtain the application range limit value pair DQ1U from the storage unit 332 based on the obtained measurement value application range code EL1U within the operation time TY81, and to perform a check operation ZQ81 to check the mathematical relationship KQ81 between the obtained measurement value NY81 and the obtained application range limit value pair DQ1U by comparing the obtained measurement value NY81 and the obtained application range limit value pair DQ1U. If the processing unit 331 determines, within the operation time TY81, that the clock time TH1A is currently in the clock time application interval HR1EU based on the check operation ZQ81, the processing unit 331 obtains the memory address AS8U based on the obtained measurement value application range code EL1U, and within the operation time TY81, accesses the physical parameter target range code UQ1U stored in the memory location YS8U based on the obtained memory address AS8U to obtain the physical parameter target range code UQ1U.

[0419] For example, the processing unit 331 determines, based on the check operation ZQ81, that the clock time TH1A is currently within the clock time application interval HR1EU, and thereby identifies a time relationship between the clock time TH1A and the clock time application interval HR1EU as a time intersection relationship where the clock time TH1A is currently within the clock time application interval HR1EU. When the processing unit 331 obtains the physical parameter target range code UQ1U from the memory location YS8U, the processing unit 331 executes a check operation ZP85 for the measurement application function FA81 within the operation time TY81 to determine whether the obtained physical parameter target range code UQ1U is equal to the variable physical parameter range code UN8A.

[0420] In some embodiments, when the processing unit 331 obtains the physical parameter target range code UQ1U from the memory location YS8U, the processing unit 331 reads the variable physical parameter range code UN8A, which is equal to the measurement value target range code EM1T, using the storage unit 332, and executes a check operation ZP85 to check an arithmetic relationship KP85 between the obtained physical parameter target range code UQ1U and the read measurement value target range code EM1T. The check operation ZP85 is configured to compare the obtained physical parameter target range code UQ1U and the read measurement value target range code EM1T by performing a data comparison CE85 for the measurement application function FA81 to determine whether the obtained physical parameter target range code UQ1U and the read measurement value target range code EM1T are different.

[0421] When the processing unit 331 determines, by performing the data comparison CE85, a code difference DX85 between the obtained physical parameter target range code UQ1U and the variable physical parameter range code UN8A, which is equal to the obtained measurement value target range code EM1T, the processing unit 331 causes the output component 338 to perform a signal generation operation BY85 for the measurement application function FA81 to generate an operation signal SG85 within the operation time TY81. For example, the operation signal SG85 is a control signal. The output component 338 transmits the operation signal SG85 to the physical parameter application unit 335. The physical parameter application unit 335 responds to the operation signal SG85 to cause the variable physical parameter QU1A to move from the physical parameter target range RD1ET to the corresponding physical parameter range RY1ET. For example, when the processing unit 331 obtains the physical parameter target range code UQ1U from the memory location YS12, which is equal to the preset measurement value candidate range code EM12, the physical parameter application unit 335 responds to the operation signal SG85 to cause the variable physical parameter QU1A to enter the physical parameter target range RD1EU, which is the same as the physical parameter candidate range RD1E2.

[0422] For example, the storage unit 332 has a memory location YX8U different from the memory location YX8T, and stores a handle CC1U in the memory location YX8U. The memory location YX8U is identified based on a memory address AX8U. The memory address AX8U is preset according to the preset physical parameter target status code EW1U. The handle CC1U is preset based on a specified physical parameter QD1U within the physical parameter target range RD1EU. Under the condition that the processing unit 331 determines the code difference DX85, the processing unit 331 obtains the memory address AX8U based on the obtained physical parameter target range code UQ1U which is equal to the preset physical parameter target status code EW1U.

[0423] The processing unit 331 uses the storage unit 332 to access the handle CC1U stored in the memory location YX8U based on the obtained memory address AX8U to obtain the handle CC1U, and within the operation time TY81, causes the output component 338 to perform the signal generation operation BY85 for the measurement application function FA81 based on the accessed handle CC1U to generate the operation signal SG85. The operat...

Claims

1. A functional device for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the functional device comprising: Processing unit; The application unit is triggered, coupled to the processing unit, and responds to a trigger event to provide an operation request signal; A timer, coupled to the processing unit, senses clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement value application range and a clock reference time earlier than the clock time application interval, and the measurement value application range is represented by a measurement value application range code. as well as A receiving unit, coupled to the processing unit, receives a control signal before the clock time application interval, wherein: The control signal transmits a clock reference time value representing the clock reference time; The processing unit obtains the clock reference time value from the control signal, and based on the obtained clock reference time value, causes the timer to perform a counting operation related to the sensing signal. Under the condition that the counting operation is executed, it responds to the operation request signal to obtain a measurement value from the sensing signal, and responds to the operation request signal to determine the measurement value application range code to select the measurement value application range. Under the condition that the processing unit determines that the clock time enters the clock time application interval by checking a first mathematical relationship between the measurement value and the selected measurement value application range, it obtains the physical parameter target status code based on the determined measurement value application range code, and based on the obtained physical parameter target status code, causes a first operation signal to be transmitted to the physical parameter application unit; and The physical parameter application unit responds to the first operation signal to bring the variable physical parameter into the target physical parameter state.

2. The functional apparatus of claim 1, further comprising the physical parameter application unit coupled to the processing unit, wherein: The clock time is further characterized based on a clock time specified interval that is different from the clock time application interval, wherein the clock time specified interval is earlier than the clock time application interval. After the receiving unit receives the control signal from the control device, the processing unit obtains a sequence of measurement values ​​containing the measured values ​​in response to the sensing signal due to the control signal, wherein the control signal serves to indicate a specified interval of the clock time. The control device is one of a mobile device and a remote control; When the control device is the remote controller, the control signal is an optical signal; The processing unit makes a logical decision on whether the clock time enters the clock time application interval from the specified clock time interval by checking the second mathematical relationship between the measurement value sequence and the measurement value application range, and determines the entered clock time application interval if the logical decision is positive. The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a portion of the full measurement range; The measured values ​​are obtained in a specified measured value format; The scope of application of the measured value is preset based on the timer specification using the specified measured value format; The measurement value application range has an application range limit value pair, wherein the application range limit value pair is preset; The processing unit responds to the control signal to obtain the application range limit value pair, and checks the first mathematical relationship by comparing the measured value with the obtained application range limit value pair; The physical parameter application unit has the variable physical parameter, wherein when the processing unit checks the first mathematical relationship, the variable physical parameter is in the physical parameter application state; Under the condition that the processing unit determines the clock time application interval to be entered by checking the first mathematical relationship, the processing unit performs physical parameter relationship checking control based on the obtained physical parameter target state code to check the physical parameter relationship between the variable physical parameter and the physical parameter target state; When the physical parameter application state is different from the physical parameter target state and the processing unit determines the difference in physical parameter state between the physical parameter target state and the physical parameter application state by performing the physical parameter relationship check control, the processing unit performs signal generation control based on the obtained physical parameter target state code to generate the first operation signal and transmits the first operation signal to the physical parameter application unit. The physical parameter application unit responds to the first operation signal to cause the variable physical parameter to change from the physical parameter application state to the physical parameter target state; Under the condition that the processing unit determines the entered clock time application interval by checking the first mathematical relation, the processing unit performs a data storage control operation, which causes a clock time application interval code representing the determined clock time application interval to be stored. as well as The variable physical parameter and the clock time belong to the physical parameter type and the clock time type, respectively, wherein the physical parameter type is different from the clock time type.

3. The functional apparatus of claim 1, further comprising an input unit coupled to the processing unit and a physical parameter application unit coupled to the processing unit, wherein: The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a first portion of the full measurement range; The processing unit is configured to perform measurement application functions related to the clock time application interval; The measurement application function conforms to the measurement application function specifications related to the clock time application interval; The processing unit responds to the sensing signal to obtain the measurement value in a specified measurement value format, wherein the specified measurement value format is characterized based on a specified number of bits; The clock time is further characterized based on a rated clock time interval, wherein the rated clock time interval is represented by a rated measurement range and includes multiple different clock time reference intervals represented by multiple different measurement reference ranges respectively. The plurality of different clock time reference intervals include the clock time application interval; The measurement application function specification includes the timer specification, the rated clock time interval representation for representing the rated clock time interval, and the clock time application interval representation for representing the clock time application interval; The rated measurement range is equal to at least a second portion of the full measurement range, preset using the specified measurement value format based on one of the timer specifications, the measurement application function specifications, and the first data encoding rule, has rated range limit value pairs, and includes the plurality of different measurement value reference ranges represented by a plurality of different measurement value reference range codes, wherein the rated range limit value pairs are preset using the specified measurement value format, and the plurality of different measurement value reference ranges include the measurement value application range; The first data encoding rule is used to convert the nominal clock time interval representation and is formulated based on the timer specification; The application range of the measurement value is represented by the measurement value application range code included in the plurality of different measurement value reference range codes, has application range limit value pairs, and is preset using the specified measurement value format based on one of the timer specification, the measurement application function specification, and the second data encoding rule, wherein the plurality of different measurement value reference range codes are all defaulted based on the measurement application function specification; The second data encoding rule is used to convert the clock time application interval representation and is formulated based on the timer specification; The application scope limit value pair includes a first application scope limit value and a second application scope limit value relative to the first application scope limit value; The functional device further includes a storage unit coupled to the processing unit; The storage unit stores the default rated range limit value pairs and the variable clock time interval code; When the triggering event associated with the triggering application unit occurs, the variable clock time interval code is equal to a specific measurement value range code selected from the plurality of different measurement value reference range codes, wherein the specific measurement value range code indicates a specific clock time interval previously determined based on a sensing operation, the specific clock time interval being selected from the plurality of different clock time reference intervals, and the sensing operation performed by the timer is used to sense the clock time. Prior to the occurrence of the triggering event, the specific measurement range code is assigned to the variable clock time interval code; Under the condition that the triggering event occurs, the processing unit responds to the operation request signal to obtain the operation reference data code from the storage unit, and performs data determination using the operation reference data code by running a data determination program to determine the measurement value application range code selected from the plurality of different measurement value reference range codes so as to select the measurement value application range from the plurality of different measurement value reference ranges; The operation reference data code is the same as the default allowed reference data code based on the measurement application function specification; The data determination procedure is constructed based on the measurement application functional specifications; The data determination is one of a first data determination operation and a second data determination operation; Under the condition that the operation reference data code is obtained by accessing the variable clock time interval code stored in the storage unit and is the same as the specific measurement range code, the data determination of the first data determination operation determines the measurement application range code based on the obtained specific measurement range code, wherein the first data determination operation is a first scientific calculation using the obtained specific measurement range code, and the determined measurement application range code is the same as or different from the obtained specific measurement range code; Under the condition that the operation reference data code is obtained by accessing the nominal range limit value pair stored in the storage unit and is the same as the preset nominal range limit value pair, the data determination of the second data determination operation is to select the measurement value application range code from the plurality of different measurement value reference range codes by performing a second scientific calculation using the measurement value and the obtained nominal range limit value pair to determine the measurement value application range code, wherein the second scientific calculation is performed based on a specific empirical formula, and the specific empirical formula is pre-formulated based on the preset nominal range limit value pair and the plurality of different measurement value reference range codes; The processing unit obtains the application range limit value pair based on the determined application range code of the measurement value, checks the first mathematical relationship based on the data comparison between the measurement value and the obtained application range limit value pair to make a logical decision on whether the measurement value is within the selected application range of the measurement value, and determines the situation if the logical decision is affirmative. When the specific measurement range code is different from the determined measurement application range code and the processing unit determines the clock time application interval to be entered by making the logical decision, the processing unit uses the storage unit to assign the determined measurement application range code to the variable clock time interval code based on the code difference between the variable clock time interval code equal to the specific measurement range code and the determined measurement application range code. The input unit includes buttons; The physical parameter application unit has the variable physical parameters; The variable physical parameters are further characterized based on specific physical parameter states that are different from the target state of the physical parameters; When the processing unit causes the variable physical parameter to be in the target state of the physical parameter by checking the first mathematical relationship, the input unit receives user input operation using the button; as well as The processing unit responds to the user input operation by transmitting a second operation signal to the physical parameter application unit to cause the variable physical parameter to leave the physical parameter target state and enter the specific physical parameter state.

4. A method for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the method comprising the following steps: A clock time is sensed to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement application range and a clock reference time earlier than the clock time application interval, and the measurement application range is represented by a measurement application range code. Before the clock time application interval, a control signal is received, the control signal conveying a clock reference time value representing the clock reference time; The clock reference time value is obtained from the control signal; Based on the obtained clock reference time value, perform a counting operation related to the sensing signal; Respond to triggering events and provide operation request signals; Under the condition that the counting operation is performed, a measurement value is obtained from the sensing signal in response to the operation request signal; In response to the operation request signal, determine the measurement value application range code to select the measurement value application range; Under the condition that the clock time enters the clock time application interval is determined by checking the first mathematical relationship between the measured value and the selected application range of the measured value, the physical parameter target state code is obtained based on the determined application range code of the measured value; Based on the obtained physical parameter target status code, a first operation signal is transmitted to the physical parameter application unit; as well as By using the physical parameter application unit, the variable physical parameter is brought into the target state of the physical parameter in response to the first operation signal.

5. The method of claim 4, wherein: The clock time is further characterized based on a clock time specified interval that is different from the clock time application interval, wherein the clock time specified interval is earlier than the clock time application interval. The method further includes the following steps: A timer is provided, wherein the step of sensing the clock time is performed by using the timer; and The control signal is received from the control device, wherein the control signal serves to indicate a specified interval of the clock time. The control device is one of a mobile device and a remote control; When the control device is the remote controller, the control signal is an optical signal; The step of obtaining the measured value includes the sub-step of: after the control signal is received, obtaining a sequence of measured values ​​containing the measured value as the control signal responds to the sensing signal; The method further includes the following steps: By examining a second mathematical relationship between the sequence of measured values ​​and the range of application of the measured values, a logical decision is made as to whether the clock time enters the clock time application range from the specified clock time interval. as well as If the logical decision is affirmative, determine the clock time application interval to be entered; The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a portion of the full measurement range; The measured values ​​are obtained in a specified measured value format; The scope of application of the measured value is preset based on the timer specification using the specified measured value format; The measurement value application range has an application range limit value pair, wherein the application range limit value pair is preset; The method further includes the following steps: In response to the control signal, obtain the application range limit value pair; and The first mathematical relationship is examined by comparing the measured values ​​with the obtained application range limit values; When the first mathematical relationship is checked, the variable physical parameter is in the physical parameter application state; The step of transmitting the first operation signal to the physical parameter application unit includes the following sub-steps: Based on the obtained physical parameter target state code, execute a physical parameter relationship check control to check the physical parameter relationship between the variable physical parameter and the physical parameter target state; and Under the condition that the physical parameter application state is different from the physical parameter target state and the difference in physical parameter state between the physical parameter target state and the physical parameter application state is determined by performing the physical parameter relationship check control, signal generation control is performed based on the obtained physical parameter target state code to generate an operation signal; The variable physical parameter is caused to transition from the physical parameter application state to the physical parameter target state in response to the first operation signal; The method further includes the step of: performing a data storage control operation under the condition that the entered clock time application interval is determined by checking the first mathematical relation, the data storage control operation being used to cause a clock time application interval code representing the determined clock time application interval to be stored; as well as The variable physical parameter and the clock time belong to the physical parameter type and the clock time type, respectively, wherein the physical parameter type is different from the clock time type.

6. The method of claim 4, wherein: The method further includes the following steps: A timer is provided, wherein the step of sensing the clock time is performed by using the timer; and Perform measurement application functions related to the clock time application interval; The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a first portion of the full measurement range; The measurement application function conforms to the measurement application function specifications related to the clock time application interval; The measured value is obtained in a specified measured value format, wherein the specified measured value format is characterized based on a specified number of bits; The clock time is further characterized based on a rated clock time interval, wherein the rated clock time interval is represented by a rated measurement range and includes multiple different clock time reference intervals represented by multiple different measurement reference ranges respectively. The plurality of different clock time reference intervals include the clock time application interval; The measurement application function specification includes the timer specification, the rated clock time interval representation for representing the rated clock time interval, and the clock time application interval representation for representing the clock time application interval; The rated measurement range is equal to at least a second portion of the full measurement range, preset using the specified measurement value format based on one of the timer specifications, the measurement application function specifications, and the first data encoding rule, has rated range limit value pairs, and includes the plurality of different measurement value reference ranges represented by a plurality of different measurement value reference range codes, wherein the rated range limit value pairs are preset using the specified measurement value format, and the plurality of different measurement value reference ranges include the measurement value application range; The first data encoding rule is used to convert the nominal clock time interval representation and is formulated based on the timer specification; The application range of the measurement value is represented by the measurement value application range code included in the plurality of different measurement value reference range codes, has application range limit value pairs, and is preset using the specified measurement value format based on one of the timer specification, the measurement application function specification, and the second data encoding rule, wherein the plurality of different measurement value reference range codes are all defaulted based on the measurement application function specification; The second data encoding rule is used to convert the clock time application interval representation and is formulated based on the timer specification; The application scope limit value pair includes a first application scope limit value and a second application scope limit value relative to the first application scope limit value; The method further includes the following steps: Provide storage space; and The preset rated range limit value pairs and variable clock time interval codes are stored in the storage space; When the triggering event occurs, the variable clock time interval code is equal to a specific measurement value range code selected from the plurality of different measurement value reference range codes, wherein the specific measurement value range code indicates a specific clock time interval previously determined based on a sensing operation, the specific clock time interval being selected from the plurality of different clock time reference intervals, and the sensing operation performed by the timer is used to sense the clock time. Prior to the occurrence of the triggering event, the specific measurement range code is assigned to the variable clock time interval code; The method further includes the following steps: Under the condition that the triggering event occurs, the operation reference data code is obtained from the storage space in response to the operation request signal; as well as The data determination is performed using the operation reference data code by running a data determination program to determine the measurement value application range code selected from the plurality of different measurement value reference range codes in order to select the measurement value application range from the plurality of different measurement value reference ranges; The operation reference data code is the same as the default allowed reference data code based on the measurement application function specification; The data determination procedure is constructed based on the measurement application functional specifications; The data determination is one of a first data determination operation and a second data determination operation; Under the condition that the operation reference data code is obtained by accessing the variable clock time interval code stored in the storage space and is the same as the specific measurement range code, the data determination of the first data determination operation determines the measurement application range code based on the obtained specific measurement range code, wherein the first data determination operation is a first scientific calculation using the obtained specific measurement range code, and the determined measurement application range code is the same as or different from the obtained specific measurement range code; Under the condition that the operation reference data code is obtained by accessing the nominal range limit value pair stored in the storage space and is the same as the preset nominal range limit value pair, the data determination of the second data determination operation is to select the measurement value application range code from the plurality of different measurement value reference range codes by performing a second scientific calculation using the measurement value and the obtained nominal range limit value pair to determine the measurement value application range code, wherein the second scientific calculation is performed based on a specific empirical formula, and the specific empirical formula is pre-formulated based on the preset nominal range limit value pair and the plurality of different measurement value reference range codes; The method further includes the following steps: Based on the determined application range code of the measured value, the application range limit value pair is obtained; Based on a data comparison between the measured value and the obtained application range limit value pair, the first mathematical relationship is checked to make a logical decision on whether the measured value is within the selected application range of the measured value. as well as Under the condition that the logical decision is affirmative, determine the situation; The method further includes the step of: under the condition that the specific measurement value range code is different from the determined measurement value application range code and the entered clock time application interval is determined by making the logical decision, assigning the determined measurement value application range code to the variable clock time interval code based on the code difference between the variable clock time interval code equal to the specific measurement value range code and the determined measurement value application range code; The variable physical parameters are further characterized based on specific physical parameter states that differ from the target state of the physical parameters; and The method further includes the following steps: Provide a button; Under the condition that the variable physical parameter is caused to be in the target state of the physical parameter by checking the first mathematical relationship, a user input operation using the button is received; as well as In response to the user input operation, a second operation signal is generated to cause the variable physical parameter to leave the target physical parameter state and enter the specific physical parameter state.

7. A functional device for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the functional device comprising: Processing unit; A timer, coupled to the processing unit, senses clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement value application range and a clock reference time earlier than the clock time application interval, and the measurement value application range is represented by a measurement value application range code. as well as A receiving unit, coupled to the processing unit, receives a control signal before the clock time application interval, wherein: The control signal transmits a clock reference time value representing the clock reference time; The processing unit obtains the clock reference time value from the control signal, and based on the obtained clock reference time value, causes the timer to perform a counting operation related to the sensing signal. Based on the counting operation, an operation time is reached. During the operation time, a measurement value is obtained from the sensing signal. During the operation time, an application range code for the measurement value is determined to select the application range of the measurement value. Under the condition that the processing unit determines the current clock time application interval by checking the mathematical relationship between the measurement value and the selected application range of the measurement value, the physical parameter target status code is obtained based on the determined application range code. Based on the obtained physical parameter target status code, a first operation signal is transmitted to the physical parameter application unit. The physical parameter application unit responds to the first operation signal to bring the variable physical parameter into the target physical parameter state.

8. The functional apparatus of claim 7, further comprising the physical parameter application unit coupled to the processing unit, wherein: The clock time is further characterized based on a clock time specified interval that is different from the clock time application interval, wherein the clock time specified interval is earlier than the clock time application interval. After the receiving unit receives the control signal from the control device, the processing unit obtains the measurement value in response to the sensing signal due to the control signal, wherein the control signal serves to indicate a specified interval of the clock time. The control device is one of a mobile device and a remote control; When the control device is the remote controller, the control signal is an optical signal; The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a portion of the full measurement range; The measured values ​​are obtained in a specified measured value format; The scope of application of the measured value is preset based on the timer specification using the specified measured value format; The measurement value application range has an application range limit value pair, wherein the application range limit value pair is preset; The processing unit responds to the control signal to obtain the application range limit value pair, and checks the mathematical relationship by comparing the measured value with the obtained application range limit value pair; The physical parameter application unit has the variable physical parameter, wherein when the processing unit checks the mathematical relationship, the variable physical parameter is in the physical parameter application state; Under the condition that the processing unit determines the current clock time application interval by checking the mathematical relationship, the processing unit performs physical parameter relationship checking control based on the obtained physical parameter target state code to check the physical parameter relationship between the variable physical parameter and the physical parameter target state; When the physical parameter application state is different from the physical parameter target state and the processing unit determines the difference in physical parameter state between the physical parameter target state and the physical parameter application state by performing the physical parameter relationship check control, the processing unit performs signal generation control based on the obtained physical parameter target state code to generate the first operation signal and transmits the first operation signal to the physical parameter application unit. The physical parameter application unit responds to the first operation signal to cause the variable physical parameter to change from the physical parameter application state to the physical parameter target state; When the processing unit determines the current clock time application interval by checking the mathematical relationship, the processing unit performs a data storage control operation to cause a clock time application interval code representing the determined clock time application interval to be stored. as well as The variable physical parameter and the clock time belong to the physical parameter type and the clock time type, respectively, wherein the physical parameter type is different from the clock time type.

9. The functional apparatus of claim 7, further comprising a trigger application unit coupled to the processing unit, an input unit coupled to the processing unit, and the physical parameter application unit coupled to the processing unit, wherein: The triggering application unit responds to a triggering event to provide an operation request signal; The processing unit responds to the operation request signal to determine the application range code of the measurement value within the operation time. The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a first portion of the full measurement range; The processing unit is configured to perform measurement application functions related to the clock time application interval; The measurement application function conforms to the measurement application function specifications related to the clock time application interval; The processing unit responds to the sensing signal to obtain the measurement value in a specified measurement value format, wherein the specified measurement value format is characterized based on a specified number of bits; The clock time is further characterized based on a rated clock time interval, wherein the rated clock time interval is represented by a rated measurement range and includes multiple different clock time reference intervals represented by multiple different measurement reference ranges respectively. The plurality of different clock time reference intervals include the clock time application interval; The measurement application function specification includes the timer specification, the rated clock time interval representation for representing the rated clock time interval, and the clock time application interval representation for representing the clock time application interval; The rated measurement range is equal to at least a second portion of the full measurement range, preset using the specified measurement value format based on one of the timer specifications, the measurement application function specifications, and the first data encoding rule, has rated range limit value pairs, and includes the plurality of different measurement value reference ranges represented by a plurality of different measurement value reference range codes, wherein the rated range limit value pairs are preset using the specified measurement value format, and the plurality of different measurement value reference ranges include the measurement value application range; The first data encoding rule is used to convert the nominal clock time interval representation and is formulated based on the timer specification; The application range of the measurement value is represented by the measurement value application range code included in the plurality of different measurement value reference range codes, has application range limit value pairs, and is preset using the specified measurement value format based on one of the timer specification, the measurement application function specification, and the second data encoding rule, wherein the plurality of different measurement value reference range codes are all defaulted based on the measurement application function specification; The second data encoding rule is used to convert the clock time application interval representation and is formulated based on the timer specification; The application scope limit value pair includes a first application scope limit value and a second application scope limit value relative to the first application scope limit value; The functional device further includes a storage unit coupled to the processing unit; The storage unit stores the default rated range limit value pairs and the variable clock time interval code; When the triggering event associated with the triggering application unit occurs, the variable clock time interval code is equal to a specific measurement value range code selected from the plurality of different measurement value reference range codes, wherein the specific measurement value range code indicates a specific clock time interval previously determined based on a sensing operation, the specific clock time interval being selected from the plurality of different clock time reference intervals, and the sensing operation performed by the timer is used to sense the clock time. Prior to the occurrence of the triggering event, the specific measurement range code is assigned to the variable clock time interval code; Under the condition that the triggering event occurs, the processing unit responds to the operation request signal to obtain the operation reference data code from the storage unit, and performs data determination using the operation reference data code by running a data determination program to determine the measurement value application range code selected from the plurality of different measurement value reference range codes so as to select the measurement value application range from the plurality of different measurement value reference ranges; The operation reference data code is the same as the default allowed reference data code based on the measurement application function specification; The data determination procedure is constructed based on the measurement application functional specifications; The data determination is one of a first data determination operation and a second data determination operation; Under the condition that the operation reference data code is obtained by accessing the variable clock time interval code stored in the storage unit and is the same as the specific measurement range code, the data determination of the first data determination operation determines the measurement application range code based on the obtained specific measurement range code, wherein the first data determination operation is a first scientific calculation using the obtained specific measurement range code, and the determined measurement application range code is the same as or different from the obtained specific measurement range code; Under the condition that the operation reference data code is obtained by accessing the nominal range limit value pair stored in the storage unit and is the same as the preset nominal range limit value pair, the data determination of the second data determination operation is to select the measurement value application range code from the plurality of different measurement value reference range codes by performing a second scientific calculation using the measurement value and the obtained nominal range limit value pair to determine the measurement value application range code, wherein the second scientific calculation is performed based on a specific empirical formula, and the specific empirical formula is pre-formulated based on the preset nominal range limit value pair and the plurality of different measurement value reference range codes; The processing unit obtains the application range limit value pair based on the determined application range code of the measurement value, checks the mathematical relationship based on the data comparison between the measurement value and the obtained application range limit value pair to make a logical decision on whether the measurement value is within the selected application range of the measurement value, and determines the clock time application interval in which the clock time is currently located if the logical decision is affirmative. When the specific measurement range code is different from the determined measurement application range code and the processing unit determines the current clock time application interval by making the logical decision, the processing unit uses the storage unit to assign the determined measurement application range code to the variable clock time interval code based on the code difference between the variable clock time interval code, which is equal to the specific measurement range code, and the determined measurement application range code. The input unit includes buttons; The physical parameter application unit has the variable physical parameters; The variable physical parameters are further characterized based on specific physical parameter states that are different from the target state of the physical parameters; When the processing unit causes the variable physical parameter to be in the target state of the physical parameter by checking the mathematical relationship, the input unit receives user input operation using the button; as well as The processing unit responds to the user input operation by transmitting a second operation signal to the physical parameter application unit to cause the variable physical parameter to leave the physical parameter target state and enter the specific physical parameter state.

10. A method for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the method comprising the following steps: A clock time is sensed to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement application range and a clock reference time earlier than the clock time application interval, and the measurement application range is represented by a measurement application range code. Before the clock time application interval, a control signal is received, the control signal conveying a clock reference time value representing the clock reference time; The clock reference time value is obtained from the control signal; Based on the obtained clock reference time value, perform a counting operation related to the sensing signal; Based on the counting operation, the operation time has arrived; During the operation time, a measurement value is obtained from the sensing signal; During the operation time, the application range code of the measurement value is determined to select the application range of the measurement value; Given that the current clock time application interval is determined by examining the mathematical relationship between the measured value and the selected measurement value application range, the physical parameter target status code is obtained based on the determined measurement value application range code. Based on the obtained physical parameter target status code, a first operation signal is transmitted to the physical parameter application unit; as well as By using the physical parameter application unit, the variable physical parameter is brought into the target state of the physical parameter in response to the first operation signal.

11. The method of claim 10, wherein: The clock time is further characterized based on a clock time specified interval that is different from the clock time application interval, wherein the clock time specified interval is earlier than the clock time application interval. The method further includes the following steps: A timer is provided, wherein the step of sensing the clock time is performed by using the timer; and The control signal is received from the control device, wherein the control signal serves to indicate a specified interval of the clock time. The control device is one of a mobile device and a remote control; When the control device is the remote controller, the control signal is an optical signal; The step of obtaining the measured value includes the sub-step of obtaining the measured value by means of the control signal responding to the sensing signal after the control signal is received; The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a portion of the full measurement range; The measured values ​​are obtained in a specified measured value format; The scope of application of the measured value is preset based on the timer specification using the specified measured value format; The measurement value application range has an application range limit value pair, wherein the application range limit value pair is preset; The method further includes the following steps: In response to the control signal, obtain the application range limit value pair; and The mathematical relationship is examined by comparing the measured values ​​with the obtained application range limit values; When the mathematical relationship is checked, the variable physical parameter is in the physical parameter application state; The step of transmitting the first operation signal to the physical parameter application unit includes the following sub-steps: Based on the obtained physical parameter target state code, execute physical parameter relationship check control to check the physical parameter relationship between the variable physical parameters and the physical parameter target state; and Under the condition that the physical parameter application state is different from the physical parameter target state and the difference in physical parameter state between the physical parameter target state and the physical parameter application state is determined by performing the physical parameter relationship check control, signal generation control is performed based on the obtained physical parameter target state code to generate an operation signal; The variable physical parameter is caused to transition from the physical parameter application state to the physical parameter target state in response to the first operation signal; The method further includes the step of: performing a data storage control operation under the condition that the clock time application interval in which the clock time is currently located is determined by checking the mathematical relationship, the data storage control operation being used to cause a clock time application interval code representing the determined clock time application interval to be stored; as well as The variable physical parameter and the clock time belong to the physical parameter type and the clock time type, respectively, wherein the physical parameter type is different from the clock time type.

12. The method of claim 10, wherein: The method further includes the following steps: In response to a triggering event, an operation request signal is provided, wherein the measured value is determined in response to the operation request signal using a range code within the operation time. A timer is provided, wherein the step of sensing the clock time is performed by using the timer; as well as Perform measurement application functions related to the clock time application interval; The timer conforms to the timer specification, and the range of application of the measured values ​​is assumed to be based on the timer specification. The timer specification includes a full measurement range representation for representing the full range of measurement values, wherein the range of measurement values ​​applied is equal to a first portion of the full measurement range; The measurement application function conforms to the measurement application function specifications related to the clock time application interval; The measured value is obtained in a specified measured value format, wherein the specified measured value format is characterized based on a specified number of bits; The clock time is further characterized based on a rated clock time interval, wherein the rated clock time interval is represented by a rated measurement range and includes multiple different clock time reference intervals represented by multiple different measurement reference ranges respectively. The plurality of different clock time reference intervals include the clock time application interval; The measurement application function specification includes the timer specification, the rated clock time interval representation for representing the rated clock time interval, and the clock time application interval representation for representing the clock time application interval; The rated measurement range is equal to at least a second portion of the full measurement range, preset using the specified measurement value format based on one of the timer specifications, the measurement application function specifications, and the first data encoding rule, has rated range limit value pairs, and includes the plurality of different measurement value reference ranges represented by a plurality of different measurement value reference range codes, wherein the rated range limit value pairs are preset using the specified measurement value format, and the plurality of different measurement value reference ranges include the measurement value application range; The first data encoding rule is used to convert the nominal clock time interval representation and is formulated based on the timer specification; The application range of the measurement value is represented by the measurement value application range code included in the plurality of different measurement value reference range codes, has application range limit value pairs, and is preset using the specified measurement value format based on one of the timer specification, the measurement application function specification, and the second data encoding rule, wherein the plurality of different measurement value reference range codes are all defaulted based on the measurement application function specification; The second data encoding rule is used to convert the clock time application interval representation and is formulated based on the timer specification; The application scope limit value pair includes a first application scope limit value and a second application scope limit value relative to the first application scope limit value; The method further includes the following steps: Provide storage space; and The preset rated range limit value pairs and variable clock time interval codes are stored in the storage space; When the triggering event occurs, the variable clock time interval code is equal to a specific measurement value range code selected from the plurality of different measurement value reference range codes, wherein the specific measurement value range code indicates a specific clock time interval previously determined based on a sensing operation, the specific clock time interval being selected from the plurality of different clock time reference intervals, and the sensing operation performed by the timer is used to sense the clock time. Prior to the occurrence of the triggering event, the specific measurement range code is assigned to the variable clock time interval code; The method further includes the following steps: Under the condition that the triggering event occurs, the operation reference data code is obtained from the storage space in response to the operation request signal; as well as The data determination is performed using the operation reference data code by running a data determination program to determine the measurement value application range code selected from the plurality of different measurement value reference range codes in order to select the measurement value application range from the plurality of different measurement value reference ranges; The operation reference data code is the same as the default allowed reference data code based on the measurement application function specification; The data determination procedure is constructed based on the measurement application functional specifications; The data determination is one of a first data determination operation and a second data determination operation; Under the condition that the operation reference data code is obtained by accessing the variable clock time interval code stored in the storage space and is the same as the specific measurement range code, the data determination of the first data determination operation determines the measurement application range code based on the obtained specific measurement range code, wherein the first data determination operation is a first scientific calculation using the obtained specific measurement range code, and the determined measurement application range code is the same as or different from the obtained specific measurement range code; Under the condition that the operation reference data code is obtained by accessing the nominal range limit value pair stored in the storage space and is the same as the preset nominal range limit value pair, the data determination of the second data determination operation is to select the measurement value application range code from the plurality of different measurement value reference range codes by performing a second scientific calculation using the measurement value and the obtained nominal range limit value pair to determine the measurement value application range code, wherein the second scientific calculation is performed based on a specific empirical formula, and the specific empirical formula is pre-formulated based on the preset nominal range limit value pair and the plurality of different measurement value reference range codes; The method further includes the following steps: Based on the determined application range code of the measured value, the application range limit value pair is obtained; Based on a data comparison between the measured value and the obtained application range limit value pair, the mathematical relationship is examined to make a logical decision on whether the measured value is within the selected application range of the measured value; as well as If the logical decision is affirmative, determine the current clock time application interval. The method further includes the step of: under the condition that the specific measurement range code is different from the determined measurement application range code and the clock time application interval in which the clock time is currently located is determined by making the logical decision, assigning the determined measurement application range code to the variable clock time interval code based on the code difference between the variable clock time interval code equal to the specific measurement range code and the determined measurement application range code; The variable physical parameters are further characterized based on specific physical parameter states that differ from the target state of the physical parameters; and The method further includes the following steps: Provide a button; Under the condition that the variable physical parameters are caused to be in the target state of the physical parameters by checking the mathematical relationship, a user input operation using the button is received; as well as In response to the user input operation, a second operation signal is generated to cause the variable physical parameter to leave the target physical parameter state and enter the specific physical parameter state.

13. A functional device for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the functional device comprising: Processing unit; The application unit is triggered, coupled to the processing unit, and responds to a trigger event to provide an operation request signal; A timer, coupled to the processing unit, senses clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measured value application range and a clock time specified interval earlier than the clock time application interval, the measured value application range being represented by a measured value application range code, the clock time specified interval being represented by a measured value specified range, and the measured value specified range being represented by a measured value specified range code. as well as A receiving unit, coupled to the processing unit, receives a control signal before the clock time application interval, wherein: The control signal transmits the range code for the measured value; The processing unit obtains the measurement value specified range code from the control signal, responds to the control signal to cause the timer to perform a counting operation related to the sensing signal, and, under the condition that the counting operation is performed, responds to the operation request signal to obtain a measurement value from the sensing signal, and, in response to the operation request signal, performs scientific calculations using the obtained measurement value specified range code to determine a measurement value application range code different from the measurement value specified range code in order to select the measurement value application range. Under the condition that the processing unit determines the current clock time application interval by examining the mathematical relationship between the measurement value and the selected measurement value application range, it obtains the physical parameter target status code based on the determined measurement value application range code, and, based on the obtained physical parameter target status code, causes an operation signal to be transmitted to the physical parameter application unit; and The physical parameter application unit responds to the operation signal to bring the variable physical parameter to the target physical parameter state.

14. A method for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the method comprising the following steps: A clock time is sensed to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement value application range and a clock time specified interval earlier than the clock time application interval, the measurement value application range being represented by a measurement value application range code, the clock time specified interval being represented by a measurement value specified range code. Before the clock time application interval, a control signal is received, the control signal transmitting the measurement value specified range code; The specified range code of the measured value is obtained from the control signal; In response to the control signal, perform a counting operation related to the sensing signal; Respond to triggering events and provide operation request signals; Under the condition that the counting operation is performed, a measurement value is obtained from the sensing signal in response to the operation request signal; In response to the operation request signal, perform scientific calculations using the obtained measurement value specified range code to determine the measurement value application range code, which is different from the measurement value specified range code, in order to select the measurement value application range; Given that the current clock time application interval is determined by examining the mathematical relationship between the measured value and the selected measurement value application range, the physical parameter target status code is obtained based on the determined measurement value application range code. Based on the obtained physical parameter target status code, an operation signal is transmitted to the physical parameter application unit; as well as By using the physical parameter application unit, the variable physical parameter is brought into the target physical parameter state in response to the operation signal.

15. A functional device for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the functional device comprising: Processing unit; A timer, coupled to the processing unit, senses clock time to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measured value application range and a clock time specified interval earlier than the clock time application interval, the measured value application range being represented by a measured value application range code, the clock time specified interval being represented by a measured value specified range, and the measured value specified range being represented by a measured value specified range code. as well as A receiving unit, coupled to the processing unit, receives a control signal before the clock time application interval, wherein: The control signal transmits the range code for the measured value; The processing unit obtains the measurement value specified range code from the control signal, responds to the control signal to cause the timer to perform a counting operation related to the sensing signal, reaches an operation time based on the counting operation, obtains a measurement value from the sensing signal during the operation time, performs scientific calculations using the obtained measurement value specified range code during the operation time to determine a measurement value application range code different from the measurement value specified range code in order to select the measurement value application range, and, based on the determined measurement value application range code, obtains the physical parameter target status code based on the obtained measurement value application range code, and transmits an operation signal to the physical parameter application unit based on the obtained physical parameter target status code; and The physical parameter application unit responds to the operation signal to bring the variable physical parameter to the target physical parameter state.

16. A method for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target state, and the physical parameter target state is represented by a physical parameter target state code, the method comprising the following steps: A clock time is sensed to generate a sensing signal, wherein the clock time is characterized based on a clock time application interval represented by a measurement value application range and a clock time specified interval earlier than the clock time application interval, the measurement value application range being represented by a measurement value application range code, the clock time specified interval being represented by a measurement value specified range code. Before the clock time application interval, a control signal is received, the control signal transmitting the measurement value specified range code; The specified range code of the measured value is obtained from the control signal; In response to the control signal, perform a counting operation related to the sensing signal; Based on the counting operation, the operation time has arrived; During the operation time, a measurement value is obtained from the sensing signal; During the operation time, scientific calculations are performed using the obtained measurement value specified range code to determine the measurement value application range code, which is different from the measurement value specified range code, in order to select the measurement value application range; Given that the current clock time application interval is determined by examining the mathematical relationship between the measured value and the selected measurement value application range, the physical parameter target status code is obtained based on the determined measurement value application range code. Based on the obtained physical parameter target status code, an operation signal is transmitted to the physical parameter application unit; as well as By using the physical parameter application unit, the variable physical parameter is brought into the target physical parameter state in response to the operation signal.

17. A functional device for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target range and a physical parameter application range separate from the physical parameter target range, the physical parameter application range being represented by a measured value application range, the measured value application range having an application range boundary value pair, and the application range boundary value pair including a first application range boundary value and a second application range boundary value different from the first application range boundary value, the functional device comprising: The receiving unit receives control signals, which indicate the target range of the physical parameters. The sensing unit senses the variable physical parameters to generate a sensing signal; as well as A processing unit, coupled to the sensing unit and the receiving unit, responds to the sensing signal to obtain a measurement value when the receiving unit receives the control signal, and, based on the control signal, transmits an operation signal to the physical parameter application unit when the processing unit determines the current application range of the variable physical parameter by checking the mathematical relationship between the measurement value and the application range of the measurement value, wherein: The processing unit responds to the control signal to obtain the application range limit value pair, and checks the mathematical relationship by comparing the measured value and the obtained application range limit value pair to determine the current application range of the physical parameter; and The physical parameter application unit responds to the operation signal to move the variable physical parameter from the physical parameter application range into the physical parameter target range.

18. A method for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target range and a physical parameter application range separate from the physical parameter target range, the physical parameter application range being represented by a measured value application range having application range boundary value pairs, and the application range boundary value pairs including a first application range boundary value and a second application range boundary value different from the first application range boundary value, the method comprising the following steps: The variable physical parameters are sensed to generate a sensing signal; Receive control signals, which serve to indicate the target range of the physical parameters; Under the condition that the control signal is received, a measurement value is obtained in response to the sensing signal; In response to the control signal, obtain the application range limit value pair; Under the condition that the current application range of the variable physical parameter is determined by checking the mathematical relationship between the measured value and the application range of the measured value, an operation signal is transmitted to the physical parameter application unit based on the control signal, wherein the mathematical relationship is checked by comparing the measured value and the obtained application range limit value pair to determine the current application range of the variable physical parameter; as well as By using the physical parameter application unit, the variable physical parameter is moved from the physical parameter application range to the physical parameter target range in response to the operation signal.

19. A functional device for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target range and a physical parameter application range separate from the physical parameter target range, the physical parameter target range being represented by a measured value target range, the measured value target range being represented by a measured value target range code, the physical parameter application range being represented by a measured value application range, and the measured value application range being represented by a measured value application range code, the functional device comprising: The receiving unit receives a control signal, which transmits the target range code of the measured value. The sensing unit senses the variable physical parameters to generate a sensing signal; as well as A processing unit, coupled to the sensing unit and the receiving unit, obtains the target range code of the measurement value from the control signal, obtains a measurement value in response to the sensing signal when the receiving unit receives the control signal, determines the application range code of the measurement value in response to the control signal to select the application range of the measurement value, determines the application range of the physical parameter in which the variable physical parameter is currently located by the processing unit by checking the mathematical relationship between the measurement value and the selected application range of the measurement value, checks the range relationship between the target range of the physical parameter and the application range of the physical parameter by comparing the obtained target range code of the measurement value and the determined application range code of the measurement value, and, based on the obtained target range code of the measurement value, transmits an operation signal to the physical parameter application unit by the processing unit by checking the range relationship to cause the variable physical parameter to move from the application range of the physical parameter into the target range of the physical parameter.

20. A method for controlling variable physical parameters, wherein the variable physical parameters of a physical parameter application unit are characterized based on a physical parameter target range and a physical parameter application range separate from the physical parameter target range, the physical parameter target range being represented by a measured value target range being represented by a measured value target range code, the physical parameter application range being represented by a measured value application range being represented by a measured value application range code, the method comprising the following steps: The variable physical parameters are sensed to generate a sensing signal; Receive a control signal, the control signal transmitting the target range code of the measured value; The target range code of the measured value is obtained from the control signal; Under the condition that the control signal is received, a measurement value is obtained in response to the sensing signal; In response to the control signal, determine the measurement value application range code to select the measurement value application range; Given that the current application range of the variable physical parameter is determined by examining the mathematical relationship between the measured value and the selected application range of the measured value, the range relationship between the target range of the physical parameter and the application range of the physical parameter is examined by comparing the obtained target range code of the measured value and the determined application range code of the measured value. Under the condition that the range difference between the target range of the physical parameters and the application range of the physical parameters is determined by checking the range relationship, an operation signal is transmitted to the physical parameter application unit based on the obtained target range code of the measurement value; as well as By using the physical parameter application unit, the variable physical parameter is moved from the physical parameter application range to the physical parameter target range in response to the operation signal.

21. A control device for controlling a first variable physical parameter, wherein the first variable physical parameter of the functional device is characterized based on a target range of physical parameters and a first application range of physical parameters separate from the target range of physical parameters, the control device comprising: A sensing unit senses a second variable physical parameter to generate a sensing signal, wherein the second variable physical parameter is characterized based on a range of application of a second physical parameter represented by a range of application of the measured value; as well as A processing unit, coupled to the sensing unit, responds to the sensing signal to obtain a measurement value, and is configured to transmit a control signal to the functional device under the condition that the processing unit determines the current application range of the second physical parameter by examining a mathematical relationship between the measurement value and the application range of the measurement value, wherein: The control signal serves to indicate the target range of the physical parameters; as well as Under the condition that the functional device responds to the control signal to determine the current application range of the first physical parameter by checking the physical parameter relationship between the first variable physical parameter and the application range of the first physical parameter, and determines the range difference between the target range of the physical parameter and the application range of the first physical parameter based on the control signal, the functional device causes the first variable physical parameter to move from the application range of the first physical parameter into the target range of the physical parameter based on the control signal.

22. A method for controlling a first variable physical parameter, wherein the first variable physical parameter of a functional device is characterized based on a target range of physical parameters and a first application range of physical parameters separate from the target range of physical parameters, the method comprising the following steps: A second variable physical parameter is sensed to generate a sensing signal, wherein the second variable physical parameter is characterized based on a range of application of the second physical parameter represented by the range of application of the measured value; In response to the sensing signal, a measurement value is obtained; Under the condition that the current application range of the second physical parameter is determined by checking the mathematical relationship between the measured value and the application range of the measured value, a control signal is transmitted to the functional device, wherein the control signal serves to indicate the target range of the physical parameter; as well as Under the condition that the first variable physical parameter is currently in the first physical parameter application range and is determined by the functional device by checking the physical parameter relationship between the first variable physical parameter and the first physical parameter application range in response to the control signal, and the range difference between the physical parameter target range and the first physical parameter application range is determined by the functional device based on the control signal, the first variable physical parameter is moved from the first physical parameter application range to the physical parameter target range by using the functional device based on the control signal.

23. A control device for controlling a first variable physical parameter, wherein the first variable physical parameter of the functional device is characterized based on a specific physical parameter range, a physical parameter target range, and a first physical parameter application range separate from the physical parameter target range, the control device comprising: A sensing unit senses a second variable physical parameter to generate a sensing signal, wherein the second variable physical parameter is characterized based on a range of application of a second physical parameter represented by a range of application of the measured value; as well as A processing unit, coupled to the sensing unit, responds to the sensing signal to obtain a measurement value, and is configured to transmit a control signal to the functional device under the condition that the processing unit determines the current application range of the second physical parameter by examining a mathematical relationship between the measurement value and the application range of the measurement value, wherein: The control signal serves to indicate the target range of the physical parameters; The functional device is configured to store a variable physical parameter range code; Before the functional device receives the control signal, under the condition that the functional device determines the specific physical parameter range in which the first variable physical parameter falls by performing a specific check operation, the functional device causes the variable physical parameter range code to indicate the specific physical parameter range, wherein the specific check operation is related to the first variable physical parameter and the specific physical parameter range; and Under the condition that the functional device responds to the control signal to determine the current application range of the first physical parameter by accessing the variable physical parameter range code indicating the specific physical parameter range, and determines the range difference between the physical parameter target range and the first physical parameter application range based on the control signal, the functional device causes the first variable physical parameter to move from the first physical parameter application range into the physical parameter target range based on the control signal.

24. A method for controlling a first variable physical parameter, wherein the first variable physical parameter of a functional device is characterized based on a specific physical parameter range, a target physical parameter range, and a first physical parameter application range separate from the target physical parameter range, the method comprising the following steps: A second variable physical parameter is sensed to generate a sensing signal, wherein the second variable physical parameter is characterized based on a range of application of the second physical parameter represented by the range of application of the measured value; In response to the sensing signal, a measurement value is obtained; Under the condition that the current application range of the second physical parameter is determined by checking the mathematical relationship between the measured value and the application range of the measured value, a control signal is transmitted to the functional device, wherein the control signal serves to indicate the target range of the physical parameter; By using the aforementioned functional device, a variable physical parameter range code is stored; Before the control signal is received by the functional device, the functional device is used to make the variable physical parameter range code indicate the specific physical parameter range under the condition that the specific physical parameter range in which the first variable physical parameter is located is determined by the functional device by performing a specific check operation, wherein the specific check operation is related to the first variable physical parameter and the specific physical parameter range; as well as Under the condition that the first variable physical parameter is currently in the first physical parameter application range and is determined by the functional device in response to the control signal by accessing the variable physical parameter range code indicating the specific physical parameter range, and the range difference between the physical parameter target range and the first physical parameter application range is determined by the functional device based on the control signal, the first variable physical parameter is moved from the first physical parameter application range to the physical parameter target range by using the functional device based on the control signal.