Functional device and method for controlling a variable physical parameter
By introducing an input unit, a storage unit, and a processing unit into the functional device, the problem of the inability to effectively control variable physical parameters in the prior art is solved, and the state of variable physical parameters can be accurately controlled within the target time interval.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-06-30
- Publication Date
- 2026-03-24
AI Technical Summary
In the prior art, functional devices lack an effective mechanism for controlling variable physical parameters, which makes it impossible to effectively use physical parameter status codes to control physical parameter application units.
The device employs a functional unit that includes an input unit, a storage unit, and a processing unit. It controls the state of the variable physical parameters by storing the status codes of the variable physical parameters and changing them into the target status codes of the physical parameters within the target time interval.
It enables effective control of variable physical parameters within the target time interval, bringing them to the expected state and improving the control accuracy and efficiency of the functional device.
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Figure CN115542726B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to a functional device, and in particular, to a functional device and method for controlling a variable physical parameter. BACKGROUND
[0002] A control device is capable of generating 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 is capable of using at least one of a mechanical energy, an electrical energy, and a light energy, and can be one of an electric motor for access control, a relay for power control, and an energy converter for energy conversion. To effectively control the physical parameter application unit, the functional device is capable of obtaining a physical parameter status code representing a physical parameter status. The functional device can need an improved mechanism to effectively use the physical parameter status code, and thereby effectively control the physical parameter application unit.
[0003] U.S. Patent Publication No. 2015 / 0357887 Al discloses an article specification setting device and a fan motor provided with the same. U.S. Patent No. 7,411,505 B2 discloses a switch state and radio frequency identification tag. SUMMARY
[0004] An object of the present disclosure is to provide a functional device for effectively controlling a variable physical parameter using a physical parameter target status code within a target time interval.
[0005] An embodiment of the present disclosure is to provide a functional device for controlling a variable physical parameter, wherein the variable physical parameter is characterized based on a physical parameter target status represented by a physical parameter target status code. The functional device includes an input unit, a storage unit, and a processing unit. The storage unit stores a variable physical parameter status code representing a variable physical parameter status, wherein the variable physical parameter status is a status that the variable physical parameter is expected to be in within a target time interval. The processing unit is coupled to the input unit and the storage unit, configured to change the variable physical parameter status code into the physical parameter target status code in dependence on the input unit, and to make the variable physical parameter status equal to the physical parameter target status based on the changed variable physical parameter status code equal to the physical parameter target status code within the target time interval.
[0006] Another embodiment of the disclosure is directed to provide a method for controlling a variable physical parameter, wherein the variable physical parameter is characterized based on a physical parameter target state represented by a physical parameter target state code. The method comprises the steps of: storing a variable physical parameter state code representing a variable physical parameter state, wherein the variable physical parameter state is a state that the variable physical parameter is expected to be in a target time interval; changing the variable physical parameter state code to the physical parameter target state code; and during the target time interval, making the variable physical parameter state equal to the physical parameter target state based on the changed variable physical parameter state code equal to the physical parameter target state code.
[0007] Another embodiment of the disclosure is directed to provide a functional device for a variable physical parameter, wherein the variable physical parameter is characterized based on a physical parameter target state represented by a physical parameter target state code. The functional device comprises a light emitting diode matrix and a processing unit. The light emitting diode matrix comprises a light emitting diode related to a target time interval. The processing unit is coupled to the light emitting diode matrix and is configured to obtain the physical parameter target state code during the target time interval and make the light emitting diode display a state indication based on the obtained physical parameter target state code. The state indication is used to indicate a specific state that the variable physical parameter is configured to be in the physical parameter target state during the target time interval.
[0008] Another embodiment of the disclosure is directed to provide a method for a variable physical parameter, wherein the variable physical parameter is characterized based on a physical parameter target state represented by a physical parameter target state code. The method comprises the steps of: providing a light emitting diode matrix comprising a light emitting diode, wherein the light emitting diode is related to a target time interval; during the target time interval, obtaining the physical parameter target state code; and based on the obtained physical parameter target state code, making the light emitting diode display a state indication, which is used to indicate a specific state that the variable physical parameter is configured to be in the physical parameter target state during the target time interval. BRIEF DESCRIPTION OF DRAWINGS
[0009] The disclosure can be more fully understood by the following detailed description in conjunction with the accompanying drawings, in which:
[0010] Figure 1 A schematic diagram of a control system in various embodiments of the disclosure.
[0011] Figure 2 A schematic diagram of an implementation structure of the control system depicted in Figure 1 .
[0012] Figure 3 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0013] Figure 4 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0014] Figure 5 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0015] Figure 6 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0016] Figure 7 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0017] Figure 8 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0018] Figure 9 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0019] Figure 10 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0020] Figure 11 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0021] Figure 12 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0022] Figure 13 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0023] Figure 14 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0024] Figure 15 schematic diagram of an embodiment of the control system shown in Figure 1 .
[0025] Figure 16 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0026] Figure 17 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0027] Figure 18 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0028] Figure 19 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0029] Figure 20 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0030] Figure 21 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0031] Figure 22 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0032] Figure 23 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0033] Figure 24 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0034] Figure 25 a schematic diagram of an implementation of the control system depicted in Figure 1 .
[0035] Figure 26 a schematic diagram of a control system in various embodiments of the present disclosure.
[0036] Figure 27 a schematic diagram of an implementation of the control system depicted in Figure 26 .
[0037] Figure 28 a schematic diagram of an implementation of the control system depicted in Figure 26 . DETAILED DESCRIPTION
[0038] See Figure 1which is a schematic diagram of a control system 921 in various embodiments of the present disclosure. The control system 921 includes a functional device 130 for controlling a variable physical parameter QUA. For example, the variable physical parameter QUA is characterized based on a physical parameter target state JGIC represented by a physical parameter target state code EGIC. The functional device 130 includes an input unit 380, a storage unit 332, and a processing unit 331.
[0039] The storage unit 332 stores a variable physical parameter state code EGIA representing a variable physical parameter state JGIA. For example, the variable physical parameter state JGIA is a state in which the variable physical parameter QUA is expected to be in over a target time interval HV1U. The processing unit 331 is coupled to the input unit 380 and the storage unit 332 and is configured to change the variable physical parameter state code EGIA to the physical parameter target state code EGIC by means of the input unit 380 and to cause the variable physical parameter state JGIA to equal the physical parameter target state JGIC based on the changed variable physical parameter state code EGIA being equal to the physical parameter target state code EGIC over the target time interval HV1U. For example, the target time interval HV1U is related to the stored variable physical parameter state code EGIA.
[0040] Referring to Figure 2 and Figure 3 . Figure 2 is a schematic diagram of an implementation structure 9211 of the control system 921 depicted in Figure 1 . Figure 3 is a schematic diagram of an implementation structure 9212 of the control system 921 depicted in Figure 1 . As shown in Figure 2 and Figure 3 , each of the implementation structure 9211 and the implementation structure 9212 includes the functional device 130. In some embodiments, the functional device 130 further includes a light emitting diode matrix 385 coupled to the processing unit 331.
[0041] The variable physical parameter QUA is related to a variable application time TCIA. The variable application time TCIA is characterized based on the target time interval HV1U and is one of a clock time THIA and a variable residual time TAIA. For example, the target time interval HV1U is one of a clock time target interval and a residual time target interval. The light emitting diode matrix 385 includes a light emitting diode 3852 related to the target time interval HV1U.
[0042] In the condition that the variable physical parameter state code EG1A is equal to the physical parameter target state code EG1C and the processing unit 331 determines that the variable application time TC1A is currently in the target time interval HV1U, the processing unit 331 accesses the stored physical parameter target state code EG1C and causes the light-emitting diode 3852 to display a state indication LL82 based on the accessed physical parameter target state code EG1C. The state indication LL82 is used to indicate that the variable physical parameter QU1A is configured to be in a specific state XE82 of the physical parameter target state JG1C within the target time interval HV1U. For example, the state indication LL82 has a flickering.
[0043] The processing unit 331 is coupled to a physical parameter application unit 335 having the variable physical parameter QU1A and transmits an operation signal SG85 to the physical parameter application unit 335 based on the accessed physical parameter target state code EG1C. The operation signal SG85 is used to cause the physical parameter application unit 335 to make the variable physical parameter state JG1A equal to the physical parameter target state JG1C.
[0044] In some embodiments, the variable physical parameter QU1A is further characterized based on a physical parameter application state JG1B different from the physical parameter target state JG1C. The physical parameter application state JG1B is represented by a physical parameter application state code EG1B. In the condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B, the processing unit 331 relies on the input unit 380 to change the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C.
[0045] The input unit 380 includes a push button switch 3805. In the condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B, the push button switch 3805 receives a user input operation BB8C for selecting the push button switch 3805 and causes the processing unit 331 to receive an operation request signal SA81 in response to the user input operation BB8C. The processing unit 331 changes the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C in response to the operation request signal SA81. For example, the push button switch 3805 is coupled to the processing unit 331. For example, the processing unit 331 relies on the push button switch 3805 to change the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C.
[0046] Reference is made to Figure 1 , Figure 2 and Figure 3 . A method MM80 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 JG1C represented by a physical parameter target state code EG1C.
[0047] The method MM80 comprises the steps of storing a variable physical parameter state code EG1A representing a variable physical parameter state JG1A, wherein the variable physical parameter state JG1A is a state in which the variable physical parameter QU1A is expected to be at a target time interval HV1U; changing the variable physical parameter state code EG1A to the physical parameter target state code EG1C; and, during the target time interval HV1U, causing the variable physical parameter state JG1A to equal the physical parameter target state JG1C based on the changed variable physical parameter state code EG1A being equal to the physical parameter target state code EG1C.
[0048] In some embodiments, the variable physical parameter QU1A is associated with a variable application time TC1A. The variable application time TC1A is characterized based on the target time interval HV1U and is one of a clock time TH1A and a variable residual time TA1A. The method MM80 further comprises the steps of providing a light emitting diode matrix 385 comprising a light emitting diode 3852, wherein the light emitting diode 3852 is associated with the target time interval HV1U; providing a physical parameter application unit 335 having the variable physical parameter QU1A; and, on condition that the variable physical parameter state code EG1A is equal to the physical parameter target state code EG1C and the target time interval HV1U in which the variable application time TC1A is currently located is determined, accessing the stored physical parameter target state code EG1C.
[0049] The method MM80 further comprises the steps of causing the light emitting diode 3852 to display a state indication LL82 for indicating a specific state XE82 in which the variable physical parameter QU1A is configured to be at the physical parameter target state JG1C during the target time interval HV1U based on the accessed physical parameter target state code EG1C; and, transmitting an operation signal SG85 to the physical parameter application unit 335 for causing the physical parameter application unit 335 to cause the variable physical parameter state JG1A to equal the physical parameter target state JG1C based on the accessed physical parameter target state code EG1C.
[0050] In some embodiments, the variable physical parameter QU1A is further characterized based on a physical parameter application state JG1B different from the physical parameter target state JG1C. The physical parameter application state JG1B is represented by a physical parameter application state code EG1B. In a condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B, the variable physical parameter state code EG1A is changed from the physical parameter application state code EG1B to the physical parameter target state code EG1C. The method MM80 further includes a step of providing a push button switch 3805.
[0051] The step of changing the variable physical parameter state code EG1A to the physical parameter target state code EG1C includes the following sub-steps: in a condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B, causing the push button switch 3805 to receive a user input operation BB8C for selecting the push button switch 3805; in response to the user input operation BB8C, receiving an operation request signal SA81; and in response to the operation request signal SA81, changing the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C.
[0052] Please refer to Figure 4 . Figure 4 for a schematic diagram of an implementation structure 9213 of the control system 921 depicted in Figure 1 . As shown in Figure 4 , the implementation structure 9213 includes the functional device 130. In some embodiments, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1U. For example, the physical parameter target state JG1C is or identical to the physical parameter target state JE1U. The functional device 130 further includes a timer 342 coupled to the processing unit 331.
[0053] 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 value application range RQ1U. For example, the target time interval HV1U is or identical to the clock time application interval HR1EU. The processing unit 331 obtains a measurement value NY81 in response to the sensing signal SY81, and causes the variable physical parameter QU1A to be in the physical parameter target state JE1U 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.
[0054] Referring to Figure 5 and Figure 6 . Figure 5 a schematic diagram of an implementation structure 9214 of the control system 921 depicted in Figure 1 . Figure 6 a schematic diagram of an implementation structure 9215 of the control system 921 depicted in Figure 1 . As shown in Figure 5 and Figure 6 , each of the implementation structure 9214 and the implementation structure 9215 includes the functional device 130. In some embodiments, the functional device 130 further includes 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. The input unit 380 further includes a push button switch 380A coupled to the processing unit 331.
[0055] The clock time TH1A is further characterized based on a clock time specifying interval HR1ET different from the clock time application interval HR1EU. For example, the clock time specifying interval HR1ET is earlier than the clock time application interval HR1EU. Before the clock time TH1A enters the clock time application interval HR1EU, the input unit 380 receives a user input operation JS81, and causes the processing unit 331 to receive an operation request signal SH81 in response to the user input operation JS81. The processing unit 331 determines a specific range code EB1T in response to the operation request signal SH81. The specific range code EB1T indicates the clock time specifying interval HR1ET.
[0056] For example, the processing unit 331 determines the specific range code EB1T in response to the user input operation JS81. Before the clock time TH1A enters the clock time application interval HR1EU, the button switch 380A receives the user input operation JS81 for selecting the button switch 380A, and in response to the user input operation JS81, causes the processing unit 331 to receive the operation request signal SH81. For example, the user input operation BB8C occurs before the user input operation JS81. The processing unit 331 starts the timer 342 in response to one of the user input operation JS81 and the operation request signal SH81. For example, the processing unit 331 causes the timer 342 to start by means of the button switch 380A.
[0057] The processing unit 331 obtains the measurement value NY81 in response to the sensing signal SY81 due to the operation request signal SH81. For example, the operation request signal SH81 is for determining the clock time specified interval HR1ET. The functional device 130 uses the timer 342 based on the operation request signal SH81 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 measurement value NY81 is a specific count value. For example, the sensing signal SY81 is a digital signal.
[0058] The timer 342 conforms to a timer specification FT21. For example, the measurement value application range RQ1U is preset 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 measurement value NY81 is obtained in a specified measurement value format HH95. The measurement value application range RQ1U is preset based on the timer specification FT21 with the specified measurement value format HH95. For example, the clock time application interval HR1EU is a clock time candidate interval. The measurement value 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.
[0059] The measurement application range RQ1U has an application range limit value pair DQ1U and is represented by a measurement application range code EL1U. For example, the application range limit value pair DQ1U is preset. The processing unit 331 obtains the application range limit value pair DQ1U and the measurement application range code EL1U in response to one of the user input operation JS81 and the operation request signal SH81, and checks the mathematical relationship KQ81 by comparing the measurement value NY81 with 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 measurement application range code EL1U is a measurement time value candidate range code. The physical parameter target state code EG1C is or identical to the physical parameter target state code EW1U.
[0060] In some embodiments, under the condition that the processing unit 331 determines that the clock time TH1A is currently in the clock time application interval HR1EU by checking the 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 performs a physical parameter relationship checking control GX8U for checking a physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U based on the obtained physical parameter target state code EW1U.
[0061] Under the condition that the physical parameter application state JE1T is different 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 performing the physical parameter relationship checking control GX8U, the processing unit 331 performs a signal generation control GY85 to generate an operation signal SG85 based on the obtained physical parameter target state code EW1U, 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.
[0062] The physical parameter application unit 335 is responsive to the operation signal SG85 to cause the variable physical parameter QU1A to enter the physical parameter target state JE1U from the physical parameter application state JE1T. In the condition that the processing unit 331 determines that the clock time TH1A is currently in the clock time application section HR1EU by checking the mathematical relationship KQ81, the processing unit 331 performs a data storage control operation GM8U for causing a clock time application section code UF8U representing the determined clock time application section 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. The data storage control operation GM8U causes the clock time application section code UF8U to be stored by the storage unit 332.
[0063] Please refer to Figure 7 , Figure 8 and Figure 9 . Figure 7 is a schematic diagram of an implementation structure 9216 of the control system 921 depicted in Figure 1 . Figure 8 is a schematic diagram of an implementation structure 9217 of the control system 921 depicted in Figure 1 . Figure 9 is a schematic diagram of an implementation structure 9218 of the control system 921 depicted in Figure 1 . As shown in Figure 7 , Figure 8 and Figure 9 , each of the implementation structure 9216, the implementation structure 9217 and the implementation structure 9218 includes the functional device 130. The functional device 130 includes the processing unit 331, the timer 342 coupled to the processing unit 331, the storage unit 332 coupled to the processing unit 331, the input unit 380 coupled to the processing unit 331, and the physical parameter application unit 335 coupled to the processing unit 331.
[0064] In some embodiments, the timer 342 complies with a timer specification FT21. For example, the measurement value application range RQ1U is pre-set 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. The processing unit 331 is configured to perform a measurement application function FA81 related to the clock time application interval HR1EU. The measurement application function FA81 complies with a measurement application function specification GAL8 related to 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.
[0065] The processing unit 331 obtains the measurement value NY81 in a specified measurement value format HH95 in response to the sensing signal SY81. 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 a plurality of different clock time reference intervals HR1E1, HR1E2, … represented by a plurality of different measurement value reference ranges RQ11, RQ12, …, respectively. For example, the nominal clock time interval HR1E is uniformly divided to form the plurality of different clock time reference intervals HR1E1, HR1E2, …. The nominal measurement value range HR1N is a nominal measurement time value range. The plurality of different measurement value reference ranges RQ11, RQ12, … are a plurality of measurement time value reference ranges and are all pre-set based on the timer specification FT21.
[0066] The plurality of different clock time reference intervals HR1E1, HR1E2, … includes 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.
[0067] The nominal measurement value range HR1N is equal to at least a second portion of the full measurement value range QK8E, is preset in 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 nominal range limit value pair DP1A, and includes a plurality of different measurement value reference ranges RQ11, RQ12,... represented by a plurality of different measurement value reference range codes EL11, EL12,...
[0068] For example, the nominal range limit value pair DP1A is preset in the specified measurement value format HH95, and the plurality of different measurement value reference ranges RQ11, RQ12,... includes the measurement value application range RQ1U. The first data encoding rule WX8HE is used to convert the nominal clock time interval representation GA8HE, and is formulated based on the timer specification FT21. For example, the plurality of different measurement value reference range codes EL11, EL12,... are a plurality of measurement time value reference range codes, respectively.
[0069] In some embodiments, the measurement value application range RQ1U is represented by a measurement value application range code EL1U included in the plurality of different measurement value reference range codes EL11, EL12,..., has an application range limit value pair DQ1U, and is preset in 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 value reference range codes EL11, EL12,... are all preset 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 formulated based on the timer specification FT21. The application range limit value 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.
[0070] The function device 130 further includes a trigger application unit 387 coupled to the processing unit 331. The storage unit 332 stores a preset nominal 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 range code EL14 selected from the plurality of different measurement value reference range codes EL11, EL12,.... The specific measurement 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 for sensing the clock time TH1A.
[0071] The specific measurement range code EL14 is assigned to the variable clock time interval code UF8A before the trigger event JQ81 occurs. The trigger application unit 387 causes the processing unit 331 to receive an operation request signal SJ81 in response to the trigger event JQ81. The processing unit 331 obtains 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 value reference range codes EL11, EL12,... to select the measurement application range RQ1U from the plurality of different measurement value reference ranges RQ11, RQ12,... in response to the operation request signal SJ81 under the condition that the trigger event JQ81 occurs. The operation reference data code XV81 is identical to an allowable reference data code preset based on the measurement application function specification GAL8. The data determination program NK8A is constructed based on the measurement application function specification GAL8.
[0072] The data determination AK8A is one of a first data determination operation AK81 and a second data determination operation AK82. In the case that the operation reference data code XV81 is obtained by accessing the variable clock time interval code UF8A stored in the storage unit 332 to be identical to the preset rated range limit value pair DP1A, the data determination AK8A of the first data determination operation AK81 determines the measurement value application range code EL1U based on the obtained specific measurement value range code EL14. For example, the first data determination operation AK81 is a first scientific calculation MC81 using the obtained specific measurement value range code EL14. The determined measurement value application range code EL1U is identical to or different from the obtained specific measurement value range code EL14.
[0073] In the case that the operation reference data code XV81 is obtained by accessing the rated range limit value pair DP1A stored in the storage unit 332 to be identical to the preset rated 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, … by performing a second scientific calculation MD81 using the measurement value NY81 and the obtained rated range limit value pair DP1A to determine the measurement value application range code EL1U. For example, the second scientific calculation MD81 is performed based on a specific empirical formula XS81. The specific empirical formula XS81 is formulated in advance based on the preset rated range limit value pair DP1A and the plurality of different measurement value reference range codes EL11, EL12, ….
[0074] In some embodiments, the processing unit 331 obtains the application range limit value pair DQ1U based on the determined measurement value 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 limit value pair DQ1U to make a logical decision PQ81 whether the measurement value NY81 is within the selected measurement value application range RQ1U. In the case that the logical decision PQ81 is affirmative, the processing unit 331 determines the clock time application interval HR1EU in which the clock time TH1A currently resides.
[0075] In a case where the specific measurement value range code EL14 is different from the determined measurement value application range code EL1U and the processing unit 331 determines that the clock time TH1A currently resides in the clock time application interval HR1EU by making the logical decision PQ81, the processing unit 331 uses the storage unit 332 to assign the determined measurement value 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 equal to the specific measurement value range code EL14 and the determined measurement value application range code EL1U.
[0076] 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 different from the physical parameter target state JE1U. In a case where the processing unit 331 causes the variable physical parameter QU1A to reside in the physical parameter target state JE1U by checking the first mathematical relationship KQ81, the input unit 380 receives a user input operation BQ82 for selecting the button 3801. The processing unit 331 transmits an operation signal SG87 for causing the variable physical parameter QU1A to depart from the physical parameter target state JE1U to enter the specific physical parameter state JE16 to the physical parameter application unit 335 in response to the user input operation BQ82. For example, the button 3801 is a push button switch and is coupled to the processing unit 331.
[0077] Please refer to Figure 10 and Figure 11 . Figure 10 a schematic diagram of an implementation structure 9219 of the control system 921 depicted in Figure 1 . Figure 11 a schematic diagram of an implementation structure 9220 of the control system 921 depicted in FIG. 1. As Figure 10 and Figure 11As shown, each of the implementation structure 9219 and the implementation structure 9220 includes 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 input unit 380. The timer 342, the storage unit 332, the physical parameter application unit 335, the light emitting diode matrix 385, and the input unit 380 are all controlled by the processing unit 331. For example, the physical parameter application unit 335 is located at one of inside of the functional device 130 and outside of the functional device 130. The input unit 380 includes a plurality of push button switches 3805, 380A,....
[0078] In some embodiments, the input unit 380 receives the user input operation JS81 for selecting the push button switch 380A. The processing unit 331 causes the variable physical parameter QU1A to be in the physical parameter application state JE1T in response to one of the user input operation JS81 and the operation request signal SH81. The clock time specified interval HR1ET is adjacent to the clock time application interval HR1EU, is represented by a measurement value specified range RQ1T, has 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 measurement time value target range. The measurement value specified range code EL1T is a time value target range code. The specified range limit value pair DQ1T is a target range limit value pair.
[0079] The user input operation JS81 is for causing the processing unit 331 to determine the clock time specified interval HR1ET. Under the condition that the processing unit 331 determines the clock time specified interval HR1ET, the processing unit 331 controls the timer 342 to cause the timer 342 to measure the clock time TH1A according to the start limit time HR1ET1. For example, the processing unit 331 causes the variable physical parameter QU1A to be in the physical parameter application state JE1T within the clock time specified interval HR1ET in response to one of the user input operation JS81 and the operation request signal SH81.
[0080] In some embodiments, the physical parameter application state JE1T is represented by a physical parameter application state code EW1T. The user input operation JS81 is used to cause the processing unit 331 to determine one of the physical parameter application state code EW1T and the measurement value target range code EM1T. The processing unit 331 functions to indicate the physical parameter application state JE1T by determining one of the physical parameter application state code EW1T and the measurement value target range code EM1T, and to determine at least one of the clock time specified interval HR1ET and the measurement value specified range RQ1T by determining 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 in response to one of the user input operation JS81 and the operation request signal SH81, and causes the variable physical parameter QU1A to be in the physical parameter application state JE1T within the clock time specified interval HR1ET based on the obtained physical parameter application state code EW1T.
[0081] The functional device 130 includes the trigger application unit 387 controlled by the processing unit 331. The trigger event JQ81 occurs after the input unit 380 receives the user input operation JS81. For example, the trigger event JQ81 occurs in response to one of the user input operation JS81 and the operation request signal SH81. Under the condition that the trigger event JQ81 occurs, the processing unit 331 performs a mathematical calculation ME81 using the obtained specified range limit value pair DQ1T to obtain the application range limit value pair DQ1U in response to the trigger event JQ81, and checks the mathematical relationship KQ81 by comparing the measurement value NY81 and the obtained application range limit value pair DQ1U.
[0082] For example, the trigger event JQ81 is associated with 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 generates the operation request signal SJ81 in response to the trigger event JQ81, provides the operation request signal SJ81 to the processing unit 331, and thereby causes the processing unit 331 to receive the operation request signal SJ81. The processing unit 331 performs the mathematical calculation ME81 to obtain the application range limit value pair DQ1U in response to the operation request signal SJ81 in order to check the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.
[0083] In some embodiments, the variable physical parameter QU1A is characterized based on a plurality of different physical parameter reference states JE11, JE12,.... The plurality of different physical parameter reference states JE11, JE12,... includes the physical parameter application state JE1T and the physical parameter target state JE1U, and is represented by a plurality of different physical parameter reference state codes EW11, EW12,..., respectively. For example, the physical parameter target state JE1U is 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 plurality of different physical parameter reference states JE11, JE12,... is predetermined according to a plurality of different physical parameter reference ranges RD1E1, RD1E2,..., respectively. For example, the physical parameter target range RD1EU is a physical parameter candidate range.
[0084] 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,... is represented by a plurality of different measurement value reference ranges RN11, RN12,..., and includes 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,... is represented by a plurality of different measurement value reference range codes EM11, EM12,..., and includes the measurement value target range RN1T and the measurement value target range RN1U.
[0085] The plurality of different measurement value reference range codes EM11, EM12,... includes a measurement value target range code EM1T and a measurement value target range code EM1U, and is the same as the plurality of different physical parameter reference state codes EW11, EW12,..., respectively. For example, the plurality of different physical parameter reference state codes EW11, EW12,... includes a physical parameter application state code EW1T and a physical parameter target state code EW1U, and is pre-set. For example, the measurement value target range code EM1T and the measurement value target range code EM1U are the same as the physical parameter application state code EW1T and the physical parameter target state code EW1U, respectively.
[0086] In some embodiments, the clock time specifying interval HR1ET and the clock time applying interval HR1EU have a specified time length LH8T and an applying time length LH8U identical to the specified time length LH8T, respectively. The specified time length LH8T and the applying time length LH8U are represented by a measured time length value VH8T and a measured time length value VH8U, respectively. For example, the measured time length value VH8U is identical to the measured time length value VH8T. The measured time length value VH8T and the measured time length value VH8U are both preset in the specified measurement value format HH95 based on the timer specification FT21.
[0087] The clock time applying interval HR1EU has a relative interval position LE81 with respect to the clock time specifying interval HR1ET. The relative interval position LE81 is represented by a relative value VL81. For example, the relative value VL81 is equal to 1 under the condition that the clock time applying interval HR1EU is adjacent to the clock time specifying 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 specified range limit value pair DQ1T to obtain the measured time length value VH8U, and obtains the applying range limit value pair DQ1U using the obtained relative value VL81, the obtained measured time length value VH8U, and the obtained specified range limit value pair DQ1T.
[0088] For example, the storage unit 332 stores the physical parameter applying state code EW1T 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 pair DQ1T, and obtains the stored physical parameter applying state code EW1T from the storage unit 332 based on the obtained measurement value specified range code EL1T.
[0089] Please refer to Figure 12 , Figure 13 , Figure 14 and Figure 15 . Figure 12 is a schematic view of an implementation structure 9221 of the control system 921 depicted in Figure 1 . Figure 13 is a schematic view of an implementation structure 9222 of the control system 921 depicted in Figure 1 . Figure 14 is a schematic view of an implementation structure 9223 of the control system 921 depicted in Figure 1a schematic view of an implementation structure 9221 of the control system 921 in Figure 15 a schematic view of an implementation structure 9222 of the control system 921 in Figure 1 a schematic view of an implementation structure 9224 of the control system 921 in Figure 12 , Figure 13 , Figure 14 and Figure 15 As shown in FIG. 12, FIG. 13, FIG. 14 and FIG. 15, each of the implementation structure 9221, the implementation structure 9222, the implementation structure 9223 and the implementation structure 9224 includes 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.
[0090] 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 comply with 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 respectively represented by a plurality of different measurement value reference ranges RQ11, RQ12, … and are arranged based on a preset time reference interval order QB81. The plurality of different measurement value reference ranges RQ11, RQ12, … are arranged based on the preset 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.
[0091] The plurality of different measurement value reference ranges RQ11, RQ12,... are each preset based on the timer specification FT21 with a specified measurement value format HH95, and are each represented by a different measurement value reference range code EL11, EL12,.... For example, the specified measurement value format HH95 is a specified count value format. The different measurement value reference range codes EL11, EL12,... are each a measurement time value reference range code. The storage unit 332 has a plurality of different memory locations YS81, YS82,..., and stores a plurality of physical parameter specified range codes UQ11, UQ12,... at the different memory locations YS81, YS82,..., respectively. For example, the physical parameter specified range codes UQ11, UQ12,... are each equal to a physical parameter specified state code. The physical parameter specified state codes are each representative of a physical parameter specified state associated with the variable physical parameter QU1A. For example, the physical parameter specified range codes UQ11, UQ12,... are configured to form a physical parameter specified range code array.
[0092] The plurality of different clock time reference intervals HR1E1, HR1E2,... are each represented by a clock time reference interval code. For example, the clock time reference interval codes are each configured to be equal to the different measurement value reference range codes EL11, EL12,..., respectively. Thus, the different measurement value reference range codes EL11, EL12,... are each configured to indicate the 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.
[0093] The different measurement value reference range codes EL11, EL12,... include a measurement value specified range code EL1T and a measurement value applied range code EL1U. The different clock time reference intervals HR1E1, HR1E2,... include a clock time specified interval HR1ET and a clock time applied interval HR1EU. The measurement value specified range code EL1T and the measurement value applied range code EL1U are each configured to indicate the clock time specified interval HR1ET and the clock time applied interval HR1EU, respectively. The plurality of different measurement value reference ranges RQ11, RQ12,... include a measurement value specified range RQ1T and a measurement value applied range RQ1U. The clock time specified interval HR1ET and the clock time applied interval HR1EU are each represented by the measurement value specified range RQ1T and the measurement value applied range RQ1U, respectively.
[0094] 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,... respectively. For example, the plurality of different memory locations YS81, YS82,... are identified based on, or identified by, a plurality of memory addresses AS81, AS82,... respectively. The plurality of memory addresses AS81, AS82,... are pre-defined based on the plurality of different measurement value reference range codes EL11, EL12,... respectively.
[0095] For example, the clock time TH1A is further characterized based on a nominal clock time interval HR1E. The nominal clock time interval HR1E includes the plurality of different clock time reference intervals HR1E1, HR1E2,... and is represented by a nominal measurement value range HR1N. The nominal measurement value range HR1N includes the plurality of different measurement value reference ranges RQ11, RQ12,... and is pre-defined in the specified measurement value format HH95 based on the nominal clock time interval HR1E and the timer specification FT21. For example, the nominal clock time interval HR1E is equal to 24 hours. The nominal measurement value range HR1N is a nominal time value range.
[0096] For example, the measurement application function specification GAL8 includes a nominal clock time interval representation GA8HE and a clock time reference interval representation GA8HR. The nominal clock time interval representation GA8HE is used to represent the nominal 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 nominal measurement value range HR1N is equal to at least a second portion of the full measurement value range QK8E and is pre-defined in 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. The first data encoding rule WX8HE is used to convert the nominal clock time interval representation GA8HE and is formulated based on the timer specification FT21. For example, the nominal measurement value range HR1N is pre-defined by performing a data encoding operation ZX8HE using the first data encoding rule WX8HE.
[0097] The plurality of different measurement value reference ranges RQ11, RQ12,... are pre-set with 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 formulated based on the timer specification FT21. For example, the plurality of different measurement value reference ranges RQ11, RQ12,... are pre-set by performing a data encoding operation ZX8HR using the data encoding rule WX8HR.
[0098] 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 state codes EW11, EW12,.... For example, the physical parameter target range code UQ1U is a physical parameter candidate range code.
[0099] The physical parameter target range code UQ1T represents a physical parameter target range RD1ET that the variable physical parameter QU1A is expected to be in within the clock time specified 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 plurality of different measurement value reference range codes EL11, EL12,... are pre-set based on the measurement application function specification GAL8. For example, the physical parameter target range code UQ1T is equal to the pre-set physical parameter application state code EW1T. The physical parameter target range code UQ1U is identical to the physical parameter application state code EW1U.
[0100] The physical parameter target range code UQ1U represents a physical parameter target range RD1EU that the variable physical parameter QU1A is expected to be in within the clock time application interval HR1EU, and is configured to be stored in a memory location YS8U based on the measurement value application range code EL1U. The memory location YS8U is identified based on a memory address AS8U. The physical parameter target range RD1ET and the physical parameter target range RD1EU are both 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 identical to the physical parameter target state code EW1U. The physical parameter target range RD1EU has a preset physical parameter target range limit ZD1U1 and a preset physical parameter target range limit ZD1U2 relative to the preset physical parameter target range limit ZD1U1.
[0101] In some embodiments, when the input unit 380 receives the user input operation JS81, the physical parameter target range code UQ1T is equal to the preset physical parameter application state code EW1T. The processing unit 331 determines the specific range code EB1T in response to one of the user input operation JS81 and the operation request signal SH81. The specific range code EB1T indicates the clock time specified interval HR1ET, and is equal to the preset measurement value specified range code EL1T. Upon the processing unit 331 determining the specific range code EB1T equal to the measurement value specified range code EL1T, the processing unit 331 obtains the memory address AS8T based on the determined specific range code EB1T (equal to the 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 state code EW1T. For example, there is a preset time interval between the clock time specified interval HR1ET and the clock time application interval HR1EU.
[0102] For example, the user input operation JS81 is used to determine the specific range code EB1T equal to the preset measurement value specified range code EL1T; thus the specific range code EB1T equal to the preset measurement value specified range code EL1T functions to indicate at least one of the clock time specified interval HR1ET and the measurement value specified range RQ1T, and functions to indicate the clock time specified interval HR1ET to indicate the physical parameter application state JE1T.
[0103] For example, the user input operation JS81 is used to determine the specific range code EB1T equal to the preset measurement value specified range code EL1T; thus the specific range code EB1T equal to the preset measurement value specified range code EL1T functions to indicate at least one of the clock time specified interval HR1ET and the measurement value specified range RQ1T, and functions to indicate the clock time specified interval HR1ET to indicate the physical parameter application state JE1T.
[0104] In some embodiments, under the condition that 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 state JE1T and the physical parameter application state JE1L by executing the physical parameter relationship checking 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 makes the variable physical parameter QU1A enter the physical parameter application state JE1T from the physical parameter application state JE1L in response to the operation signal SG81. For example, the variable physical parameter QU1A enters the physical parameter application state JE1T by entering the physical parameter target range RD1ET.
[0105] The processing unit 331 performs a data storage control operation GM8T based on the obtained measurement value specified range code EL1T, which is for causing a clock time application interval code UF8T representing the clock time specified interval HR1ET to be stored. For example, the clock time application interval code UF8T is identical to the obtained measurement value specified range code EL1T. The data storage control operation GM8T causes the clock time application interval code UF8T to be assigned to the variable clock time interval code UF8A by using the storage unit 332.
[0106] For example, the storage unit 332 stores a variable physical parameter range code UN8A. In the condition that the physical parameter application state JE1L is different from the physical parameter application state JE1T and the processing unit 331 determines the physical parameter state difference DT8T by performing the physical parameter relationship check control GX8T, the processing unit 331 causes one of the obtained physical parameter target range code UQ1T and the obtained physical parameter application state code EW1T to be assigned to the variable physical parameter range code UN8A by using the storage unit 332.
[0107] In some embodiments, the timer 342 is configured to represent the clock time specified interval HR1ET by using the measurement value specified range RQ1T, and is configured to represent the clock time application interval HR1EU by using the measurement value application range RQ1U. The input unit 380 receives the user input operation JS81 at a specific time. The specific time is adjacent to the clock time specified interval HR1ET. For example, the specific time is a present time. The processing unit 331 determines the measurement time length value VH8T representing the specified time length LH8T and a clock reference time value NR81 representing a clock reference time TR81 in response to one of the user input operation JS81 and the operation request signal SH81. For example, the clock reference time TR81 is close to the present time. For example, a time difference between the clock reference time TR81 and the present time is within a preset time length. The clock reference time value NR81 is preset in the specified measurement value format HH95 based on the clock reference time TR81 and the timer specification FT21.
[0108] The measurement value specifies a range RQ1T having a range limit pair DQ1T. The range limit pair DQ1T includes a range limit DQ13 and a range limit DQ14 relative to the range limit DQ13. For example, the range limit DQ13 and the range limit DQ14 are a start range limit and an end range limit, respectively. The range limit DQ13 is equal to the clock reference time value NR81.
[0109] The processing unit 331 determines a control data CG81 in response to one of the user input operation JS81 and the operation request signal SH81. The control data 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 used to convert the clock time representation GA8TR.
[0110] In some embodiments, the processing unit 331 causes the timer 342 to start within a start time TT82 based on the determined clock reference time value NR81, and thereby causes the timer 342 to generate a sensed signal SY80 within the start time TT82 by sensing the clock time TH1A. For example, the sensed signal SY80 is a clock time signal. The sensed signal SY80 is an initial time signal, and carries 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.
[0111] For example, the timer 342 is configured to have a variable count value NY8A. Under the condition that the input unit 380 receives the user input operation JS81, the processing unit 331 starts the timer 342 to perform a count operation BD81 for the measurement application function FA81 to change the variable count value NY8A based on the determined clock reference time value NR81. The variable count value NY8A is configured to be equal to the measurement value NY80 within the start time TT82, and is provided in the specified measurement value format HH95. For example, the measurement value NY80 is configured to be the same as the obtained clock reference time value NR81.
[0112] In the condition that the variable physical parameter QU1A is configured within the physical parameter target range RD1ET due to the user input operation JS81, 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, and thereby generates a sensed signal SY81 conveying the measured value NY81. For example, the operation time TY81 is a specified time.
[0113] For example, the trigger application unit 387 generates the operation request signal SJ81 in response to the trigger event JQ81, provides the operation request signal SJ81 to the processing unit 331, and thereby causes the processing unit 331 to receive the operation request signal SJ81. The processing unit 331 obtains the measured value NY81 from the sensed signal SY81 in the specified measured value format HH95 within the operation time TY81 in response to the operation request signal SJ81, and obtains or determines the measured value application range code EL1U by performing a scientific calculation MH85 using the obtained measured value specified range code EL1T within the operation time TY81 in order to check the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U.
[0114] In some embodiments, the measured value specified range RQ1T has the specified range limit value pair DQ1T. The specified range limit value 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 measured value specified range RQ1T and the specified range limit value pair DQ1T are pre-set with the specified measured value format HH95 based on the clock time specified interval HR1ET and the timer specification FT21. The measured value application range RQ1U has the application range limit value pair DQ1U. The application range limit value 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 measured value application range RQ1U and the application range limit value pair DQ1U are pre-set with the specified measured value format HH95 based on the clock time application interval HR1EU and the timer specification FT21.
[0115] For example, the measurement application functional 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 measurement value specified range RQ1T and the specified range limit value pair DQ1T are pre-set in 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 measurement value application range RQ1U and the application range limit value pair DQ1U are pre-set in 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.
[0116] In some embodiments, the processing unit 331 determines the measurement value application range code EL1U within the operation time TY81 due to the user input operation JS81 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 value application range code EL1U within the operation time TY81 based on the determined control data CG81 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 mathematical calculation ME85 using the determined relative value VL81, the obtained measurement time length value VH8T, and the obtained clock reference time value NR81.
[0117] For example, the processing unit 331 determines the relative value VL81 within the operation time TY81 in response to the operation request signal SJ81 and determines the measurement value application range code EL1U based on the determined relative value VL81 and the obtained measurement value specified 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 pair DQ1U to make the logical decision PQ81 as to whether the measurement value NY81 is within the selected measurement value application range RQ1U. In the case that the logical decision PQ81 is affirmative, the processing unit 331 determines the clock time TH1A currently falls in the clock time application interval HR1EU.
[0118] In the condition that the measurement value specified range code EL1T is different from the determined measurement value application range code EL1U and the processing unit 331 determines that the clock time TH1A currently resides in the clock time application interval HR1EU by making the logical decision PQ81, the processing unit 331 performs the data storage control operation GM8U based on a code difference DG83 between the variable clock time interval code UF8A 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 specify the determined measurement value application range code EL1U to the variable clock time interval code UF8A.
[0119] In some embodiments, the physical parameter target range code UQ1U is equal to the preset physical parameter target state code EW1U when the trigger event JQ81 occurs. In the condition that the trigger event JQ81 occurs, the processing unit 331 determines the measurement value application range code EL1U based on the determined control data CG81 in response to the operation request signal SJ81. In the condition that the processing unit 331 determines that the clock time TH1A currently resides in the clock time application interval HR1EU by making the logical decision PQ81, 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 state code EW1U.
[0120] 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 performs the physical parameter relationship check control GX8U for checking the physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U based on the obtained physical parameter target state code EW1U. In the case where 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 performing the physical parameter relationship check control GX8U, the processing unit 331 performs the signal generation control GY85 for generating the operation signal SG85 based on the obtained physical parameter target state code EW1U and transmits the operation signal SG85 to the physical parameter application unit 335.
[0121] The physical parameter application unit 335 makes the variable physical parameter QU1A enter the physical parameter target state JE1U from the physical parameter application state JE1T in response to the operation signal SG85. For example, the variable physical parameter QU1A enters the physical parameter target state JE1U by entering the physical parameter target range RD1EU. For example, in the case where 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 performing the physical parameter relationship check control GX8U, the processing unit 331 specifies 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 by using the storage unit 332.
[0122] In some embodiments, the function device 130 further includes a display unit 382 coupled to the processing unit 331. The display unit 382 includes the light emitting diode matrix 385 and is controlled by the processing unit 331. The plurality of physical parameter specified range codes UQ11, UQ12,... belong to a physical parameter specified range code type TS81. The physical parameter specified range code type TS81 is identified by a physical parameter specified range code type identifier HS81. The physical parameter specified range code type identifier HS81 is preset. The memory address AS8T is preset based on the preset physical parameter specified range code type identifier HS81 and the preset measurement value specified range code EL1T. The memory address AS8U is preset based on the preset physical parameter specified range code type identifier HS81 and the preset measurement value application range code EL1U.
[0123] The light emitting diode matrix 385 includes the light emitting diode 3852 associated with the target time interval HV1U. For example, the input unit 380 receives the user input operation JS81 in the condition that the processing unit 331 causes the light emitting diode 3852 to display a status indication LL81. The status indication LL81 is used to indicate that the variable physical parameter QU1A is expected to be in a specific state XE81 of the physical parameter target state JG1C within the target time interval HV1U. For example, the status indication LL82 is different from the status indication LL81.
[0124] Before the input unit 380 receives the user input operation JS81, the function device 130 is configured in a setting stage UC81. The processing unit 331 causes the function device 130 to leave the setting stage UC81 to enter a timing stage UD81 in response to one of the user input operation JS81 and the operation request signal SH81. For example, the processing unit 331 relies on the push button switch 380A to cause the function device 130 to leave the setting stage UC81 to enter the timing stage UD81.
[0125] In some embodiments, before the input unit 380 receives the user input operation JS81, the processing unit 331 obtains the preset 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 by using at least one of the input unit 380 and the display unit 382, and obtains 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 processing unit 331 uses the storage unit 332 to store the obtained physical parameter target range code UQ1T in the memory location YS8T based on the obtained physical parameter target range code UQ1T and the obtained memory address AS8T in the setting stage UC81.
[0126] Before the input unit 380 receives the user input operation JS81, the processing unit 331 obtains the physical parameter target range code UQ1U and the preset measurement value application range code EL1U by using at least one of the input unit 380 and the display unit 382, and obtains 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 uses the storage unit 332 to store the obtained physical parameter target range code UQ1U in the memory location YS8U based on the obtained physical parameter target range code UQ1U and the obtained memory address AS8U in the setting stage UC81.
[0127] Please refer to Figure 16 , Figure 17 , Figure 18 and Figure 19 . Figure 16 is a schematic diagram of an implementation structure 9225 of the control system 921 depicted in Figure 1 . Figure 17 is a schematic diagram of an implementation structure 9226 of the control system 921 depicted in Figure 1 . Figure 18 is a schematic diagram of an implementation structure 9227 of the control system 921 depicted in Figure 1 . Figure 19 is a schematic diagram of an implementation structure 9228 of the control system 921 depicted in Figure 1 . As Figure 16 , Figure 17 , Figure 18 and Figure 19As shown, each of the implementation structure 9225, the implementation structure 9226, the implementation structure 9227 and the implementation structure 9228 includes the functional device 130. The functional device 130 includes the processing unit 331, the timer 342, the storage unit 332, the input unit 380, the display unit 382 and the physical parameter application unit 335.
[0128] In some embodiments, the display unit 382 includes the light emitting diode matrix 385. For example, the light emitting diode matrix 385 is a two-dimensional light emitting diode matrix and includes a substrate 385A, a light emitting diode 3852 and a light emitting diode 3851 adjacent to the light emitting diode 3852. The light emitting diode 3852 is associated with the target time interval HV1U. The light emitting diode 3851 is associated with a target time interval HV1T adjacent to the target time interval HV1U. For example, the target time interval HV1T is or identical to the clock time specified interval HR1ET. The light emitting diode 3851 and the light emitting diode 3852 are both coupled to and supported by the substrate 385A. The variable application time TC1A is characterized based on the target time interval HV1T. For example, the target time interval HV1T is associated with the stored physical parameter target state code EW1T.
[0129] Under the condition that the variable physical parameter state code EG1A is equal to the physical parameter target state code EG1C and the processing unit 331 determines that the clock time TH1A currently resides in the clock time application interval HR1EU as a result of checking the mathematical relationship KQ81, the processing unit 331 accesses the stored physical parameter target state code EG1C associated with the target time interval HV1U, selects the light emitting diode 3852 associated with the target time interval HV1U, and causes the selected light emitting diode 3852 to display the status indication LL82 based on the accessed physical parameter target state code EG1C within the target time interval HV1U. The status indication LL82 is used to indicate that the variable physical parameter QU1A is configured to be in the specific state XE82 of the physical parameter target state JG1C within the target time interval HV1U.
[0130] The processing unit 331 accesses the stored physical parameter application state code EW1T associated with the target time interval HV1T within the target time interval HV1T, selects the light emitting diode 3851 associated with the target time interval HV1T within the target time interval HV1T, and causes the selected light emitting diode 3851 to display a status indication LL72 based on the accessed physical parameter application state code EW1T within the target time interval HV1T. The status indication LL72 is used to indicate that the variable physical parameter QU1A is configured to be in a particular state XE72 of the physical parameter application state JE1T within the target time interval HV1T. For example, the processing unit 331 transmits the operation signal SG81 to the physical parameter application unit 335 based on the accessed physical parameter application state code EW1T within the target time interval HV1T. The operation signal SG81 is used to cause the physical parameter application unit 335 to cause the variable physical parameter QU1A to be in the physical parameter application state JE1T.
[0131] In some embodiments, the variable physical parameter QU1A is one of a variable electrical parameter, a variable mechanical parameter, a variable optical parameter, a variable temperature, a variable humidity, a variable voltage, a variable current, a variable electric 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 luminous intensity, a variable volume, a variable data traffic, 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 speed, a variable acceleration, a variable force, a variable pressure, and a variable mechanical power.
[0132] The processing unit 331 is configured to perform the measurement application function FA81 associated with the variable physical parameter QU1A. 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 time control function, a light control function, a force control function, an electric control function, a magnetic control function, and any combination thereof. The plurality of application devices includes a control target device, a relay, a control switch device, an electric motor, a lighting device, a door, a vending machine, an energy converter, an electric load device, a time device, a toy, an electric appliance, a printing device, a display device, a mobile device, a loudspeaker, and any combination thereof. For example, the electric appliance is a household electric appliance.
[0133] 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, which include a light usage function, a force usage function, an electricity usage function, a magnetism usage 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, an electric motor, a lighting unit, an energy conversion unit, an electric 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 function unit.
[0134] In some embodiments, the physical parameter application unit 335 has a physical parameter formation area AU11. The physical parameter formation area AU11 has the variable physical parameter QU1A. For example, the physical parameter formation area AU11 is one of an electric load area, a display area, a sensing area, a touch area, a power supply area, and an environmental area. For example, the physical parameter type TU11 is different from a time type.
[0135] For example, the physical parameter application unit 335 includes an input portion 3357 and an output portion 3358 coupled to the input portion 3357. The input portion 3357 is configured to control the output portion 3358, is coupled to the processing unit 331, and is controlled by the processing unit 331. The output portion 3358 has the physical parameter formation area AU11. The physical parameter formation area AU11 has the variable physical parameter QU1A. For example, the input portion 3357 is coupled to the processing unit 331 and the output portion 3358, and receives at least one of the operation signal SG81 and the operation signal SG85 from the processing unit 331. For example, the variable physical parameter state JG1A is one of a variable switch state and a variable function state.
[0136] For example, the input portion 3357 receives the operation signal SG81 from the processing unit 331 and performs a first function operation in response to the operation signal SG81. The first function operation is configured to control the output portion 3358 and to cause the output portion 3358 to have the variable physical parameter QU1A in the physical parameter application state JE1T. The input portion 3357 receives the operation signal SG85 from the processing unit 331 and performs a second function operation in response to the operation signal SG85. The second function operation is configured to control the output portion 3358 and to cause the output portion 3358 to have the variable physical parameter state JG1A equal to the physical parameter target state JG1C.
[0137] For example, in the case that the physical parameter application unit 335 is a relay, the output portion 3358 includes a control switch. The control switch is coupled to the input portion 3357, controlled by the input portion 3357, and has the physical parameter formation region AU11. The control switch forms the variable physical parameter state JG1A provided based on the variable physical parameter QU1A in the physical parameter formation region AU11.
[0138] In some embodiments, the variable application time TC1A is characterized based on a plurality of different reference time intervals HV11, HV12, …. In the case that the variable application time TC1A is equal to the clock time TH1A, the plurality of different reference time intervals HV11, HV12, … are equal to a plurality of different clock time reference intervals HR1E1, HR1E2, …, respectively. The variable physical parameter QU1A is characterized based on a plurality of variable physical parameter states JG11, JG12, … in the plurality of different reference time intervals HV11, HV12, …, respectively. The plurality of variable physical parameter states JG11, JG12, … include the variable physical parameter state JG1A and are represented by a plurality of variable physical parameter state codes EG11, EG12, …, respectively.
[0139] For example, the plurality of variable physical parameter state codes EG11, EG12, … are equal to the plurality of physical parameter specified range codes UQ11, UQ12, …, include the variable physical parameter state code EG1A, and are arranged according to a preset state code order. For example, the plurality of variable physical parameter states JG11, JG12, … are a plurality of states in which the variable physical parameter QU1A is expected to be in the plurality of different reference time intervals HV11, HV12, …, respectively.
[0140] The storage unit 332 stores a variable physical parameter state code array EGAA. The variable physical parameter state code array EGAA includes the plurality of variable physical parameter state codes EG11, EG12, … and is a two-dimensional variable physical parameter state code array. The light-emitting diode matrix 385 is related to the stored variable physical parameter state code array EGAA. The processing unit 331 causes the light-emitting diode matrix 385 to perform a display operation ZJ82 based on the stored variable physical parameter state code array EGAA. For example, the display operation ZJ82 includes displaying the state indication LL82 by means of the light-emitting diode 3852.
[0141] In some embodiments, the variable physical parameter QU1A is characterized based on a physical parameter target state JG1P represented by a physical parameter target state code EG1P. The input unit 380 receives a user input operation BB8H in the setting stage UC81. The processing unit 331 instantaneously transmits an operation signal SG67 to the physical parameter application unit 335 in response to the user input operation BB8H. The operation signal SG67 is used to cause the physical parameter application unit 335 to bring the variable physical parameter QU1A to the physical parameter target state JG1P. For example, the processing unit 331 obtains the physical parameter target state code EG1P in response to the user input operation BB8H, and instantaneously generates the operation signal SG67 based on the obtained physical parameter target state code EG1P.
[0142] For example, the input portion 3357 of the physical parameter application unit 335 receives the operation signal SG67 from the processing unit 331. The input portion 3357 receives the operation signal SG67 from the processing unit 331, and performs a third functional operation in response to the operation signal SG67. The third functional operation is used to control the output portion 3358, and is used to cause the output portion 3358 to instantaneously bring the variable physical parameter QU1A to the physical parameter target state JG1P.
[0143] For example, the input unit 380 includes a push button switch 3807, and causes the processing unit 331 to receive an operation request signal SA87 in response to the user input operation BB8H. The push button switch 3807 receives the user input operation BB8H for selecting the push button switch 3807 in the setting stage UC81, and causes the processing unit 331 to receive the operation request signal SA87 in response to the user input operation BB8H. The processing unit 331 obtains the physical parameter target state code EG1P in response to the operation request signal SA87. For example, the processing unit 331 obtains the physical parameter target state code EG1P by means of the push button switch 3807.
[0144] The input unit 380 includes the button switch 3805. The button switch 3805 receives the user input operation BB8C for selecting the button switch 3805 and causes the processing unit 331 to receive the operation request signal SA81 in response to the user input operation BB8C, on condition that the function device 130 is configured in the setting stage UC81 and the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B. The processing unit 331 changes the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C in response to the operation request signal SA81. For example, the button switch 3805 is coupled to the processing unit 331. The trigger event JQ81 occurs in the timing stage UD81.
[0145] For example, the input unit 380 receives the user input operation BB8C within an operation time TF61. The processing unit 331 accesses the stored physical parameter application state code EG1B within a target time interval HY1U earlier than the operation time TF61 and causes the variable physical parameter state JG1A to be equal to the physical parameter target state JG1B based on the accessed physical parameter application state code EG1B, on condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B. For example, the variable application time TC1A is characterized based on the target time interval HY1U. The target time interval HV1U is identical to the target time interval HY1U and later than the target time interval HY1U.
[0146] In some embodiments, the input unit 380 receives a user input operation JS82 occurring before the user input operation BB8C and causes the processing unit 331 to receive an operation request signal SH82 in response to the user input operation JS82. The processing unit 331 causes the function device 130 to enter the setting stage UC81 in response to the operation request signal SH82. The input unit 380 further includes a button switch 380B coupled to the processing unit 331. The button switch 380B receives the user input operation JS82 for selecting the button switch 380B and causes the processing unit 331 to receive the operation request signal SH82 in response to the user input operation JS82. For example, the processing unit 331 relies on the button switch 380B to cause the function device 130 to enter the setting stage UC81.
[0147] For example, the trigger applying unit 387 is controlled by the processing unit 331 to cause the trigger event JQ81 to occur. In the case that the trigger event JQ81 is the integer overflow event, the trigger applying unit 387 is controlled by the processing unit 331 to cause the integer overflow event to occur. The functional device 130 further includes a timer 343 coupled to the processing unit 331. The timer 343 is controlled by the processing unit 331. In the case that the trigger event JQ81 is the integer overflow event, the timer 343 of the trigger applying unit 387 is responsive to a time control GD81 associated with the processing unit 331 to cause the integer overflow event to occur. For example, the processing unit 331 is responsive to the control signal SC81 to execute the time control GD81 for controlling the timer 343. The timer 343 is responsive to the time control GD81 to form the integer overflow event.
[0148] For example, the trigger applying unit 387 is one of the input unit 380, the display unit 382, and the timer 343. In the case that the trigger event JQ81 is the user input event, the input unit 380 of the trigger applying unit 387 receives a user input operation JS83 to cause the user input event to occur. For example, in the case that the functional device 130 is configured in the timing phase UD81, the input unit 380 receives a user input operation JS86 and is responsive to the user input operation JS86 to cause the processing unit 331 to receive an operation request signal SH86.
[0149] The processing unit 331 is responsive to the operation request signal SH86 to cause the functional device 130 to exit the timing phase UD81 to enter a setting phase UC82. For example, the button switch 380B receives the user input operation JS86 for selecting the button switch 380B and is responsive to the user input operation JS86 to cause the processing unit 331 to receive the operation request signal SH86.
[0150] Referring to Figure 20 . Figure 20 A schematic diagram of an implementation 9229 of the control system 921 shown in Figure 1 is shown. As shown in Figure 20 , the implementation 9229 includes the functional device 130. In some embodiments, the variable physical parameter QU1A is characterized based on a physical parameter target state JE1U. For example, the physical parameter target state JG1C is or identical to the physical parameter target state JE1U. The functional device 130 further includes a timer 346 coupled to the processing unit 331.
[0151] The timer 346 senses a variable remaining time TA1A to generate a sensed signal ST81. For example, the variable remaining time TA1A is characterized based on a remaining time application interval HJ1EU represented by a measurement application range RJ1U. For example, the target time interval HV1U is or is identical to the remaining time application interval HJ1EU. The processing unit 331 obtains a measurement NJ81 in response to the sensed signal ST81, and causes the variable physical parameter QU1A to be in the physical parameter target state JE1U under the condition that the processing unit 331 determines the remaining time application interval HJ1EU in which the variable remaining time TA1A is currently located by checking a mathematical relationship KB81 between the measurement NJ81 and the measurement application range RJ1U. For example, the sensed signal ST81 is a digital signal.
[0152] Referring to Figure 21 and Figure 22 . Figure 21 a schematic diagram of an implementation 9230 of the control system 921 depicted in Figure 1 . Figure 22 a schematic diagram of an implementation 9231 of the control system 921 depicted in Figure 1 . As shown in Figure 21 and Figure 22 , each of the implementation 9230 and the implementation 9231 includes the functional device 130. In some embodiments, the functional device 130 further includes 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. The input unit 380 further includes a push button switch 380A coupled to the processing unit 331. For example, the timer 346 is identical to or different from the timer 342. The variable physical parameter QU1A is related to the variable remaining time TA1A.
[0153] In some embodiments, the variable remaining time TA1A is further characterized based on a remaining time designation interval HJ1ET different from the remaining time application interval HJ1EU. For example, the remaining time designation interval HJ1ET is earlier than the remaining time application interval HJ1EU. Before the variable remaining time TA1A enters the remaining time application interval HJ1EU, the input unit 380 receives a user input operation JS81 and, in response to the user input operation JS81, causes the processing unit 331 to receive an operation request signal SH81. The processing unit 331 determines a specific range code EB1T in response to the operation request signal SH81. The specific range code EB1T indicates the remaining time designation interval HJ1ET.
[0154] For example, the processing unit 331 determines the specific range code EB1T in response to the user input operation JS81. Before the variable remaining time TA1A enters the remaining time application interval HJ1EU, the button switch 380A receives the user input operation JS81 for selecting the button switch 380A and, in response to the user input operation JS81, causes the processing unit 331 to receive the operation request signal SH81. For example, the user input operation BB8C occurs before the user input operation JS81. The processing unit 331 starts the timer 346 in response to one of the user input operation JS81 and the operation request signal SH81.
[0155] The processing unit 331 obtains the measurement NJ81 in response to the sensing signal ST81 due to the operation request signal SH81. For example, the operation request signal SH81 is for determining the remaining time designation interval HJ1ET. The functional device 130 uses the timer 346 to check a time relationship KC81 between the variable remaining time TA1A and the remaining time application interval HJ1EU based on the operation request signal SH81. For example, the sensing signal ST81 is a remaining time signal. The measurement NJ81 is a specific count value.
[0156] In some embodiments, the timer 346 complies with a timer specification FT31. For example, the measurement application range RJ1U is preset based on the timer specification FT31. The timer specification FT31 includes a full measurement range representation FJ8E for representing a full measurement range QJ8E. For example, the measurement application range RJ1U is equal to a portion of the full measurement range QJ8E. The measurement NJ81 is obtained in a specified measurement format HH97. The measurement application range RJ1U is preset based on the timer specification FT31 in the specified measurement format HH97. For example, the remaining time application interval HR1EU is a remaining time candidate interval. The measurement application range RJ1U is a measurement time value candidate range. The remaining time specified interval HJ1ET is a remaining time target interval. The specified measurement format HH97 is a specified count value format.
[0157] The measurement application range RJ1U has an application range limit value pair DJ1U and is represented by a measurement application range code EF1U. For example, the application range limit value pair DJ1U is preset. The processing unit 331 obtains the application range limit value pair DJ1U and the measurement application range code EF1U in response to one of the user input operation JS81 and the operation request signal SH81 and checks the mathematical relationship KB81 by comparing the measurement NJ81 and the obtained application range limit value pair DJ1U. 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 DJ1U is a candidate range limit value pair. The measurement application range code EF1U is a measurement time value candidate range code. The physical parameter target state code EG1C is or identical to the physical parameter target state code EW1U.
[0158] The variable remaining time TA1A is characterized based on a plurality of different remaining time reference intervals HJ1E1, HJ1E2,.... The plurality of different remaining time reference intervals HJ1E1, HJ1E2,... includes the remaining time specified interval HJ1ET and the remaining time application interval HJ1EU. In the condition that the variable application time TC1A is equal to the variable remaining time TA1A, the plurality of different reference time intervals HV11, HV12,... are respectively equal to the plurality of different remaining time reference intervals HJ1E1, HJ1E2,....
[0159] In some embodiments, under the condition that the processing unit 331 determines the remaining time application interval HJ1EU that the variable remaining time TA1A currently belongs to by checking the mathematical relationship KB81, the processing unit 331 obtains the physical parameter target state code EW1U based on the obtained measurement application range code EF1U, and performs a physical parameter relationship checking control GX8U for checking a physical parameter relationship KD9U between the variable physical parameter QU1A and the physical parameter target state JE1U based on the obtained physical parameter target state code EW1U.
[0160] Under the condition that the physical parameter application state JE1T is different 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 performing the physical parameter relationship checking control GX8U, the processing unit 331 performs a signal generation control GY85 for generating an operation signal SG85 based on the obtained physical parameter target state code EW1U, 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.
[0161] The physical parameter application unit 335 makes the variable physical parameter QU1A enter the physical parameter target state JE1U from the physical parameter application state JE1T in response to the operation signal SG85. Under the condition that the processing unit 331 determines the remaining time application interval HJ1EU that the variable remaining time TA1A currently belongs to by checking the mathematical relationship KB81, the processing unit 331 performs a data storage control operation GN8U for causing a remaining time application interval code UG8U representing the determined remaining time application interval HJ1EU to be stored by the storage unit 332. The variable physical parameter QU1A and the variable remaining time TA1A belong to a physical parameter type TU11 and a remaining time type TQ21, respectively. For example, the physical parameter type TU11 is different from the remaining time type TQ21.
[0162] Please refer to Figure 23 , Figure 24 and Figure 25 . Figure 23 a schematic diagram of an implementation structure 9232 of the control system 921 depicted in Figure 1 . Figure 24 a schematic diagram of an implementation structure 9233 of the control system 921 depicted in Figure 1 . Figure 25To illustrate an implementation 9234 of the control system 921 depicted in Figure 1 FIG. 23. As shown in Figure 23 , Figure 24 and Figure 25 , each of the implementation 9232, the implementation 9233 and the implementation 9234 includes the functional device 130. The functional device 130 includes the processing unit 331, the storage unit 332, the input unit 380, the light emitting diode matrix 385 and a timer 34A coupled to the processing unit 331. The timer 34A is one of the timer 342 and the timer 346.
[0163] In some embodiments, the variable physical parameter QU1A is further characterized based on a physical parameter application state JG1E represented by a physical parameter application state code EG1E and a physical parameter target state JG1F different from the physical parameter application state JG1E. The physical parameter target state JG1F is represented by a physical parameter target state code EG1F. The storage unit 332 further stores a variable physical parameter state code EG1D representing a variable physical parameter state JG1D. For example, the variable physical parameter state JG1D is a state in which the variable physical parameter QU1A is expected to be in a target time interval HV1V adjacent to the target time interval HV1U. The variable physical parameter state code EG1A and the variable physical parameter state code EG1D are arranged such that the variable physical parameter state code EG1D is adjacent to the variable physical parameter state code EG1A. The variable application time TC1A is characterized based on the target time interval HV1V. For example, the variable physical parameter state JG1A and the variable physical parameter state JG1D are each a variable functional state. For example, the target time interval HV1V is relative to the stored variable physical parameter state code EG1D.
[0164] For example, the storage unit 332 stores the variable physical parameter state code array EGAA. The variable physical parameter state code array EGAA includes the plurality of variable physical parameter state codes EG11, EG12,.... The plurality of variable physical parameter state codes EG11, EG12,... includes the variable physical parameter state code EG1A and the variable physical parameter state code EG1D. Under the condition that the clock time TH1A is applied, the plurality of different clock time reference intervals HR1E1, HR1E2,... includes the target time interval HV1U and the target time interval HV1V. Under the condition that the variable remaining time TA1A is applied, the target time interval HV1V is adjacent to the remaining time application interval HJ1EU, and the variable remaining time TA1A is further characterized based on the target time interval HV1V.
[0165] In some embodiments, the target time interval HV1V is represented by a measured value target range RQ3V. Under the condition that the variable physical parameter state code EG1D is equal to the physical parameter application state code EG1E and the variable physical parameter state code EG1A is changed to the physical parameter target state code EG1C by the input unit 380, the processing unit 331 changes the variable physical parameter state code EG1D from the physical parameter application state code EG1E to the physical parameter target state code EG1F by the input unit 380 in the setting stage UC81. The timer 34A senses the variable application time TC1A to generate a sensing signal SY61 in the timing stage UD81. The processing unit 331 obtains a measured value NY61 in response to the sensing signal SY61.
[0166] Under the condition that the variable physical parameter state code EG1D is equal to the physical parameter target state code EG1F and the functional device 130 is configured in the timing stage UD81, the processing unit 331 checks a mathematical relationship KQ61 between the measured value NY61 and the measured value application range RQ3V. Under the condition that the processing unit 331 determines that the clock time TC1A is currently in the target time interval HV1V due to checking the mathematical relationship KQ61, the processing unit 331 accesses the stored physical parameter target state code EG1F, and causes the variable physical parameter QU1A to be in the physical parameter target state JG1F based on the accessed physical parameter target state code EG1F within the target time interval HV1V.
[0167] For example, the processing unit 331 transmits an operation signal SG8K to the physical parameter application unit 335 based on the accessed physical parameter target state code EG1F within the target time interval HV1V. The operation signal SG8K is used to cause the physical parameter application unit 335 to bring the variable physical parameter QU1A to the physical parameter target state JG1F. For example, the input section 3357 receives the operation signal SG8K from the processing unit 331, and performs a fourth functional operation in response to the operation signal SG8K. The fourth functional operation is used to control the output section 3358, and is used to cause the output section 3358 to bring the variable physical parameter QU1A to the physical parameter target state JG1F.
[0168] The input unit 380 includes the push button switch 3805. Under the condition that the variable physical parameter state code EG1D is equal to the physical parameter application state code EG1E and the variable physical parameter state code EG1A is changed to the physical parameter target state code EG1C depending on the push button switch 3805, the processing unit 331 receives a user input operation BB8F for selecting the push button switch 3805 in the setting stage UC81, and causes the processing unit 331 to receive an operation request signal SA82 in response to the user input operation BB8F. The processing unit 331 changes the variable physical parameter state code EG1D from the physical parameter application state code EG1E to the physical parameter target state code EG1F in response to the operation request signal SA82 in the setting stage UC81.
[0169] For example, the push button switch 3805 is associated with the variable physical parameter state code array EGAA. The processing unit 331 selects the variable physical parameter state code EG1A associated with the target time interval HV1U from the variable physical parameter state code array EGAA in response to one of the user input operation BB8C and the operation request signal SA81, and changes the selected variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C. The processing unit 331 selects the variable physical parameter state code EG1D associated with the target time interval HV1V from the variable physical parameter state code array EGAA in response to one of the user input operation BB8F and the operation request signal SA82, and changes the selected variable physical parameter state code EG1D from the physical parameter application state code EG1E to the physical parameter target state code EG1F.
[0170] For example, the processing unit 331 responds to either the user input operation BB8C or the operation request signal SA81 to select the variable physical parameter status code EG1A from the plurality of variable physical parameter status codes EG11, EG12, ... . The processing unit 331 responds to either the user input operation BB8F or the operation request signal SA82 to select the variable physical parameter status code EG1D from the plurality of variable physical parameter status codes EG11, EG12, ...
[0171] In some embodiments, the LED matrix 385 is associated with the variable physical parameter status code array EGAA and further includes an LED 3853 associated with the target time interval HV1V. For example, the LED 3853 is adjacent to the LED 3852 and associated with the target time interval HV1V. When the variable physical parameter status code EG1D is equal to the physical parameter target status code EG1F and the functional device 130 is configured in the timing phase UD81, the processing unit 331 relies on the timer 34A to check a first time relationship between the variable application time TC1A and the target time interval HV1V.
[0172] When the processing unit 331 determines, by checking the first time relationship, that the variable application time TC1A is currently in the target time interval HV1V, the processing unit 331 accesses the stored physical parameter target status code EG1F associated with the target time interval HV1V, selects the light-emitting diode 3853 associated with the target time interval HV1V, and, within the target time interval HV1V, causes the light-emitting diode 3853 to display a status indicator LL84 based on the accessed physical parameter target status code EG1F. The status indicator LL84 is used to indicate that the variable physical parameter QU1A is configured to be in a specific state XE84 of the physical parameter target state JG1F within the target time interval HV1V. For example, the status indicator LL84 has a blinking effect. For example, the light-emitting diode 3853 is coupled to and supported by the substrate 385A.
[0173] In some embodiments, under the condition that the variable physical parameter state code EG1A equals the physical parameter target state code EG1C and the functional device 130 is configured in the timing phase UD81, the processing unit 331 relies on the timer 34A to check a second time relationship between the variable application time TC1A and the target time interval HV1U. Under the condition that the processing unit 331 determines that the variable application time TC1A is currently in the target time interval HV1U as a result of checking the second time relationship, the processing unit 331 accesses the stored physical parameter target state code EG1C associated with the target time interval HV1U, selects the light emitting diode 3852 associated with the target time interval HV1U, and causes the selected light emitting diode 3852 to display the status indication LL82 based on the accessed physical parameter target state code EG1C within the target time interval HV1U.
[0174] For example, under the condition that the processing unit 331 causes the light emitting diode 3853 to display a status indication LL83, the input unit 380 receives the user input operation JS81. The status indication LL83 is used to indicate that the variable physical parameter QU1A is expected to be in a specific state XE83 of the physical parameter target state JG1F within the target time interval HV1V. For example, the status indication LL84 is different from the status indication LL83. The functional device 130 is used by a user 395. For example, the user 395 performs one of the user input operation JS82, the user input operation BB8C, the user input operation BB8F, the user input operation BB8H, the user input operation JS81, the user input operation JS83, the user input operation JS86, and any combination thereof.
[0175] For example, the light emitting diode matrix 385 includes the substrate 385A and a plurality of light emitting diodes 3851, 3852, …, and is associated with the plurality of variable physical parameter state codes EG11, EG12, …. The plurality of light emitting diodes 3851, 3852, … includes the light emitting diode 3851, the light emitting diode 3852, and the light emitting diode 3853, and is directly coupled to the substrate 385A. For example, the light emitting diode matrix 385 includes a first light emitting diode row 581 and a second light emitting diode row 582 adjacent to the first light emitting diode row 581. The first light emitting diode row 581 includes the light emitting diode 3852 and the light emitting diode 3853, and is associated with a first specific hour. The first specific hour includes the target time interval HV1U and the target time interval HV1V.
[0176] The second light emitting diode row 582 includes a plurality of light emitting diodes and is associated with a second specific hour adjacent to the first specific hour. The plurality of light emitting diodes 3851, 3852,... includes the plurality of light emitting diodes of the second light emitting diode row 582. The second specific hour includes a plurality of target time intervals respectively associated with the plurality of light emitting diodes. In a condition that the target time interval HV1V is a first end time interval, the plurality of target time intervals includes a second end time interval adjacent to the target time interval HV1V. The plurality of different reference time intervals HV11, HV12,... includes the target time interval HV1U, the target time interval HV1V, and the plurality of target time intervals of the second specific hour.
[0177] For example, the variable physical parameter state code array EGAA includes a first variable physical parameter state code row associated with the first light emitting diode row 581 and a second variable physical parameter state code row associated with the second light emitting diode row 582. The first variable physical parameter state code row is associated with the first specific hour and includes the variable physical parameter state code EG1A associated with the target time interval HV1U and the variable physical parameter state code EG1D associated with the target time interval HV1V. The second variable physical parameter state code row is associated with the second specific hour and includes a plurality of variable physical parameter state codes; and the plurality of target time intervals of the second specific hour are respectively associated with the plurality of variable physical parameter state codes of the second variable physical parameter state code row.
[0178] The input unit 380 includes the plurality of button switches 3805, 380A,.... The plurality of button switches 3805, 380A,... includes the button switch 3805, the button switch 3807, the button switch 380A, and the button switch 380B and is coupled with each other by a silica gel sheet 380Z. For example, the input unit 380 includes the silica gel sheet 380Z. The silica gel sheet 380Z includes a plurality of silica gel portions A1, A2,.... The plurality of button switches 3805, 380A,... respectively includes the plurality of silica gel portions A1, A2,... and a plurality of conductive glue layers B1, B2,... coupled with the plurality of silica gel portions A1, A2,..., respectively.
[0179] Please refer to Figure 26is a schematic diagram of a control system 931 in various embodiments of the present disclosure. The control system 931 includes a functional device 130 for a variable physical parameter QU1A. For example, the variable physical parameter QU1A is characterized based on a physical parameter target state JG1C represented by a physical parameter target state code EG1C. The functional device 130 includes a light emitting diode matrix 385 and a processing unit 331.
[0180] The light emitting diode matrix 385 includes a light emitting diode 3852 associated with a target time interval HV1U. The processing unit 331 is coupled to the light emitting diode matrix 385 and is configured to obtain the physical parameter target state code EG1C within the target time interval HV1U and cause the light emitting diode 3852 to display a status indication LL82 based on the obtained physical parameter target state code EG1C. The status indication LL82 is used to indicate a particular state XE82 of the variable physical parameter QU1A being configured to be in the physical parameter target state JG1C within the target time interval HV1U.
[0181] Referring to Figure 27 and Figure 28 . Figure 27 is a schematic diagram of an implementation structure 9311 of the control system 931 depicted in Figure 26 . Figure 28 is a schematic diagram of an implementation structure 9312 of the control system 931 depicted in Figure 26 . As shown in Figure 27 and Figure 28 , each of the implementation structure 9311 and the implementation structure 9312 includes the functional device 130. In some embodiments, the processing unit 331 is coupled to a physical parameter application unit 335 having the variable physical parameter QU1A. The variable physical parameter QU1A is associated with a variable application time TC1A. The variable application time TC1A is characterized based on the target time interval HV1U and is one of a clock time TH1A and a variable residual time TA1A. For example, the status indication LL82 has a flicker.
[0182] For example, the target time interval HV1U is one of a clock time target interval and a remaining time target interval. Under the condition that the processing unit 331 determines that the variable application time TC1A is currently in the target time interval HV1U, the processing unit 331 obtains the physical parameter target state code EG1C, and transmits an operation signal SG85 to the physical parameter application unit 335 based on the obtained physical parameter target state code EG1C. The operation signal SG85 is used to cause the physical parameter application unit 335 to cause the variable physical parameter QU1A to be in the physical parameter target state JG1C.
[0183] In some embodiments, the functional device 130 further includes an input unit 380 coupled to the processing unit 331, and a storage unit 332 coupled to the processing unit 331. The variable physical parameter QU1A is further characterized based on a physical parameter application state JG1B different from the physical parameter target state JG1C. The physical parameter application state JG1B is represented by a physical parameter application state code EG1B. The storage unit 332 stores a variable physical parameter state code EG1A representing a variable physical parameter state JG1A. For example, the variable physical parameter state JG1A is a state in which the variable physical parameter QU1A is expected to be in within the target time interval HV1U.
[0184] Under the condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B, the processing unit 331 relies on the input unit 380 to change the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C. The input unit 380 includes a push button switch 3805. For example, the push button switch 3805 is coupled to the processing unit 331. Under the condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B, the push button switch 3805 receives a user input operation BB8C for selecting the push button switch 3805, and in response to the user input operation BB8C, causes the processing unit 331 to receive an operation request signal SA81.
[0185] The processing unit 331 responds to the operation request signal SA81 to change the variable physical parameter status code EG1A from the physical parameter application status code EG1B to the physical parameter target status code EG1C. When the variable physical parameter status code EG1A equals the physical parameter target status code EG1C, the processing unit 331 accesses the stored physical parameter target status code EG1C within the target time interval HV1U, and based on the accessed physical parameter target status code EG1C, makes the variable physical parameter status JG1A equal to the physical parameter target status JG1C.
[0186] Please see Figure 26 , Figure 27 and Figure 28 A method MM82 for a variable physical parameter QU1A is disclosed. For example, the variable physical parameter QU1A is characterized based on a physical parameter target state JG1C represented by a physical parameter target state code EG1C.
[0187] The method MM80 includes the following steps: providing a light-emitting diode matrix 385 including a light-emitting diode 3852, wherein the light-emitting diode 3852 is associated with a target time interval HV1U; obtaining the physical parameter target status code EG1C within the target time interval HV1U; and, based on the obtained physical parameter target status code EG1C, causing the light-emitting diode 3852 to display a status indication LL82, the status indication LL82 indicating that the variable physical parameter QU1A is configured to be in a specific state XE82 of the physical parameter target state JG1C within the target time interval HV1U.
[0188] In some embodiments, the variable physical parameter QU1A is associated with a variable application time TC1A. The variable application time TC1A is characterized based on the target time interval HV1U and is one of a clock time TH1A and a variable remaining time TA1A. The method MM82 further includes the following steps: providing a physical parameter application unit 335 having the variable physical parameter QU1A; obtaining the physical parameter target status code EG1C under the condition that the target time interval HV1U in which the variable application time TC1A is currently located is determined; and transmitting an operation signal SG85 to the physical parameter application unit 335 based on the obtained physical parameter target status code EG1C, the operation signal SG85 being used to cause the physical parameter application unit 335 to place the variable physical parameter QU1A in the physical parameter target state JG1C.
[0189] In some embodiments, the variable physical parameter QU1A is further characterized based on a physical parameter application state JG1B different from the physical parameter target state JG1C. The physical parameter application state JG1B is represented by a physical parameter application state code EG1B. The method MM82 further comprises the steps of providing a push button switch 3805; and storing a variable physical parameter state code EG1A representing a variable physical parameter state JG1A in which the variable physical parameter QU1A is expected to be in the target time interval HV1U.
[0190] The method MM82 further comprises the steps of changing the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C on condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B; accessing the stored physical parameter target state code EG1C in the target time interval HV1U on condition that the variable physical parameter state code EG1A is equal to the physical parameter target state code EG1C; and making the variable physical parameter state JG1A equal to the physical parameter target state JG1C based on the accessed physical parameter target state code EG1C.
[0191] The step of changing the variable physical parameter state code EG1A to the physical parameter target state code EG1C comprises the sub-steps of making the push button switch 3805 receive a user input operation BB8C for selecting the push button switch 3805 on condition that the variable physical parameter state code EG1A is equal to the physical parameter application state code EG1B; receiving an operation request signal SA81 in response to the user input operation BB8C; and changing the variable physical parameter state code EG1A from the physical parameter application state code EG1B to the physical parameter target state code EG1C in response to the operation request signal SA81.
[0192] Numerous modifications and other embodiments of the present disclosure set forth herein will be apparent to those skilled in the art from the foregoing description and accompanying drawings. Therefore, claims based on both written description and underlying application are anticipated to be within the scope of the following claims.
[0193] Symbol Explanation
[0194] 130: Function device
[0195] 331: Processing unit
[0196] 332: Storage unit
[0197] 335: physical parameter application unit
[0198] 3357: input section
[0199] 3358: output section
[0200] 342, 343, 346, 34A: timer
[0201] 380: input unit
[0202] 3801: button
[0203] 3805, 3807, 380A, 380B: button switch
[0204] 380Z: silica gel sheet
[0205] 382: display unit
[0206] 385: light emitting diode matrix
[0207] 3851, 3852, 3853: light emitting diode
[0208] 385A: base
[0209] 387: trigger application unit
[0210] 395: user
[0211] 581: first light emitting diode row
[0212] 582: second light emitting diode row
[0213] 921, 931: control system
[0214] 9211, 9212, 9213, 9214, 9215, 9216, 9217, 9218, 9219, 9220, 9221, 922, 9223, 9224, 9225, 9226, 9227, 9228, 9229, 9230, 9231, 9232, 9233, 9234, 9311, 9312: implementation structure
[0215] A1, A2: silica gel section
[0216] AK81: first data determination operation
[0217] AK82: second data determination operation
[0218] AK8A: data determination
[0219] AS81, AS82, AS8T, AS8U: memory address
[0220] AU11: Physical parameter formation region
[0221] B1, B2: Conductive adhesive layer
[0222] BB8C, BB8H, BB8F, BQ82, JS81, JS82, JS83, JS86: User input operations
[0223] BD81: Counting Operation
[0224] CF81: Data Comparison
[0225] CG81: Control Data
[0226] DG81, DG83: Code differences
[0227] DJ1U: Application Scope Limit Values
[0228] DP1A: Rated range limit values
[0229] DQ13, DQ14: Specifies the range limit values
[0230] DQ15: First application scope limit value
[0231] DQ16: Second application scope limit value
[0232] DQ1T: Specifies the range limit value pair
[0233] DQ1U: Application Scope Limit Value Pair
[0234] DT81, DT8T: Differences in physical parameter states
[0235] EB1T: Specific Range Code
[0236] EF1U: Measurement range code
[0237] EG11, EG12, EG1A, EG1D: Variable physics parameter status codes
[0238] EG1B, EG1E: Physical parameter application status codes
[0239] EG1C, EG1F, EG1P: Physical parameter target status codes
[0240] EGAA: Array of Variable Physical Parameters (GPAs)
[0241] EL11, EL12: Measurement reference range codes
[0242] EL14: Specific measurement range code
[0243] EL1T: Measurement range specification code
[0244] EL1U: Measurement value application range code
[0245] EM11, EM12: Measurement value reference range code
[0246] EM1T, EM1U: Measurement value target range code
[0247] EW11, EW12: Physical parameter reference state code
[0248] EW1T: Physical parameter application state code
[0249] EW1U: Physical parameter target state code
[0250] FA81: Measurement application function
[0251] FJ8E, FK8E: Full measurement value range representation
[0252] FT21, FT31: Timer specification
[0253] GA8HE: Nominal clock time interval representation
[0254] GA8HR: Clock time reference interval representation
[0255] GA8HT: Clock time specified interval representation
[0256] GA8HU: Clock time application interval representation
[0257] GA8TR: Clock time representation
[0258] GAL8: Measurement application function specification
[0259] GD81: Time control
[0260] GM8T, GM8U, GN8U: Data storage control operation
[0261] GX8T, GX8U: Physical parameter relationship check control
[0262] GY81, GY85: Signal generation control
[0263] HH95, HH97: Specified measurement value format
[0264] HJ1ET: Remaining time specified interval
[0265] HJ1EU: Remaining time application interval
[0266] HR1E: Nominal clock time interval
[0267] HR1E1, HR1E2: Clock time reference interval
[0268] HR1E4: specific clock time interval
[0269] HR1ET: clock time designation interval
[0270] HR1ET1: start limit time
[0271] HR1ET2: end limit time
[0272] HR1EU: clock time application interval
[0273] HR1N: nominal measurement value range
[0274] HS81: physical parameter designation range code type identifier
[0275] HV1T, HV1U, HV1V, HY1U: target time interval
[0276] JE11, JE12: physical parameter reference state
[0277] JE16: specific physical parameter state
[0278] JE1L, JE1T, JG1B, JG1E: physical parameter application state
[0279] JE1U, JG1C, JG1F, JG1P: physical parameter target state
[0280] JG11, JG12, JG1A, JG1D: variable physical parameter state
[0281] JQ81: trigger event
[0282] KB81, KQ61, KQ81: mathematical relationship
[0283] KC81: time relationship
[0284] KD9T, KD9U: physical parameter relationship
[0285] KT81: time relationship
[0286] LE81: relative interval position
[0287] LH8T: designated time length
[0288] LH8U: application time length
[0289] LL72, LL81, LL82, LL83, LL84: state indication
[0290] MC81: first scientific calculation
[0291] MD81: second scientific computation
[0292] ME81, ME85, MH81, MH85: scientific computation
[0293] MM80, MM82: method
[0294] NJ81, NY61, NY80, NY81: measured value
[0295] NK8A: data determination procedure
[0296] NR81: clock reference time value
[0297] NY8A: variable count value
[0298] PQ81: logical decision
[0299] QB81: preset time reference interval sequence
[0300] QJ8E, QK8E: full measured value range
[0301] QU1A: variable physical parameter
[0302] RD1E1, RD1E2: physical parameter reference range
[0303] RD1ET, RD1EU: physical parameter target range
[0304] RN11, RN12, RQ11, RQ12: measured value reference range
[0305] RN1T, RN1U, RQ3V: measured value target range
[0306] RJ1U, RQ1U: measured value application range
[0307] RQ1T: measured value specified range
[0308] SA81, SA82, SA87, SH81, SH82, SH86, SJ81: operation request signal
[0309] SG67, SG81, SG85, SG87, SG8K: operation signal
[0310] ST81, SY61, SY80, SY81: sensing signal
[0311] TA1A: variable remaining time
[0312] TC1A: variable application time
[0313] TF61, TY81: operation time
[0314] TH1A: Clock time
[0315] TQ11: Clock time type
[0316] TQ21: Time remaining type
[0317] TR81: Clock reference time
[0318] TU11: Physical parameter type
[0319] TS81: Physical parameter specified range code type
[0320] TT82: Start time
[0321] UC81, UC82: Set-up phase
[0322] UD81: Timing phase
[0323] UF8A: Variable clock time interval code
[0324] UF8T, UF8U: Clock time application interval code
[0325] UG8U: Time remaining application interval code
[0326] UN8A: Variable physical parameter range code
[0327] UQ11, UQ12: Physical parameter specified range code
[0328] UQ1T, UQ1U: Physical parameter target range code
[0329] UY95: Specified number of bits
[0330] VH8T, VH8U: Measured time length value
[0331] VL81: Relative value
[0332] WX8HE: First data encoding rule
[0333] WX8HR: Data encoding rule
[0334] WX8HU: Second data encoding rule
[0335] XE72, XE81, XE82, XE83, XE84: Specific state
[0336] XS81: Specific empirical formula
[0337] XV81: Operating reference data code
[0338] YS81, YS82, YS8T, YS8U: Memory location
[0339] ZD1U1, ZD1U2: preset physical parameter target range limit
[0340] ZF81: subtraction operation
[0341] ZJ82: display operation
[0342] ZT81: sensing operation
[0343] ZX8HE, ZX8HR, ZX8HT, ZX8HU, ZX8TR: data encoding operation
Claims
1. A functional device for controlling variable physical parameters, wherein the variable physical parameters are related to variable application time and characterized based on a physical parameter target state represented by a physical parameter target state code, the variable physical parameters are further characterized based on a physical parameter application state different from the physical parameter target state, the physical parameter application state being represented by a physical parameter application state code, and the variable application time being characterized based on a target time interval, the functional device comprising: Processing unit; An input unit, coupled to the processing unit, receives a first user input operation, responds to the first user input operation to cause the processing unit to cause the functional device to enter a setting phase, receives a second user input operation in the setting phase, and receives a third user input operation that occurs after the second user input operation. A storage unit, coupled to the processing unit, stores a variable physical parameter status code representing the state of a variable physical parameter, wherein the variable physical parameter state is the state that the variable physical parameter is expected to be in within the target time interval. as well as A timer, coupled to the processing unit, wherein: The processing unit, under the condition that the variable physical parameter status code is equal to the physical parameter application status code, responds to the second user input operation in the setting phase to change the variable physical parameter status code from the physical parameter application status code to the physical parameter target status code, and responds to the third user input operation to cause the functional device to leave the setting phase and enter the timing phase. The timer senses the variable application time during the timing phase; as well as When the processing unit determines the target time interval in which the variable application time is currently located by relying on the timer during the timing phase, the processing unit makes the variable physical parameter state equal to the target physical parameter state based on the changed variable physical parameter state code which is equal to the target physical parameter state code within the target time interval.
2. The functional device as claimed in claim 1, further comprising a light-emitting diode matrix coupled to the processing unit, wherein: The variable application time is one of the clock time and the variable remaining time; The LED matrix includes LEDs related to the target time interval; When the variable physical parameter status code equals the physical parameter target status code and the processing unit determines the target time interval in which the variable application time is currently located during the timing phase, the processing unit accesses the stored physical parameter target status code and, based on the accessed physical parameter target status code, causes the light-emitting diode to display a status indication. This status indication is used to indicate a specific state in which the variable physical parameter is configured to be in the physical parameter target state within the target time interval; and The processing unit is coupled to the physical parameter application unit having the variable physical parameters, and transmits an operation signal to the physical parameter application unit based on the accessed physical parameter target status code. The operation signal is used to cause the physical parameter application unit to make the variable physical parameter state equal to the physical parameter target state.
3. The functional device as described in claim 1, wherein: The input unit includes a push-button switch; Under the condition that the variable physical parameter status code is equal to the physical parameter application status code, the button switch receives the second user input operation for selecting the button switch during the timing phase, and responds to the second user input operation to make the processing unit receive an operation request signal. as well as The processing unit responds to the operation request signal by changing the variable physical parameter status code from the physical parameter application status code to the physical parameter target status code.
4. A method for controlling variable physical parameters, wherein the variable physical parameters are related to variable application time and characterized based on a physical parameter target state represented by a physical parameter target state code, the variable physical parameters are further characterized based on a physical parameter application state different from the physical parameter target state, the physical parameter application state being represented by a physical parameter application state code, and the variable application time being characterized based on a target time interval, the method comprising the following steps: A processing unit and a timer coupled to the processing unit are provided; Store variable physical parameter status codes representing the state of variable physical parameters, wherein the variable physical parameter state is the state that the variable physical parameter is expected to be in within the target time interval; Receive input from the first user; In response to the first user input operation, the processing unit causes the method to enter the setting phase; During the setting phase, input from a second user is received; When the variable physical parameter status code is equal to the physical parameter application status code, the processing unit is used to change the variable physical parameter status code from the physical parameter application status code to the physical parameter target status code in response to the second user input operation during the setting phase. Receive a third user input operation that occurs after the second user input operation; By using the processing unit, the method leaves the setting phase and enters the timing phase in response to the third user input operation; The variable application time is sensed during the timing phase by using the timer; as well as Under the condition that the target time interval in which the variable application time is currently located is determined by the processing unit in the timing phase by relying on the timer, the processing unit is used to make the variable physical parameter state equal to the target physical parameter state within the target time interval based on the changed variable physical parameter state code which is equal to the target physical parameter state code.
5. The method of claim 4, wherein: The variable application time is one of clock time and variable remaining time; and The method further includes the following steps: Provide a light-emitting diode matrix containing light-emitting diodes, wherein the light-emitting diodes are related to the target time interval; Provide a physical parameter application unit with the aforementioned variable physical parameters; Under the condition that the variable physical parameter status code is equal to the physical parameter target status code and the target time interval in which the variable application time is currently located is determined by the processing unit in the timing phase by the timer, the stored physical parameter target status code is accessed by using the processing unit. By using the processing unit, the LED is made to display a status indication based on the accessed physical parameter target status code. The status indication is used to indicate that the variable physical parameter is configured to be in a specific state of the physical parameter target state within the target time interval. as well as By using the processing unit, an operation signal is transmitted to the physical parameter application unit based on the accessed physical parameter target status code. The operation signal is used to cause the physical parameter application unit to make the variable physical parameter state equal to the physical parameter target state.
6. The method of claim 4, wherein: The method further includes the steps of: providing a push-button switch coupled to the processing unit; and The step of changing the variable physical parameter status code into the target physical parameter status code includes the following sub-steps: Under the condition that the variable physical parameter status code is equal to the physical parameter application status code, the button switch is made to receive the second user input operation for selecting the button switch during the timing phase; In response to the second user input operation, the processing unit receives an operation request signal; as well as By using the processing unit, the variable physical parameter status code is changed from the physical parameter application status code to the physical parameter target status code in response to the operation request signal.
7. A functional device for variable physical parameters, wherein the variable physical parameters are related to variable application time and characterized based on a physical parameter target state represented by a physical parameter target state code, the variable physical parameters are further characterized based on a physical parameter application state different from the physical parameter target state, the physical parameter application state being represented by a physical parameter application state code, and the variable application time being characterized based on a target time interval, the functional device comprising: Processing unit; An input unit, coupled to the processing unit, receives a first user input operation, responds to the first user input operation to cause the processing unit to cause the functional device to enter a setting phase, receives a second user input operation in the setting phase, and receives a third user input operation that occurs after the second user input operation. A storage unit, coupled to the processing unit, stores a variable physical parameter status code representing the state of a variable physical parameter, wherein the variable physical parameter state is the state that the variable physical parameter is expected to be in within the target time interval. A light-emitting diode matrix, coupled to the processing unit, and comprising light-emitting diodes related to the target time interval; as well as A timer, coupled to the processing unit, wherein: The processing unit, under the condition that the variable physical parameter status code is equal to the physical parameter application status code, responds to the second user input operation in the setting phase to change the variable physical parameter status code from the physical parameter application status code to the physical parameter target status code, and responds to the third user input operation to cause the functional device to leave the setting phase and enter the timing phase. The timer senses the variable application time during the timing phase; as well as When the processing unit determines the target time interval in which the variable application time is currently located during the timing phase, the processing unit causes the light-emitting diode to display a status indication based on the changed variable physical parameter status code, which is equal to the target physical parameter status code, within the target time interval. The status indication is used to indicate that the variable physical parameter is configured to be in a specific state of the target physical parameter state within the target time interval.
8. The functional device as claimed in claim 7, wherein: The processing unit is coupled to a physical parameter application unit having the variable physical parameters; The variable application time is one of the clock time and the variable remaining time; as well as When the processing unit determines that the variable application time is currently in the target time interval, the processing unit obtains the stored target physical parameter status code based on the changed variable physical parameter status code which is equal to the target physical parameter status code, and transmits an operation signal to the physical parameter application unit based on the obtained target physical parameter status code. The operation signal is used to cause the physical parameter application unit to put the variable physical parameter in the target physical parameter state.
9. The functional device as claimed in claim 7, wherein: The input unit includes a push-button switch; Under the condition that the variable physical parameter status code is equal to the physical parameter application status code, the button switch receives the second user input operation for selecting the button switch in the setting phase, and responds to the second user input operation to make the processing unit receive an operation request signal; The processing unit responds to the operation request signal by changing the variable physical parameter status code from the physical parameter application status code to the physical parameter target status code. as well as When the variable physical parameter status code is equal to the physical parameter target status code and the processing unit determines the target time interval in which the variable application time is currently located by relying on the timer during the timing phase, the processing unit accesses the stored physical parameter target status code within the target time interval and makes the variable physical parameter state equal to the physical parameter target state based on the accessed physical parameter target status code.
10. A method for variable physical parameters, wherein the variable physical parameters are related to variable application time and characterized based on a physical parameter target state represented by a physical parameter target state code, the variable physical parameters are further characterized based on a physical parameter application state different from the physical parameter target state, the physical parameter application state being represented by a physical parameter application state code, and the variable application time being characterized based on a target time interval, the method comprising the following steps: A processing unit, a timer coupled to the processing unit, and a light-emitting diode (LED) matrix coupled to the processing unit are provided, wherein the LED matrix includes LEDs related to the target time interval; Store variable physical parameter status codes representing the state of variable physical parameters, wherein the variable physical parameter state is the state that the variable physical parameter is expected to be in within the target time interval; Receive input from the first user; In response to the first user input operation, the processing unit causes the method to enter the setting phase; During the setting phase, input from a second user is received; When the variable physical parameter status code is equal to the physical parameter application status code, the processing unit is used to change the variable physical parameter status code from the physical parameter application status code to the physical parameter target status code in response to the second user input operation during the setting phase. Receive a third user input operation that occurs after the second user input operation; By using the processing unit, the method leaves the setting phase and enters the timing phase in response to the third user input operation; The variable application time is sensed during the timing phase by using the timer; as well as Under the condition that the target time interval in which the variable application time is currently located is determined by the processing unit in the timing phase by relying on the timer, the processing unit is used to cause the light-emitting diode to display a status indication based on the changed variable physical parameter status code equal to the target physical parameter status code within the target time interval. The status indication is used to indicate that the variable physical parameter is configured to be in a specific state of the target physical parameter state within the target time interval.
11. The method of claim 10, wherein: The variable application time is one of clock time and variable remaining time; and The method further includes the following steps: Provide a physical parameter application unit with the aforementioned variable physical parameters; Under the condition that the target time interval in which the variable application time is currently located is determined by the processing unit, the stored target physical parameter status code is obtained by using the processing unit based on the changed variable physical parameter status code which is equal to the target physical parameter status code. as well as By using the processing unit, an operation signal is transmitted to the physical parameter application unit based on the obtained physical parameter target status code. The operation signal is used to cause the physical parameter application unit to put the variable physical parameter into the physical parameter target state.
12. The method of claim 10, wherein: The method further includes the following steps: A push-button switch coupled to the processing unit is provided; Under the condition that the variable physical parameter status code is equal to the physical parameter target status code and the target time interval in which the variable application time is currently located is determined by the processing unit in the timing phase by the timer, the stored physical parameter target status code is accessed in the target time interval by using the processing unit. as well as By using the processing unit, the variable physical parameter state is made equal to the physical parameter target state based on the accessed physical parameter target state code; as well as The step of changing the variable physical parameter status code into the target physical parameter status code includes the following sub-steps: Under the condition that the variable physical parameter status code is equal to the physical parameter application status code, the button switch is made to receive the second user input operation for selecting the button switch during the setting phase; In response to the second user input operation, the processing unit receives an operation request signal; as well as By using the processing unit, the variable physical parameter status code is changed from the physical parameter application status code to the physical parameter target status code in response to the operation request signal.
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