Lamp system and control method thereof

The master controller and slave controller of the lighting system respectively detect the motion state of the target to be measured, which solves the inconvenience and accuracy problems of the existing lighting control method and realizes flexible and accurate lighting control.

CN120711575APending Publication Date: 2025-09-26L&S LIGHT (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202510870869.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-26
Publication Date
2025-09-26

AI Technical Summary

Technical Problem

Existing lighting control methods have problems such as inconvenient triggering or high environmental requirements. Button triggering is inconvenient to operate when there are stains, voice control requires a quiet environment, and infrared triggering control is inaccurate or has few modes.

Method used

A lighting system is used, including a master controller and a slave controller, which detect the motion state of the target from two directions respectively, and outputs lighting control signals through the master controller to improve flexibility and accuracy.

Benefits of technology

The flexibility and control accuracy of the lamps are improved, and they can accurately respond to users' operational needs in different environments.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses a lamp system and a control method thereof, and relates to the technical field of lamps. The lamp system comprises: a lamp; the main controller is electrically connected with the lamp; the main controller is used for confirming the motion state of a to-be-detected target in a first direction; the slave controller is in communication connection with the master controller; the slave controller is used for confirming the motion state of the to-be-detected target in a second direction and outputting the second distance detection signal to the master controller; wherein the main controller is further used for outputting corresponding lamp control signals according to the motion states of the to-be-detected target in the first direction and the second direction, so that the lamp works according to the lamp control signals. The invention aims to improve the control accuracy while improving the use flexibility of the lamp.
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Description

Technical Field

[0001] The present invention relates to the technical field of lamps, and in particular to a lamp system and a control method thereof. Background Art

[0002] In the prior art, the control of lamps is mostly achieved in the form of button triggering or voice control. However, the button triggering method requires the user to use his or her own body to touch, thereby triggering the corresponding button switch or knob. However, in cases where it is inconvenient to touch the button switch, for example, there are stains on the user's hands, the button-triggered lamp has the limitation of being inconvenient to trigger. The voice control method requires the environment in which the lamp is located to be relatively quiet so that the lamp can accurately receive the corresponding voice information. Although the voice control method can effectively avoid the problem of manual triggering by the user, there are requirements for the environment. Therefore, the voice-controlled lamps also have corresponding limitations.

[0003] Therefore, in the prior art, there is still a method of using infrared triggering to control the lamp. However, the existing lamps using infrared triggering all have the problem of few lamp change modes or inaccurate control. Summary of the Invention

[0004] The main purpose of the present invention is to provide a lamp system and a control method thereof, aiming to improve the flexibility of lamp use while improving the accuracy of control.

[0005] To achieve the above objectives, the present invention provides a lighting system, comprising:

[0006] lamps;

[0007] A main controller, the main controller being electrically connected to the lamp; the main controller being used to confirm the motion state of the target to be measured in the first direction;

[0008] a slave controller, the slave controller being in communication with the master controller; the slave controller being configured to confirm the motion state of the target to be measured in the second direction, and outputting the result to the master controller while increasing the flexibility of use of the lamp and improving the control accuracy;

[0009] The main controller is further configured to output corresponding lamp control signals according to the motion states of the target to be measured in the first direction and the second direction, so that the lamp operates according to the lamp control signals.

[0010] In one embodiment, the main controller includes:

[0011] a first main control module, the first main control module being electrically connected to the lamp;

[0012] a first distance detection module, the first distance detection module being electrically connected to the first main control module; the first distance detection module being configured to detect a motion state of the target to be detected in a first direction and output a first distance detection signal;

[0013] The first main control module is configured to receive the first distance detection signal to confirm a motion state of the target to be detected in a first direction.

[0014] In one embodiment, the slave controller includes:

[0015] a second main control module, the second main control module being communicatively connected to the first main control module;

[0016] a second distance detection module, the second distance detection module being electrically connected to the second main control module; the second distance detection module being configured to detect the motion state of the target to be detected in a second direction and output a second distance detection signal;

[0017] Among them, the second main control module is used to receive the second distance detection signal to confirm the movement state of the target to be measured in the second direction, and output the movement state of the target to be measured in the second direction to the first main control module; the first main control module is also used to output corresponding lighting control signals according to the movement state of the target to be measured in the first direction and the second direction.

[0018] In one embodiment, the main controller also includes a first wireless communication module, which is electrically connected to the first main control module; the slave controller also includes a second wireless communication module, which is electrically connected to the second main control module, and the second wireless communication module is communicatively connected to the first wireless communication module.

[0019] In one embodiment, the master controller further includes a first communication adjustment module, the first communication adjustment module being electrically connected to the first wireless communication module; the first communication adjustment module being configured to adjust the communication range of the first wireless communication module when triggered; the slave controller further includes a second communication adjustment module, the second communication adjustment module being electrically connected to the second wireless communication module; the second communication adjustment module being configured to adjust the communication range of the second wireless communication module when triggered;

[0020] The communication range of the first wireless communication module is consistent with the communication range of the second wireless communication module.

[0021] In one embodiment, the master controller further includes a first state switching module, the first state switching module is electrically connected to the first master control module; the slave controller further includes a second state switching module, the second state switching module is electrically connected to the second master control module;

[0022] When the first state switching module is triggered, the master controller switches from the master state to the slave state; when the second switching module is triggered, the slave controller switches from the slave state to the master state.

[0023] In one embodiment, the main controller further includes a reserved interface, and the reserved interface is used to access an external device.

[0024] In one embodiment, the main controller further includes:

[0025] A power input terminal, which is used to connect to an external power source;

[0026] A voltage conversion circuit, wherein a first end of the voltage conversion circuit is electrically connected to the power input end; the voltage conversion circuit is used to convert a first voltage input from the power input end into a second voltage and output the second voltage.

[0027] The present invention further provides a method for controlling a lighting system. The method for controlling a lighting system is based on any of the above-mentioned lighting systems, and the method includes:

[0028] confirming the motion state of the target to be measured in the first direction and the second direction;

[0029] Based on the motion state, the lamp is regulated to a preset working state.

[0030] In one embodiment, the specific method of confirming the motion state of the target to be detected in the first direction and the second direction includes:

[0031] confirming the motion state of the target to be detected in the first direction according to the first distance detection signal output by the first distance detection module;

[0032] The motion state of the target to be detected in the second direction is confirmed according to the second distance detection signal output by the second distance detection module.

[0033] The technical solution of the present invention effectively improves the flexibility of the use of the lamp while improving the accuracy of control by adopting a lamp system. The lamp system includes a lamp, a master controller and a slave controller. The master controller and the slave controller can respectively confirm the motion state of the target to be measured from two different directions, thereby confirming the corresponding action that the user requires the lamp to perform. For example, when the target to be measured is a palm, the user places the palm between the master controller and the slave controller, and moves in a preset motion mode in the first direction and / or the second direction. At this time, after the master controller and the slave controller detect the corresponding motion state of the palm, the master controller outputs the corresponding lamp control signal to the lamp, so that the lamp executes the corresponding working mode. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.

[0035] Figure 1 is a schematic diagram of a module of the lighting system of the present invention;

[0036] Figure 2 A schematic diagram of a module of an embodiment of a lighting system of the present invention;

[0037] Figure 3 Schematic diagram of the flow of the control method of the lighting system of the present invention;

[0038] Figure 4 FIG. 1 is a flow chart of an embodiment of a method for controlling a lighting system according to the present invention.

[0039] Description of Figure Numbers:

[0040] 10. Lamp; 20. Main controller; 21. First main control module; 22. First distance detection module; 23. First wireless communication module; 24. First communication adjustment module; 25. First state switching module; 30. Slave controller; 31. Second main control module; 32. Second distance detection module; 33. Second wireless communication module; 34. Second state switching module; 35. Second communication adjustment module.

[0041] The purpose, features and advantages of the present invention will be further described with reference to the accompanying drawings and in conjunction with the embodiments. DETAILED DESCRIPTION

[0042] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0043] It should be noted that all directional indications in the embodiments of the present invention (such as up, down, left, right, front, back, etc.) are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.

[0044] In addition, the descriptions of "first", "second", etc. in the present invention are for descriptive purposes only and should not be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" or "second" may explicitly or implicitly include at least one of such features. In addition, the technical solutions between the various embodiments can be combined with each other, but this must be based on the fact that they can be implemented by ordinary technicians in this field. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0045] In the prior art, the control of the lamp 10 is mostly achieved in the form of button triggering or voice control. However, the button triggering method requires the user to use his or her own body to touch, thereby triggering the corresponding button switch or knob. However, in cases where it is inconvenient to touch the button switch, for example, there are stains on the user's hands, the button-triggered lamp 10 has the limitation of being inconvenient to trigger. The voice control method requires that the environment in which the lamp 10 is located is relatively quiet so that the lamp 10 can accurately receive the corresponding voice information. Although the voice control method can effectively avoid the problem of manual triggering by the user, there are requirements for the environment. Therefore, the voice-controlled lamp 10 also has corresponding limitations.

[0046] Therefore, in the prior art, there is still a method of using infrared triggering to control the lamp 10. However, the existing lamps 10 using infrared triggering all have the problem of having few changing modes of the lamp 10 or inaccurate control.

[0047] Therefore, reference Figure 1 To solve the above problems, the present invention provides a lighting system, comprising:

[0048] lamp 10;

[0049] A main controller 20, the main controller 20 being electrically connected to the lamp 10; the main controller 20 being configured to confirm a motion state of a target to be measured in a first direction;

[0050] A slave controller 30, the slave controller 30 being in communication with the master controller 20; the slave controller 30 being configured to confirm the motion state of the target to be measured in the second direction, and outputting an output to the master controller 20 while increasing the flexibility of use of the lamp 10 and improving control accuracy;

[0051] The main controller 20 is further configured to output corresponding control signals for the lamp 10 according to the motion states of the target in the first direction and the second direction, so that the lamp 10 operates according to the control signals for the lamp 10 .

[0052] In this embodiment, the lamp 10 can be any type of lamp 10, such as a light strip, a wall lamp, or a pendant lamp. The controlled terminal of the lamp 10 is electrically connected to the main controller 20 to receive corresponding lamp 10 control signals and thereby execute the corresponding operating mode. The power terminal of the lamp 10 can be electrically connected to the main controller 20 to obtain the corresponding power from the main controller 20, or it can be connected to an external power source.

[0053] In this embodiment, both the master controller 20 and the slave controller 30 can be implemented using a master control device with a distance detection function. For example, this can be implemented using a microprocessor and an infrared detection device or a laser detection device. The distance detection direction in the master controller 20 is a first direction, while the distance detection direction in the slave controller 30 is a second direction. It will be appreciated that to enhance the master controller 20's ability to accurately determine the motion state of the target, the first and second directions are relative directions, i.e., left and right directions on the same horizontal line. Therefore, the master controller 20 and the slave controller 30 are also arranged on the same horizontal line. When a target appears between the master controller 20 and the slave controller 30, the master controller 20 can detect the distance between the target and the master controller 20 using the distance detection function. The controller can then also detect the distance between the target and the slave controller 30 using the distance detection function. Specifically, when the master controller 20 and the slave controller 30 are installed, the distance M between the master controller 20 and the slave controller 30 is set in the master controller 20. When the main controller 20 detects that the distance between the target to be measured and the main controller 20 itself is X, the slave controller 30 detects that the distance between the target to be measured and the slave controller 30 itself is Y. Among them, when the width of the target to be measured in the first direction and the second direction is much smaller than the distance M, the sum of the distance X and the distance Y should be roughly equal to the distance M. Therefore, when the deviation between the sum of the distance Y output by the slave controller 30 received by the main controller 20 and the distance X obtained by its own detection and the distance M exceeds the preset deviation, the main controller 20 can confirm that there is an error in the detection. Among them, the preset deviation can be set accordingly according to the selection of the target to be measured to avoid false touch when a non-target to be measured appears between the main controller 20 and the slave controller 30. Furthermore, in order to improve the adjustment of the working mode of the lamp 10, the main controller 20 and the slave controller 30 can further confirm the user's needs through the motion state of the target to be measured. For example, if the target moves from the side closest to the master controller 20 to the side closest to the slave controller 30, the master controller 20 and the slave controller 30 can use the synchronization device to confirm the distance between the target and the master controller 20 and the distance between the target and the slave controller 30 at the same time, thereby accurately confirming that the target is moving from the side closest to the master controller 20 to the side closest to the slave controller 30. At this time, the master controller 20 can output a corresponding control signal to the lamp 10 based on the target's motion state and the preset program, causing the lamp 10 to execute the corresponding operating mode.

[0054] Furthermore, in actual applications, the number of targets to be measured can be multiple. For example, the targets to be measured are the left and right palms. The left palm and the right palm are respectively on the side close to the main controller 20 and the slave controller 30. The distance between the main controller 20 and the slave controller 30 is M, the distance between the left palm and the main controller 20 is X, the distance between the right palm and the slave controller 30 is Y, and the distance between the left palm and the right palm is Z. Ignoring the width of the palm in the first direction and the second direction, the sum of the distance X, the distance Y, and the distance Z is equal to the distance M. The main controller 20 can confirm the user's control requirements by confirming the changes in the distance X and the distance Y, and then output the corresponding control signal of the lamp 10 to control the lamp 10 to perform the corresponding action. For example, when both distance X and distance Y decrease, it indicates a need to control the lamp 10 to turn off; when both distance X and distance Y increase, it indicates a need to control the lamp 10 to turn on; when distance X decreases and distance Y increases, it indicates a need to control the lamp 10 to be brighter; when distance X increases and distance Y decreases, it indicates a need to control the lamp 10 to be dimmed. In addition, the motion speed of the target to be measured can be confirmed by a clock source, so that the motion state of the target to be measured can correspond to various different operating states of the lamp 10.

[0055] By adopting a lighting system, the flexibility of the use of the lamp 10 is effectively improved while the accuracy of control is improved. The lighting system includes a lamp 10, a main controller 20 and a slave controller 30. The main controller 20 and the slave controller 30 can respectively confirm the motion state of the target to be measured from two different directions, thereby confirming the corresponding action that the user requires the lamp 10 to perform. For example, when the target to be measured is a palm, the user places the palm between the main controller 20 and the slave controller 30, and moves in a preset motion mode in the first direction and / or the second direction. At this time, after the main controller 20 and the slave controller 30 detect the corresponding motion state of the palm, the main controller 20 outputs the corresponding lamp 10 control signal to the lamp 10, so that the lamp 10 executes the corresponding working mode.

[0056] refer to Figure 2 In one embodiment of the present invention, the main controller 20 includes:

[0057] A first main control module 21 , the first main control module 21 is electrically connected to the lamp 10 ;

[0058] A first distance detection module 22, the first distance detection module 22 is electrically connected to the first main control module 21; the first distance detection module 22 is used to detect the motion state of the target to be detected in the first direction and output a first distance detection signal;

[0059] The first main control module 21 is configured to receive the first distance detection signal to confirm the motion state of the target to be detected in the first direction.

[0060] In this embodiment, the first main control module 21 can be implemented using an FPGA (Field Programmable Gate Array), a PLC (Programmable Logic Controller), an MCU (Microcontroller Unit), a DSP (Digital Signal Processor), a SOC (System on Chip), etc. The first main control module 21 is electrically connected to the lamp 10 to output corresponding lamp 10 control signals to the lamp 10, causing the lamp 10 to execute a corresponding operating mode.

[0061] In this embodiment, the first distance detection module 22 can be implemented using an infrared distance detection module or a laser distance detection module. The first distance detection module 22 is electrically connected to the first main control module 21. The first distance detection module 22 detects the motion state of the target to be measured in the first direction, thereby outputting a first distance detection signal to the first main control module 21. It is understood that the first distance detection module 22 will obtain multiple first distance detection signals at multiple moments. The first main control module 21 can determine the motion state of the target to be measured in the first direction by obtaining the multiple first distance detection signals output by the first distance detection module 22. Specifically, the first main control module 21 can use an internal clock source and multiple first distance detection signals to confirm the distance of the target to be measured from the first detection module at the first moment, the distance from the first detection module at the second moment, and the distance from the first detection module at the third moment. In this way, the first main control module 21 can effectively confirm whether the target to be measured is approaching or moving away from the first distance detection module 22 in the first direction.

[0062] Optionally, the slave controller 30 includes:

[0063] A second main control module 31, which is in communication with the first main control module 21;

[0064] A second distance detection module 32, the second distance detection module 32 is electrically connected to the second main control module 31; the second distance detection module 32 is used to detect the motion state of the target to be detected in the second direction and output a second distance detection signal;

[0065] Among them, the second main control module 31 is used to receive the second distance detection signal to confirm the movement state of the target to be measured in the second direction, and output the movement state of the target to be measured in the second direction to the first main control module 21; the first main control module 21 is also used to output the corresponding lamp 10 control signal according to the movement state of the target to be measured in the first direction and the second direction.

[0066] In this embodiment, the second main control module 31 can also be implemented by using an FPGA (Field Programmable Gate Array), a PLC (Programmable Logic Controller), an MCU (Microcontroller Unit), a DSP (Digital Signal Process), an SOC (System on Chip), etc. The second main control module 31 is communicatively connected to the first main control module 21, thereby outputting a corresponding communication signal to the first main control module 21, so that the first main control module 21 can confirm the motion state of the target to be measured in the second direction according to the communication signal, and further accurately confirm the motion state of the target to be measured in combination with the first distance detection signal.

[0067] In this embodiment, the second distance detection module 32 can also be implemented using an infrared distance detection module or a laser distance detection module. The second distance detection module 32 is electrically connected to the second main control module 31. The second distance detection module 32 detects the motion state of the target to be measured in the second direction, thereby outputting a second distance detection signal to the second main control module 31. It is understandable that the second distance detection module 32 will obtain multiple second distance detection signals at multiple moments. The second main control module 31 can determine the motion state of the target to be measured in the second direction by obtaining the multiple second distance detection signals output by the second distance detection module 32. Specifically, the second main control module 31 can use an internal clock source and multiple second distance detection signals to confirm the distance between the target to be measured and the second detection module at the first moment, the distance between the target to be measured and the second detection module at the second moment, and the distance between the target to be measured and the second detection module at the third moment. In this way, the second main control module 31 can effectively confirm whether the target to be measured is approaching or moving away from the second distance detection module 32 in the second direction. In addition, the second main control module 31 feeds back the received second distance detection signal and the confirmed motion state of the target to be detected in the second direction to the first main control module 21, so that the first main control module 21 can confirm the motion state of the target to be detected more quickly.

[0068] refer to Figure 2In one embodiment of the present invention, the main controller 20 also includes a first wireless communication module 23, which is electrically connected to the first main control module 21; the slave controller 30 also includes a second wireless communication module 33, which is electrically connected to the second main control module 31, and the second wireless communication module 33 is communicatively connected to the first wireless communication module 23.

[0069] In this embodiment, the master controller 20 and the slave controller 30 can be implemented by providing wireless communication modules. Wireless communication can be implemented by using radio frequency electromagnetic waves as a medium for information transmission. Specifically, the master controller 20 is provided with a first wireless communication module 23, and the slave controller 30 is provided with a second wireless communication module 33. The first wireless communication module 23 and the second wireless communication module 33 establish a communication connection. When there is a communication need between the first master control module 21 and the second master control module 31, or between the second master control module 31 and the first master control module 21, the communication needs of the master controller 20 and the slave controller 30 can be met through the first wireless communication module 23 and the second wireless communication module 33. It should be noted that the master controller 20 needs to obtain the motion state of the target under test in the second direction detected by the slave controller 30, and then combine it with the motion state of the target under test in the first direction detected by its own detection to accurately determine the motion state of the target under test, thereby avoiding the problem of insufficient detection accuracy caused by a single detection. The slave controller 30 can obtain power from the master controller 20 through the lamp 10, or it can also be connected to an external power source to maintain its own operation.

[0070] Optionally, the master controller 20 further includes a first communication adjustment module 24, the first communication adjustment module 24 being electrically connected to the first wireless communication module 23; the first communication adjustment module 24 being configured to adjust the communication range of the first wireless communication module 23 when triggered; the slave controller 30 further includes a second communication adjustment module 35, the second communication adjustment module 35 being electrically connected to the second wireless communication module 33; the second communication adjustment module 35 being configured to adjust the communication range of the second wireless communication module 33 when triggered;

[0071] The communication range of the first wireless communication module is consistent with the communication range of the second wireless communication module 33 .

[0072] In this embodiment, when wireless communication is implemented between the master controller 20 and the slave controller 30, the wireless communication between the master controller 20 and the slave controller 30 may be interfered with by the environment. For example, when Bluetooth communication is implemented between the master controller 20 and the slave controller 30 in the 2.4 GHz ISM band, because this is a license-free radio frequency band, it may also be interfered with by other wireless devices using the same frequency band. Most Wi-Fi devices (particularly those using the 802.11b, g, and n standards) also operate in the 2.4 GHz band; radiation leaked from household microwave ovens can also cause interference in this frequency band. Therefore, to ensure stable wireless communication between the master controller 20 and the slave controller 30, corresponding communication adjustment modules are required to enable the master controller 20 and the slave controller 30 to use different frequency bands in different environments to avoid signal interference. To ensure effective wireless communication between the master controller 20 and the slave controller 30, a first communication adjustment module 24 is required in the master controller 20, and a second communication module is required in the slave controller 30. Under the condition that the first communication adjustment module 24 in the master controller 20 is adjusted, the second communication module in the slave controller 30 also needs to be adjusted synchronously so that the master controller 20 and the slave controller 30 can perform stable wireless communication.

[0073] refer to Figure 2 In one embodiment of the present invention, the master controller 20 further includes a first state switching module 25, which is electrically connected to the first master control module 21; the slave controller 30 further includes a second state switching module 34, which is electrically connected to the second master control module 31;

[0074] When the first state switching module 25 is triggered, the master controller 20 switches from the master state to the slave state; when the second switching module is triggered, the slave controller 30 switches from the slave state to the master state.

[0075] It will be appreciated that in actual applications, to facilitate manufacturing and installation of the master controller 20 and the slave controller 30, the master controller 20 and the slave controller 30 can be configured using the same specifications. A first state switching module 25 and a second state switching module 34 can be provided in the master controller 20 and the slave controller 30, respectively. The first state switching module 25 and the second state switching module 34 can each be implemented using a DIP switch or a pushbutton switch. Specifically, in this embodiment, the master controller 20 and the slave controller 30 respectively indicate whether the controller is in the master state and the slave state. The first switching module in the master controller 20 is in the first switching state, while the second switching module in the slave controller 30 is in the second switching state. Therefore, when installing the connection between the two controllers and the lamp 10, the user does not need to distinguish between the two controllers. Instead, after connecting one controller to the lamp 10, the state switching module in that controller switches it to the master state. At this point, the other controller can switch it to the slave state using the switching control module.

[0076] In an embodiment of the present invention, the main controller 20 further includes a reserved interface, and the reserved interface is used to access an external device.

[0077] In this embodiment, in order to meet the different needs of users, the main controller 20 is also provided with a reserved interface to facilitate the connection of external devices. The external device can be an external control device such as a key-triggered controller, a voice recognition controller, or other lamps 10.

[0078] In one embodiment of the present invention, the main controller 20 further includes:

[0079] A power input terminal, which is used to connect to an external power source;

[0080] A voltage conversion circuit, wherein a first end of the voltage conversion circuit is electrically connected to the power input end; the voltage conversion circuit is used to convert a first voltage input from the power input end into a second voltage and output the second voltage.

[0081] In the above embodiment, it can be confirmed that the main controller 20 includes not only the first main control module 21, but also the first ranging module, the first wireless communication module 23, and the like. It is understandable that the power supply voltages required by the first main control module 21, the first ranging module, and the first wireless communication module 23 are inconsistent. Therefore, in the main controller 20, the different internal power supply voltages need to be converted to corresponding power supply voltages by corresponding voltage conversion circuits. The voltage conversion circuits can be implemented using boost circuits, buck circuits, voltage stabilization circuits, and the like to meet the power requirements of different modules.

[0082] refer to Figure 3 The present invention further provides a control method for a lighting system. The control method for the lighting system is based on any of the lighting systems described above, and the control method includes:

[0083] S100: Confirming the motion state of the target in the first direction and the second direction;

[0084] S200: Based on the motion state, regulating the lamp 10 to a preset working state.

[0085] In this embodiment, the target to be measured can be a limb such as a palm, or a human body or a corresponding moving object. By testing the motion state of the target to be measured in the first direction and the second direction within a preset area, the use requirements of the lamp 10 are determined based on the motion state of the target to be measured. For example, if the target to be measured is a palm, when the palm is detected to be moving from the first direction to the second direction, the first control scheme corresponding to the lamp 10 is executed; when the palm is detected to be moving from the second direction to the first direction, the second control scheme corresponding to the lamp 10 is executed. Therefore, the technical solution of the present application can accurately detect the motion state of the target to be measured and then output a corresponding control signal to the lamp 10, so that the lamp 10 performs the corresponding working state according to the preset scheme.

[0086] Optionally, refer to Figure 4 The specific method for confirming the motion state of the target to be measured in the first direction and the second direction includes:

[0087] Step S110: confirming the motion state of the target in the first direction according to the first distance detection signal output by the first distance detection module 22;

[0088] Step S120 : confirming the motion state of the target in the second direction according to the second distance detection signal output by the second distance detection module 32 .

[0089] In this embodiment, the control system of the lamp 10 detects the motion state of the target by using the distance changes corresponding to the distance detection signals output by the distance detection module. The distance detection module can be implemented as an infrared detection module, a laser detection module, or the like. To accurately detect the motion state of the target in the first and second directions, the distance detection module utilizes a first distance detection module 22 to detect the target's motion in the first direction, and a second distance detection module 32 to detect the target's motion in the second direction. Specifically, the distance between the first and second distance detection modules 22 and 32 is M. When the target is located between the first and second distance detection modules 22 and 32, the distance between the first and second distance detection modules 22 and the target is X, and the distance between the second and second distance detection modules 32 and the target is Y. It will be appreciated that to ensure accurate detection of the target's motion, the first and second directions are relative. When the target moves in the first and second directions, the sum of the distances X and Y, added to the width of the target in the first and second directions at different times, is M. In practical applications, the width of the target to be measured in the first and second directions is typically much smaller than the distance M. Therefore, in actual calculations, a preset error range can be set to ignore the impact of the width of the target to be measured in the first and second directions on the detection result. The preset error range can be set accordingly based on the width of the target to be measured in the first and second directions.

[0090] It is worth noting that since the control method of the lighting system of the present invention is based on the above-mentioned lighting system, the embodiments of the control method of the lighting system of the present invention include all technical solutions of all embodiments of the above-mentioned lighting system, and the technical effects achieved are also exactly the same, which will not be repeated here.

[0091] The above description is only a preferred embodiment of the present invention and does not limit the patent scope of the present invention. All equivalent structural transformations made by using the contents of the present invention description and drawings under the inventive concept of the present invention, or direct / indirect application in other related technical fields are included in the patent protection scope of the present invention.

Claims

1. A lighting system, characterized in that: The lighting system comprises: lamps; A main controller, the main controller being electrically connected to the lamp; the main controller being used to confirm the motion state of the target to be measured in the first direction; a slave controller, the slave controller being in communication with the master controller; the slave controller being configured to confirm the motion state of the target to be measured in the second direction, and outputting the result to the master controller while increasing the flexibility of use of the lamp and improving the control accuracy; The main controller is further configured to output corresponding lamp control signals according to the motion states of the target to be measured in the first direction and the second direction, so that the lamp operates according to the lamp control signals.

2. The lighting system according to claim 1, wherein: The main controller includes: a first main control module, the first main control module being electrically connected to the lamp; a first distance detection module, the first distance detection module being electrically connected to the first main control module; the first distance detection module being configured to detect a motion state of the target to be detected in a first direction and output a first distance detection signal; The first main control module is configured to receive the first distance detection signal to confirm a motion state of the target to be detected in a first direction.

3. The lighting system according to claim 2, wherein: The slave controller includes: a second main control module, the second main control module being communicatively connected to the first main control module; a second distance detection module, the second distance detection module being electrically connected to the second main control module; the second distance detection module being configured to detect the motion state of the target to be detected in a second direction and output a second distance detection signal; Among them, the second main control module is used to receive the second distance detection signal to confirm the movement state of the target to be measured in the second direction, and output the movement state of the target to be measured in the second direction to the first main control module; the first main control module is also used to output corresponding lighting control signals according to the movement state of the target to be measured in the first direction and the second direction.

4. The lighting system according to claim 3, wherein: The main controller also includes a first wireless communication module, which is electrically connected to the first main control module; the slave controller also includes a second wireless communication module, which is electrically connected to the second main control module and is communicatively connected to the first wireless communication module.

5. The lighting system according to claim 4, wherein: The master controller further includes a first communication adjustment module, the first communication adjustment module being electrically connected to the first wireless communication module; the first communication adjustment module being configured to adjust the communication range of the first wireless communication module when triggered; the slave controller further includes a second communication adjustment module, the second communication adjustment module being electrically connected to the second wireless communication module; the second communication adjustment module being configured to adjust the communication range of the second wireless communication module when triggered; The communication range of the first wireless communication module is consistent with the communication range of the second wireless communication module.

6. The lighting system according to claim 3, wherein: The master controller further includes a first state switching module, which is electrically connected to the first master control module; the slave controller further includes a second state switching module, which is electrically connected to the second master control module; When the first state switching module is triggered, the master controller switches from the master state to the slave state; when the second switching module is triggered, the slave controller switches from the slave state to the master state.

7. The lighting system according to claim 1, wherein: The main controller further includes a reserved interface, and the reserved interface is used to access an external device.

8. The lighting system according to claim 1, wherein: The main controller also includes: A power input terminal, which is used to connect to an external power source; A voltage conversion circuit, wherein a first end of the voltage conversion circuit is electrically connected to the power input end; the voltage conversion circuit is used to convert a first voltage input from the power input end into a second voltage and output the second voltage.

9. A method for controlling a lighting system, characterized in that: The control method of the lighting system is based on the lighting system according to any one of claims 1 to 8, and the control method includes: confirming the motion state of the target to be measured in the first direction and the second direction; Based on the motion state, the lamp is regulated to a preset working state.

10. The control method of the lighting system according to claim 9, wherein: The specific method for confirming the motion state of the target in the first direction and the second direction includes: confirming the motion state of the target to be detected in the first direction according to the first distance detection signal output by the first distance detection module; The motion state of the target to be detected in the second direction is confirmed according to the second distance detection signal output by the second distance detection module.