Wireless control system and multi-controller

A wireless control system with sensors and a multi-controller adjusts transmission intervals based on human presence to maintain optimal communication quality in dynamic environments.

JP7806446B2Active Publication Date: 2026-01-27MITSUBISHI ELECTRIC CORP +1
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Patent Information

Application Number
JP2021182424
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-11-09
Publication Date
2026-01-27
Estimated Expiration
2041-11-09

AI Technical Summary

Technical Problem

Existing wireless communication systems in environments with changing human occupancy, such as offices, struggle to maintain optimal signal quality due to interference from human bodies, which are not accounted for in pre-measurements.

Method used

A wireless control system with sensors to detect human presence and adjust wireless signal transmission intervals based on the number of people, using a multi-controller to optimize communication by shortening intervals when more people are present.

Benefits of technology

The system effectively predicts and adapts to changes in radio environments caused by human bodies, ensuring stable and efficient wireless communication by adjusting transmission intervals accordingly.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a radio control system capable of optimizing radio communication control by detecting human bodies in a target area by a sensor and automatically adjusting a transmission interval of radio signals in accordance with the number of persons, and a multicontroller.SOLUTION: A radio control system comprises: an image sensor 3 for detecting number-of-persons information in a target area through monitoring; a controller 1 which acquires information from the image sensor 3; a plurality of lighting fixtures; a radio controller; and a setter. The controller 1 performs control in such a manner that a radio transmission interval becomes shorter as the number of persons becomes more based on the number-of-persons information. The radio control system may also comprise a multicontroller including a function of the image sensor 3 and a function of the controller 1. The multicontroller detects the number-of-persons information in the target area through monitoring using the function of the image sensor 3 and performs control in such a manner that the radio transmission interval becomes shorter as the number of persons becomes more based on the number-of-persons information using the function of the controller 1.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a wireless control system and a multi-controller having a sensor for detecting information about the number of people present. [Background technology]

[0002] Patent Document 1 discloses technology related to site surveys, which are a method for investigating the radio wave environment within a facility beforehand when installing a wireless LAN in a building, warehouse, etc. The purpose of a site survey is to understand the wireless environment within the system by measuring the level of wireless quality, and to improve the environment by changing the placement of or adding equipment, etc. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-33355 Summary of the Invention [Problem to be solved by the invention]

[0004] However, because the above-mentioned survey is conducted before actual operation, there are no human bodies, which are one of the causes of wireless communication interference, in the target area at the time of measurement. During operation, there may be multiple people present or multiple workers moving around, so wireless quality will change significantly from the time of pre-measurement. Therefore, even if the wireless environment is optimized in the site survey, it may not be able to keep up with the changing environment during operation, resulting in problems with wireless signals.

[0005] In order to solve the above-mentioned problems, the first objective of the present disclosure is to provide a wireless control system that can optimize wireless communication control by using sensors to monitor a target area to detect human bodies and automatically adjusting the transmission interval of wireless signals according to the number of people.

[0006] A second objective is to provide a multi-controller that can optimize wireless communication control by using a sensor function to monitor a target area, detect human bodies, and automatically adjust the transmission interval of wireless signals according to the number of people present. [Means for solving the problem]

[0007] A first aspect of the present disclosure is a system including a sensor that detects information about the number of people in a target area by monitoring, and a controller that acquires information from the sensor. a setting device, a wireless controller that receives information on the wireless signal strength from the controlled object and transmits it to the controller; Equipped with the setting device has a function of transmitting to the controller first setting information associating information about the number of people with a wireless transmission interval and second setting information associating wireless signal strength with a wireless transmission interval; The controller is a process for acquiring wireless signal strength information from the wireless controller, a process for acquiring number of people information from the sensor when acquiring the wireless signal strength information, a process for associating the acquired wireless signal strength information with the acquired number of people information and storing the information as third setting information, a process for acquiring first setting information and second setting information from the setting device, a process for associating the second setting information with the third setting information and acquiring fourth setting information that associates the number of people information with a wireless transmission interval, and Radio transmission interval The more people there are, Preferably, the wireless control system is configured to control the shortening.

[0008] A second aspect of the present disclosure is a device that includes a sensor function and a controller function, and detects the number of people in a target area by monitoring using the sensor function, and based on the number of people information, The lighting wireless signal periodically transmitted by the wireless controller Radio transmission interval The more people there are, Preferably, the controller is a multi-controller configured to control the length of the battery to be shorter. [Effects of the Invention]

[0009] According to the first and second aspects of the present disclosure, it is possible to predict changes in the radio environment that may occur due to the influence of the human body, and to optimize the control of radio signals accordingly. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a block diagram showing a system configuration according to a first embodiment of the present disclosure. [Figure 2] 2 is a plan view showing a detection range of the image sensor 3 according to the first embodiment of the present disclosure. FIG. [Figure 3] FIG. 1 is a plan view showing an arrangement of lighting fixtures according to a first embodiment of the present disclosure. [Figure 4]FIG. 2 is a block diagram showing the internal configuration of each device according to the first embodiment of the present disclosure. [Figure 5] 1 is a table showing setting examples according to the first embodiment of the present disclosure. [Figure 6] 4 is a flowchart illustrating a method for determining a wireless communication interval according to the first embodiment of the present disclosure. [Figure 7] FIG. 10 is a block diagram illustrating a system configuration according to a second embodiment of the present disclosure. [Figure 8] FIG. 10 is a block diagram showing a system configuration according to a third embodiment of the present disclosure. [Figure 9] FIG. 10 is a block diagram showing a system configuration according to a fourth embodiment of the present disclosure. [Figure 10] FIG. 10 is a block diagram showing a system configuration according to a fifth embodiment of the present disclosure. [Figure 11] 13 is a table showing setting examples according to the fifth embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0011] Embodiment 1 1 is a block diagram showing a system configuration according to the first embodiment of the present disclosure. The system includes a controller 1, a lighting fixture 2, an image sensor 3, an illuminance sensor 4, a wall switch 5, a wireless controller 6, and a setting device 7. The controller 1 is connected to the image sensor 3, the illuminance sensor 4, the wall switch 5, and the wireless controller by wires.

[0012] Controller 1 is installed in a lighting control panel or on the ceiling and collects information from connected terminal devices and controls lighting fixtures 2. For example, it controls the ON / OFF, dimming rate, and color temperature of lighting fixtures 2 based on input information acquired from each connected terminal device and setting information previously stored in controller 1. In this embodiment, wireless controller 6 transmits control commands received from controller 1 to lighting fixtures 2 via wireless communication.

[0013] The lighting fixtures 2 transmit and receive information to and from the wireless controller 6 via wireless communication. For example, the lighting state can be changed by receiving control commands for ON / OFF, dimming rate, and color temperature. In this embodiment, specific low-power radio communication is used as an example of wireless communication means. Note that this communication may also be performed directly by a lighting fixture or LED drive power supply device equipped with a control unit that converts received control data and transmits it to an LED power supply or the like.

[0014] This embodiment may also include lighting fixtures 2 that are connected to the controller 1 via wired communication and can operate by receiving control commands directly from the controller 1. If there is a mixture of areas that can be operated via wireless communication and areas that can only use wired communication, the system may include lighting fixtures 2 that are compatible with both wireless communication and wired communication.

[0015] The image sensor 3 is typically installed on the ceiling and acquires image data using its onboard camera to determine the presence of a human body within the target area. Unlike pyroelectric sensors, which only detect the movement of heat sources, this sensor detects when a human body enters, moves, stays, or passes through the target area, transmitting only the necessary information to the controller 1. The controller 1, upon receiving information from the image sensor 3, controls the ON / OFF, dimming rate, and color temperature of the lighting fixtures 2 associated with the target area of ​​the image sensor 3 that received the detection information. For example, lighting control may involve presetting target dimming rates for when a person is staying or moving, and adjusting the lighting conditions according to the movement of people within the target area. In this case, for example, lighting fixtures 2 may be turned on at a minimum brightness that allows walking while moving, and dimmed to a brightness that allows people to work while staying. The image sensor 3 also has a function to count the number of people in the target area using a proprietary algorithm and notify the controller 1 of the number of people. The controller 1, upon receiving the data, sends control commands to the lighting fixtures 2 to adjust the lighting conditions according to the number of people.

[0016] It is desirable that information on people's movement, stay, and passage resulting from human body detection be spontaneously transmitted from the image sensor 3 to the controller 1 each time a change occurs. The number of people information may be spontaneously notified from the image sensor 3 each time a change occurs, or the controller 1 may periodically transmit a monitor signal according to a preset monitor interval, and the image sensor 3 may respond to notify. Furthermore, although an embodiment including an image sensor will be described in this disclosure, sensors other than an image sensor may be used as long as they can detect number of people information.

[0017] Illuminance sensor 4 is typically installed on the ceiling and detects reflected light from the desk top, floor, or other surfaces in the target area. It measures the relative illuminance value by converting the amount of input light into an electrical signal and sends this illuminance value data to controller 1. Controller 1 compares the received illuminance value data with a preset target illuminance value and sends dimming commands to lighting fixtures 2 so that the illuminance value approaches the target illuminance value. This illuminance sensor function may also be realized by detecting the brightness of the target area using image detection by image sensor 3 and calculating the relative illuminance from a reference illuminance.

[0018] Wall switch 5 is installed on a wall within reach of a general user and starts control of lighting fixture 2. By pressing wall switch 5, a user can control ON / OFF, dimming rate, and color temperature in units of a preset address number or group number of lighting fixture 2, or control a combination of control patterns of ON / OFF state, dimming rate, and color temperature for multiple groups.

[0019] The wireless controller 6 converts control commands for lighting fixtures 2 received from the controller 1 into wireless signals and transmits them to lighting fixtures 2 equipped with wireless communication. The wireless signals from the wireless controller 6 may control lighting fixtures 2 individually or in groups. Lighting fixtures 2 corresponding to the individual address or group number included in the destination data of the wireless signal change the state of their light sources, such as LEDs, in response to the received control commands for ON / OFF, dimming rate, and color temperature. The wireless controller 6 also has a function to monitor the state of each lighting fixture 2 and the reception strength of wireless communication, and notify the controller 1 of each data.

[0020] The setting device 7 performs various settings related to the operation of each of the terminal devices described above. The setting device 7 and each terminal device may send and receive information directly via infrared communication or the like, or may be connected via a wireless or wired communication line. Specifically, the setting device 7 is a wireless remote control, a personal computer, a mobile terminal, etc.

[0021] In the system of this embodiment, all devices except the lighting fixtures 2 are connected by wired communication, but some or all of the terminal devices may be configured to have wireless communication capabilities and be able to communicate with the wireless controller 6.

[0022] FIG. 2 is a plan view showing the detection range of image sensor 3 according to the first embodiment of the present disclosure. The image shows an image captured by image sensor 3 mounted on the ceiling, directed toward the floor using its onboard camera. The detection range is a 7.2-meter square floor surface centered on image sensor 3. Each block 12 is a 0.9-meter square, and the detection range is divided into 64 blocks with eight columns per side. The presence of a person is determined for each block 12, and the entire block is divided into four areas, each with 16 blocks. Information about the presence of people in each area is transmitted to controller 1. Based on the received information, controller 1 pre-stores the correspondence between the four target areas and the individual addresses or group numbers of lighting fixtures 2. Depending on the presence or absence status of people in the target area, the lighting status of lighting fixtures 2 with the corresponding individual addresses or group numbers is changed.

[0023] The imaging range of the camera mounted on the image sensor 3 of this embodiment may be optionally narrowed to a specific detection range. Alternatively, a high-performance image sensor may be used, with a detection range of a 7.2-meter square floor surface, dividing the detection range into 256 blocks with 16 rows per side to detect human bodies. Because the imaging range of the camera varies depending on the distance between the image sensor 3 and the imaging surface, the initial installation height may be set when installing the system, allowing the detection range to be adjusted, or the length of one side of the detection range may be arbitrarily set to 6.4 meters, 7.2 meters, 9.0 meters, etc., to change the detection range. The position of the object detected by the image sensor 3 may be selected according to the operation, such as the floor, desk, or head height of a seated person. Furthermore, the combination of blocks included in each area, or blocks for which detection is prohibited, may be set using the setting device 7.

[0024] FIG. 3 is a plan view showing the arrangement of lighting fixtures according to the first embodiment of the present disclosure. In the example of FIG. 3, four lighting fixtures 2 are installed in each of four areas divided by the image sensor 3. In this case, by linking the four lighting fixtures 2 in each area with the target area number and setting them as the same group number, it becomes possible to control the lighting fixtures 2, for example, by turning on the four lighting fixtures 2 when a human body is detected in even one of the 16 blocks in the target area. If the performance of the image sensor 3 allows for a large number of areas to be divided, high-precision control may be achieved by linking one lighting fixture to each area, for example.

[0025] Two examples of human body detection methods within a target area are presented below. The first method determines the current number of people based on the total number of blocks that detect human bodies. In the example shown in Figure 2, up to 64 people are detected from a total of 64 blocks. The second method uses a proprietary algorithm to detect a single person across multiple adjacent blocks that simultaneously detect a human presence. For example, an algorithm could automatically calculate the number of blocks corresponding to the size of a human body based on the preset installation height and detection range of the image sensor 3. This allows for a more realistic calculation of the number of people when adjacent blocks detect a human body, thereby improving the accuracy of human body detection. Using the above method, the image sensor 3 not only controls the status of the lighting fixtures 2 according to the presence or absence information for each area, but also simultaneously notifies the controller 1 of the number of people present within the target area. The notified number of people can be the total number of people in multiple areas within the image sensor 3's detection range, or the number of people in each divided area.

[0026] Depending on the shape, the wireless controller 6 may be installed on the ceiling or on a wall. In either case, it is desirable to install it in a location where there are no objects blocking the radio signal between it and the lighting fixtures 2 with which it communicates wirelessly. The wireless controller 6 in FIG. 3 is installed on the ceiling, and there are no objects other than the image sensor 3 that could act as obstructions. It is also installed near the center of the target area so that the wireless signal reaches the multiple target lighting fixtures 2 relatively evenly. In this embodiment, an example is shown in which the detection area of ​​the image sensor 3 is approximately the same as the range in which the lighting fixtures 2 targeted by the wireless controller 6 are installed. However, there are also cases in which the range in which the lighting fixtures 2 are installed is wider, or conversely, there are cases in which the detection range of the image sensor 3 is set wider.

[0027] Wireless signals are transmitted from the wireless controller 6 to multiple lighting fixtures 2 using a simultaneous broadcast method. When controlling lighting fixtures 2 as a group or as an individual lighting fixture, the lighting fixture 2 first determines whether the destination information in the wireless signal it receives corresponds to itself. If it does not, it ignores the control signal; if it does, it changes its lighting state according to the control command. For this reason, it is possible to set an address number or group number in each lighting fixture 2 in advance using the setting device 7. Alternatively, a control method without address numbers or group numbers is also possible, in which the lighting fixture is linked to the wireless controller 6 by the wireless frequency band it uses, and only executes all control commands in the corresponding wireless frequency band.

[0028] We will now explain how this system transmits wireless signals. Wireless signals are transmitted periodically from the wireless controller 6 to the lighting fixtures 2. The transmission interval is set to, for example, 0.5 seconds. This is to account for the possibility that the environment in which this system is installed may temporarily block the wireless signal from the wireless controller 6 to the lighting fixtures 2, or that the wireless signal may collide with another wireless signal and not reach the lighting fixtures 2.

[0029] This transmission method has two purposes. The first purpose is to quickly restore control of the lighting system if it fails to control it. By periodically sending wireless signals, if the wireless signal is not received and the status of a lighting fixture 2 does not change, the lighting status of that lighting fixture 2 can be controlled by a subsequently transmitted wireless signal. For example, if some of the multiple lighting fixtures 2 are unable to receive a signal, users may notice that the lighting status of only those lighting fixtures 2 has not changed, but this impact can be minimized by controlling the lighting system normally after 0.5 seconds.

[0030] The second objective is to quickly restore the lighting state when the lighting fixture 2 is switched from an OFF state to an ON state. In this system, the driving power supply for the lighting fixture 2 is often connected to a power supply system separate from the controller 1 or wireless controller 6 in the system. In other words, even if the dimming and color temperature control is performed by this system, it is assumed that the lighting fixture 2 is turned on or off using a separate wall switch 5 or a breaker in a distribution board. Therefore, when the lighting fixture 2 is turned on, the dimming rate and color temperature information received from the wireless controller 6 before the lighting fixture 2 was last turned off may not be stored. In this case, the previous state cannot be restored unless a wireless signal is received again from the wireless controller 6. Therefore, by periodically transmitting a wireless signal from the wireless controller 6, the lighting fixture 2 is restored to the previous lighting state after it is turned on. This disclosure focuses on the first objective.

[0031] When a wireless signal is transmitted from the wireless controller 6 to a lighting fixture 2, the wireless communication quality may be degraded depending on the environment within the target area, and the wireless signal may not reach the lighting fixture 2. Potential interference factors in the installation space of this system include, for example, in an office, radio wave reflections caused by desks, chairs, or shelves installed in the room, and radio wave shielding caused by metal objects. Therefore, during a preliminary survey before installing this system, the administrator may measure wireless communication quality when the room is empty or in an operational state with desks, chairs, or shelves installed as described above. Measurements may be performed using dedicated measurement tools, but they may also be performed by temporarily installing the wireless controller 6 or lighting fixture 2 of this system to confirm actual system operation, or by measuring the radio wave strength when the lighting fixture 2 receives a wireless signal to confirm that it meets certain standards. This preliminary measurement allows for an understanding of trends in wireless communication quality.

[0032] However, it is difficult to create an environment equivalent to that during actual operation during pre-measurement. This is because human bodies are the primary cause of wireless communication interference during operation. In particular, during actual operation, multiple workers may move, pass through, or stay in the room, and the environmental changes become more pronounced as the number of people increases. Because human bodies generally absorb radio waves, for example, when many people are seated at desks in an office or walking around, radio wave absorption and blockage can significantly degrade wireless communication quality. Furthermore, the greater the number of people, the more difficult it becomes for wireless signals to reach the lighting fixtures 2 from the wireless controller 6, which can lead to delays in changes in lighting conditions. Therefore, this disclosure presents a method for achieving optimal wireless communication by adjusting the transmission interval of wireless signals emitted by the wireless controller 6 based on information on the number of people in the target area detected by the image sensor 3.

[0033] In this disclosure, wireless communication is not necessarily better the more frequently signals are transmitted. First, excessive wireless signals can affect communication in other wireless systems. Furthermore, an increase in the number of simultaneously transmitted wireless signals can lead to signal collisions within the system, potentially making it impossible to control the lighting fixture 2. Therefore, in environments with good wireless communication quality, it is desirable to minimize the number of transmitted wireless signals. Therefore, when the number of people detected by the image sensor 3 is small, the wireless communication interval is lengthened as much as possible to reduce the number of wireless signals. When the number of people detected is large, a function is provided to shorten the wireless communication interval to ensure quality. When the number of people present is small and the wireless communication quality is good, events in which the lighting fixture 2 is not controlled or control delays are unlikely to occur, so performance can be satisfied even with a long wireless communication interval. As the number of people increases, events in which the lighting fixture 2 is not controlled or control delays become more likely to occur, so the wireless communication interval is shortened. This allows for even if a signal cannot be received, the control delay can be minimized by supplementing it with continuously transmitted wireless signals, to the point where the delay is imperceptible to the user.

[0034] FIG. 4 is a block diagram showing the internal configuration of each device according to the first embodiment of the present disclosure. The controller 1 has an infrared communication unit 14 for communicating with the setting device 7. Information received by the infrared communication unit 14 is transmitted to the calculation unit 16. The calculation unit 16 is connected to an upper communication unit 18 for communicating with a higher-level system, a storage unit 20 in which various setting contents are stored, and a date and time information management unit 22 for executing a schedule control function. The calculation unit 16 exchanges information with these units and performs main processing for communication and lighting control. Information is then transmitted from the calculation unit 16 to a wired communication unit 24, which then communicates with terminal devices such as the image sensor 3 and the wireless controller 6. Note that if the setting device 7 is connected via a wired communication line, the infrared communication unit may be unnecessary.

[0035] The image sensor 3 has a wired communication unit 26 for communicating with the controller 1. Information received by the wired communication unit 26 is transmitted to the calculation unit 28. The calculation unit 28 is connected to a memory unit 30 in which various setting contents are stored and an infrared communication unit 32 for communicating with the setting device 7. The image sensor 3 also has an image detection unit 34 that captures images of the target area using a camera. The image detection unit 34 is connected to an image analysis unit 36. The image analysis unit 36 ​​analyzes the detected image and calculates information on the presence or absence of people and the number of people using a unique algorithm. The information calculated by the image analysis unit 36 ​​is transmitted to the calculation unit 28. The calculation unit 28 exchanges information with the memory unit 30, the infrared communication unit 32, and the image analysis unit 36, and performs main processing for communication and lighting control. The information is then transmitted from the calculation unit 28 to the wired communication unit 26, which then communicates with the controller 1.

[0036] The wireless controller 6 has a wired communication unit 38 for communicating with the controller 1. Information received by the wired communication unit 38 is transmitted to the calculation unit 40. An infrared communication unit 42 for communicating with the setting device 7 and a memory unit 44 in which various setting contents are stored are connected to the calculation unit 40. The calculation unit 40 exchanges information with these units and performs the main processing for communication and lighting control. The information is then transmitted from the calculation unit 40 to the wireless communication unit 46, which then transmits a wireless signal to the lighting fixtures 2 with wireless communication capabilities. If the setting device 7 is connected via a wired communication line, the infrared communication unit 42 may be unnecessary.

[0037] The lighting fixture 2 has a wireless communication unit 48 that transmits and receives wireless signals to and from the wireless controller 6. Information received by the wireless communication unit 48 is transmitted to the calculation unit 50. The calculation unit 50 is connected to a memory unit 52 that stores various setting values ​​and an infrared communication unit 54 that communicates with the setting device 7. The calculation unit 50 exchanges information with these units and performs the main processing for communication and lighting control. The calculation unit 50 transmits control command information received from the wireless controller 6 to the lighting control unit 56. The lighting control unit 56 controls the lighting unit 58 based on the control command information. The lighting unit 58 is mainly composed of light sources such as LEDs. Although not shown, the lighting fixture 2 has a separate power supply unit, which can be turned off to turn off the lighting fixture 2 itself. If the setting device 7 is connected via a wired communication line, the infrared communication unit 54 is not necessary. However, even in this case, it is desirable to install an infrared communication unit to set an address or group number in the ceiling-mounted lighting fixture 2.

[0038] A method for determining a wireless communication interval in the first embodiment will be described using the configuration of each unit listed in FIG. 4. First, image data is acquired by capturing an image using a camera included in the image detection unit 34 of the image sensor 3. The image analysis unit 36 ​​calculates the number of people currently present in the target area based on the image data acquired by the image detection unit 34. The calculated number of people information is transmitted to the wired communication unit 26 via the calculation unit 28, and then transmitted to the controller 1. At this time, the wired communication unit 26 may wait for a monitor signal from the controller 1 and transmit information in response to the monitor signal upon receiving it. The controller 1 transmits the number of people information acquired from the wired communication unit 24 to the calculation unit 16. The calculation unit 16 references the wireless communication interval corresponding to the acquired number of people from a database previously stored in the storage unit 20. The controller 1 transmits the referenced data of the wireless communication interval to the wireless controller 6 via the wired communication unit 24. The wireless controller 6 acquires the data of the wireless communication interval via the wired communication unit 38 and stores it in the storage unit 44. Based on the acquired wireless communication interval data, wireless controller 6 determines the interval of wireless communications to be periodically transmitted to control lighting fixtures 2, and transmits a lighting wireless signal from wireless communication unit 46. In response to this, lighting fixtures 2 that have received the wireless signal from wireless communication unit 46 change the lighting state of lighting unit 58 in accordance with the control command. Alternatively, the number of people information may be transmitted directly from controller 1 to wireless controller 6, and the wireless communication interval may be referenced from a database stored in memory unit 44 in advance, and reflected in the wireless communication interval transmitted by wireless controller 6.

[0039] Furthermore, in this embodiment, wireless communication may be optimized using machine learning. First, the controller 1 learns the acquired information and a data set of its interrelationships. The acquired information includes, for example, the number of people information and address information of the detection range detected by the image sensor 3, the wireless reception strength acquired by the wireless controller 6, and calendar information provided by the date and time information management unit 22 of the controller 1. The data set of interrelationships includes, for example, bias in the calendar information or address information of the number of people information. Then, by controlling the target based on the learning results, the accuracy and reliability of wireless communication can be improved, and at the same time, wireless communication can be optimized and stabilized quickly.

[0040] FIG. 5 is a table showing a setting example according to the first embodiment of the present disclosure. The memory unit 20 of the controller 1 or the memory unit 44 of the wireless controller 6 stores wireless transmission intervals corresponding to each range of the number of people to be detected. In the example of FIG. 5, the wireless transmission intervals corresponding to the number of people to be detected are listed. Here, the intervals are set to 1.5 seconds when there is no person present, i.e., when there are zero people to be detected, 1.0 second when there are one to four people, 0.5 seconds when there are five to 20 people, and 0.25 seconds when there are 21 or more people. These intervals may be stored as factory default settings in each device, and can be arbitrarily changed by an administrator using the setting device 7. This is merely an example, and the combination of the range of people to be detected and the wireless transmission interval is not limited to this.

[0041] 6 is a flowchart showing a method for determining a wireless communication interval according to the first embodiment of the present disclosure. Hereinafter, a method for determining a wireless communication interval by the calculation unit 16 of the controller 1 according to the present embodiment will be described with reference to FIG.

[0042] First, the calculation unit 16 acquires information about the number of people in the target area in step 100. Specifically, the calculation unit 16 acquires the number of people information detected by the image sensor 3 via the wired communication unit 24. If the information has been acquired, the process proceeds to step 102.

[0043] In step 102, it is determined whether the acquired number of people is 0. If the number is 0, the process proceeds to step 104, where a wireless communication interval corresponding to 0 people is transmitted and the process ends. If the number is not 0, the process proceeds to step 106.

[0044] In step 106, it is determined whether the acquired number of people is between 1 and 4. If it is between 1 and 4, the process proceeds to step 108, where a wireless communication interval corresponding to 1 to 4 people is transmitted and the process ends. If it is not between 1 and 4 people, the process proceeds to step 110.

[0045] In step 110, it is determined whether the acquired number of people is between 5 and 20. If it is between 5 and 20, the process proceeds to step 112, where a radio communication interval corresponding to 5 to 20 people is transmitted, and the process ends. If it is not between 5 and 20, the process proceeds to step 114, where a radio communication interval corresponding to 21 or more people is transmitted, and the process ends.

[0046] Embodiment 2 FIG. 7 is a block diagram showing a system configuration according to a second embodiment of the present disclosure. In this embodiment, the controller 1 and each terminal device are equipped with a wireless communication function, so all information is transmitted wirelessly. Furthermore, the controller 1 can send wireless signals directly to the lighting fixtures 2, eliminating the need for the wireless controller 6. The basic operation is the same as in the first embodiment, except that the control commands sent by the controller 1 to the lighting fixtures 2 are sent without going through the wireless controller 6 and information is communicated from each terminal device to the controller 1 wirelessly. In other words, the controller 1 optimizes the wireless communication interval by notifying the controller 1 of the number of people detected by the image sensor 3 via a wireless signal.

[0047] Furthermore, in this embodiment, the transmission interval when each terminal device notifies the controller 1 of information is also optimized based on the number of people information. For example, consider the case where the image sensor 3 detects the presence of a human body when no people are present in the target area, or the case where a user presses the wall switch 5 when the lights are off. In this case, it is necessary to quickly notify the terminal device of information to the controller 1 and transmit a control command from the controller 1 to the lighting fixture 2. Therefore, when a terminal device such as the image sensor 3 or the wall switch 5 notifies the controller 1 of information, the ACK confirmation function is used to confirm whether the controller 1 successfully received the data. The ACK confirmation function has a mechanism for retransmitting a wireless signal if the ACK confirmation function fails, and the retransmission interval is determined based on the number of people information detected by the image sensor 3. Furthermore, if the ACK function confirmation mechanism is not used and the terminal device always transmits information to the controller 1 multiple times, the transmission interval is reflected in the ACK function confirmation mechanism. Therefore, in an environment with few people and good wireless communication quality, the first wireless signal is likely to arrive. Therefore, the transmission interval is set long to prevent problems such as delays in the main control command and interference with surrounding systems. In an environment with poor wireless communication quality, there is a high possibility that the first wireless signal will not arrive, so the aim is to set a short transmission interval in order to ensure that the second wireless signal arrives as quickly as possible and minimize operational delays.

[0048] The set value of the wireless transmission interval used at this time may be the same as the transmission interval of the wireless signal transmitted by the controller 1, or a different set value may be used for the terminal device.

[0049] Embodiment 3 FIG. 8 is a block diagram showing a system configuration according to a third embodiment of the present disclosure. In this embodiment, a multi-controller 8 is used instead of the controller 1 of the second embodiment. The multi-controller 8 is equipped with, for example, an image sensor function in addition to the functions shown for the controller 1 in the second embodiment. That is, the multi-controller 8 is equipped with the function of detecting the presence or absence of people in the target area and the function of detecting the number of people using the image sensor 3, eliminating the need for the image sensor 3 as a terminal device. In this configuration, control commands based on the presence or absence information and the number of people information detected by the multi-controller 8 can be transmitted directly to the lighting fixtures 2. Furthermore, the transmission interval of the wireless signals transmitted by the multi-controller 8 can be changed based on the acquired number of people information. Furthermore, the image detection function installed in the multi-controller 8 can also function as the illuminance sensor 4, thereby enabling automatic control of the lighting fixtures 2 in response to changes in brightness.

[0050] The method of determining and setting the transmission interval is the same as that described in embodiment 1. Although only lighting fixture 2 is shown as a terminal device in Fig. 7, other terminal devices such as illuminance sensor 4 and wall switch 5 may also be connected, and communication with multi-controller 8 may be via wireless or wired communication.

[0051] Embodiment 4 FIG. 9 is a block diagram showing a system configuration according to a fourth embodiment of the present disclosure. In this embodiment, the system configuration and operation below the controller 1 are the same as those in the first embodiment. In this embodiment, a gateway device 9 is connected to the upper side of the controller 1. The gateway device 9 has a role of changing the communication method between the lighting system and other equipment. For example, it can convert the communication method on the lighting system to a communication method with other equipment that includes an open standard such as BACnet. A central management device 10 is connected to the gateway device 9.

[0052] In addition to the contents that can be realized by the system of embodiment 1, this embodiment aims to notify the central management device 10, which is another facility, of the number of people information and lighting status information detected by the image sensor 3. This allows the number of people information and the like notified from this system to be utilized, for example, by an air conditioning system or a security system. Conversely, the central management device 10 can also perform settings, operations, and status monitoring related to lighting control. Furthermore, various setting items set by the setting device 7 and setting data indicating the relationship between the number of people information and the wireless transmission interval can also be set from the central management device 10, which is a higher-level system.

[0053] Fifth embodiment 10 is a block diagram showing a system configuration according to a fifth embodiment of the present disclosure. In this embodiment, the lighting fixtures in the configuration of the first embodiment are changed to lighting fixtures 11 that have a function for measuring wireless reception strength, and accordingly, the method for determining the wireless transmission interval is different.

[0054] The method for determining the wireless transmission interval in this embodiment will be described. First, an administrator estimates the wireless communication quality based on the reception strength in the target area and sets a wireless transmission interval appropriate to that estimate. Next, a test mode is established, which operates during initial installation or normal operation. In test mode, a monitor signal is first transmitted from the wireless controller 6 with wireless communication capabilities to the lighting fixtures 11 that receive the wireless signal. The lighting fixtures 11 that receive the monitor signal return a response signal to the wireless controller 6. According to the wireless communication specifications of this system, when returning a wireless communication signal in response to the monitor signal, the wireless reception strength at the time of receiving the monitor signal is added to the response data. Upon receiving the response data with the wireless reception strength added, the wireless controller 6 stores this value as the wireless reception strength in the current wireless communication environment. The wireless controller 6 also simultaneously acquires the number of people detected in the target area from the image sensor 3 and stores the number of people present in the target area in association with the reception strength at that time. By repeating this process, the wireless controller 6 accumulates reception strength data corresponding to changes in the number of people present in the target area. By linking the accumulated data of reception strength corresponding to this number of people with the wireless transmission interval corresponding to the preset reception strength, it is possible to set the wireless transmission interval corresponding to the number of people. During normal operation, the number of people in the target area is detected and wireless communication is controlled using the wireless transmission interval corresponding to that number of people.

[0055] Furthermore, in systems where terminal devices other than the lighting fixtures 11 are equipped with wireless communication functions, the wireless controller 6 may use the wireless reception strength received from each terminal device during test mode. In other words, the wireless reception strength received from each terminal device may be combined with the wireless reception strength obtained from the lighting fixtures 11 described above and used for this function. This makes it easier to determine an appropriate wireless transmission interval by using the wireless reception strength, even if the optimal wireless transmission interval cannot be determined from the number of people information. Note that, because increased frequency of wireless communication could cause problems such as delays in main control commands and interference with surrounding systems, the data received from each terminal device is only used during test mode.

[0056] The test mode may be executed manually using the setting device 7 or the like, or may be executed periodically, for example, once a day, using a schedule control function of the controller 1 or the like. Furthermore, since the test mode requires multiple samplings as the number of people detected changes, it is desirable to continue the test mode for a certain period of time. Furthermore, by periodically executing the test mode, it is possible to follow any environmental changes other than the number of people information, and operate at an optimal wireless communication interval as a countermeasure against degradation of wireless communication quality due to the presence of people.

[0057] The wireless controller 6 of this embodiment may be the controller 1 or the multi-controller 8 that also has a wireless communication function.

[0058] If multiple lighting fixtures 11 are set, the reception strength to be stored is determined by, for example, calculating the average value of the multiple pieces of wireless reception strength data attached to the data returned from the multiple lighting fixtures 11, or by using the minimum value of the multiple pieces of data. Also, if the wireless reception strength for the same number of detected people differs when data is received multiple times in test mode, the reception strength to be stored is determined by, for example, overwriting the data with the most recent wireless reception strength data or calculating the average value.

[0059] In the determination method of the first embodiment, it was necessary to set the wireless transmission interval according to the number of visitors. However, although it is possible to estimate the tendency of changes in wireless communication quality due to changes in the number of visitors, wireless communication quality differs depending on factors other than the number of people present, so it is necessary to take measures according to the installation environment. In this embodiment, when measuring wireless communication quality, the reception strength of wireless communication devices in the environment where the system is installed is used as is, which can be said to be more appropriate.

[0060] FIG. 11 is a table showing a setting example according to the fifth embodiment of the present disclosure. In the setting example of FIG. 11, the wireless transmission interval and the reception strength are set in advance as the desired wireless communication environment. In test mode, the wireless reception strength returned by multiple lighting fixtures 11 is measured, and the reception strength is determined using the average or minimum value, etc. In addition, the number of people detected in the target area is stored based on information notified by the image sensor 3. In the setting example of FIG. 11, the measurement results of the wireless reception strength and the number of people detected indicate that the wireless reception strength reached -45 dB or higher when 0 to 7 people were detected. Since the wireless transmission interval is set to 1.5 seconds when the strength is -45 dB or higher, the wireless transmission interval is set to 1.5 seconds when the number of people detected is 0 to 7 in the subsequent practical use.

[0061] Additionally, the setting example in Figure 11 shows that the wireless reception strength fell within the range of -60 dB to -45 dB when 8 to 14 people were detected. Because the wireless transmission interval was set to 1.0 second for this range in advance, when the number of people detected is 8 to 14 during subsequent use, the wireless transmission interval will be set to 1.0 second. Similarly, the wireless reception strength fell within the range of -75 dB to -60 dB when 15 to 23 people were detected, so the preset wireless transmission interval of 0.5 seconds was applied for this number of people. Furthermore, the wireless reception strength fell below -75 dB when 24 or more people were detected, so the preset wireless transmission interval of 0.25 seconds was applied for this number of people.

[0062] The setting table in Figure 11 is an example, and the range of wireless reception strength to be set and the number to be registered are not limited to this, and any combination of setting values ​​can be used. Also, regarding the number of people to be detected, since it is not possible to measure patterns for all numbers of people during test mode, any method can be used to determine the setting range from several measured number patterns, and this can be achieved by saving all changes in the number of people one by one in a database. [Explanation of symbols]

[0063] 1 Controller, 2 Lighting fixture, 3 Image sensor, 6 Wireless controller, 7 Setting device, 8 Multi-controller, 11 Lighting fixture

Claims

1. A sensor that detects the number of people in a target area by monitoring; a controller that acquires information from the sensor; A setting device, a wireless controller that receives information on wireless signal strength from a controlled object and transmits the information to said controller; Equipped with The setting device is a function of transmitting to the controller first setting information associating information about the number of people with a wireless transmission interval and second setting information associating wireless signal strength with a wireless transmission interval, The controller acquiring information on wireless signal strength from the wireless controller; A process of acquiring number of people information from the sensor when acquiring the information on the wireless signal strength; a process of associating the acquired information on the wireless signal strength with the acquired information on the number of people and storing the information as third setting information; A process of acquiring the first setting information and the second setting information from the setting device; performing a process of associating the second setting information with the third setting information and acquiring fourth setting information that associates number-of-people information with a wireless transmission interval; Based on the first setting information and the fourth setting information, the wireless transmission interval of the lighting wireless signal periodically transmitted by the wireless controller is controlled so that the wireless transmission interval becomes shorter as the number of people increases. A wireless control system configured as follows:

2. A sensor that detects the number of people in a target area by monitoring; a controller that acquires information from the sensor; The controller A process of acquiring address information for each area obtained by dividing the target area based on the output of the sensor; performing a process of learning a tendency of fifth setting information in which the acquired number of people information and the acquired address information are associated; based on the number of people information, the wireless transmission interval of the lighting wireless signal periodically transmitted by the wireless controller is controlled so that the wireless transmission interval becomes shorter as the number of people increases; The wireless transmission interval is determined based on the learned result of the tendency of the fifth setting information. A wireless control system configured as follows:

3. The controller: the process of storing the third setting information includes a process of learning a trend of the third setting information, The process of acquiring the fourth setting information includes a process of acquiring the second setting information and the third setting information in association with each other. The wireless control system of claim 1 .

4. 4. The wireless control system according to claim 1, wherein the sensor is an image sensor.

5. A sensor that detects the number of people in a target area by monitoring; a controller that acquires information from the sensor; the controller is configured to control, based on the number-of-people information, a wireless transmission interval of the lighting wireless signal periodically transmitted by the wireless controller so that the wireless transmission interval becomes shorter as the number of people increases; The control target of the controller includes a lighting fixture. Wireless control system.

6. The sensor function detects the number of people in the target area through monitoring, a controller function for acquiring information from the sensor; The multi-controller is configured to control, based on the number of people information, the wireless transmission interval of the lighting wireless signal periodically transmitted by the wireless controller so that the wireless transmission interval becomes shorter as the number of people increases.

7. The multi-controller according to claim 6 , wherein the function of the sensor is a function of an image sensor.

Citation Information

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