WO2022110717A1 - Led设备组网方法、装置及设备 - Google Patents

Led设备组网方法、装置及设备 Download PDF

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Publication number
WO2022110717A1
WO2022110717A1 PCT/CN2021/096598 CN2021096598W WO2022110717A1 WO 2022110717 A1 WO2022110717 A1 WO 2022110717A1 CN 2021096598 W CN2021096598 W CN 2021096598W WO 2022110717 A1 WO2022110717 A1 WO 2022110717A1
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WIPO (PCT)
Prior art keywords
led device
initial
led
information
network
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PCT/CN2021/096598
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English (en)
French (fr)
Inventor
李荣锋
阮群芝
单晓明
岑竞湛
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广州易而达科技股份有限公司
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Publication of WO2022110717A1 publication Critical patent/WO2022110717A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/02Arrangements for optimising operational condition
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B45/00Circuit arrangements for operating light-emitting diodes [LED]
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B47/00Circuit arrangements for operating light sources in general, i.e. where the type of light source is not relevant
    • H05B47/10Controlling the light source
    • H05B47/175Controlling the light source by remote control
    • H05B47/19Controlling the light source by remote control via wireless transmission
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B20/00Energy efficient lighting technologies, e.g. halogen lamps or gas discharge lamps
    • Y02B20/30Semiconductor lamps, e.g. solid state lamps [SSL] light emitting diodes [LED] or organic LED [OLED]

Definitions

  • the present application relates to the technical field of light-emitting diode (Light-Emitting Diode, LED) equipment control, for example, to a method, device and equipment for networking of LED equipment.
  • LED Light-Emitting Diode
  • LED equipment has developed from a method of only controlling the switch state of lights to a method of adjustable and controllable light brightness, light color, and color temperature.
  • the control and regulation of LED equipment includes the following two schemes:
  • Wired control scheme connect the LED device and the adjustment button through the line, and realize the control of the LED device through the wired connection between the adjustment button and the LED device.
  • Wireless control scheme realize signal transmission through wireless means such as WiFi/Bluetooth/433 communication module, realize the connection between the control terminal and the LED device, and realize the control of the LED device.
  • the wireless control scheme is used to control multiple LED equipment. It is impossible to control multiple LED devices at the same time. At the same time, when the distribution distance of multiple LED devices is far away, multiple control sources need to be added to ensure that all LED devices are controlled. Therefore, it is difficult to control multiple LED devices at the same time; and when multiple control sources are used to control multiple LED devices, the access of multiple control sources to multiple LED devices is difficult. One by one operation is required, which makes the access operation of the LED device complicated and takes a lot of time.
  • the present application provides a method, device and equipment for networking of LED devices, so as to realize the rapid networking of multiple LED devices, which can effectively shorten the configuration time of networking.
  • a method for networking LED devices including:
  • the LED device is updated in response to an update request from the startup configurator.
  • an LED equipment networking device including:
  • an initialization module configured to initialize the LED device according to initial information in response to the LED device not being configured with the target wireless mesh network, and to communicate with the LED device according to the initial information after the LED device is initialized External LED devices form an initial wireless mesh network;
  • a publishing module configured to publish the status information of the LED device based on the initial wireless mesh network
  • a response module configured to update the LED device in response to an update request from the startup configurator.
  • LED device networking device including:
  • processors one or more processors
  • the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the above-mentioned LED device networking method.
  • FIG. 1 is a flowchart of a method for networking an LED device according to Embodiment 1 of the present application
  • FIG. 2 is a flowchart of a method for networking an LED device provided in Embodiment 2 of the present application;
  • FIG. 3 is a structural diagram of an LED equipment networking device provided in Embodiment 3 of the present application.
  • FIG. 4 is a structural diagram of an LED device networking device provided in Embodiment 4 of the present application.
  • FIG. 1 is a flow chart of a method for networking LED devices provided in Embodiment 1 of the application. This embodiment is applicable to the case of performing networking control on multiple LED devices, and the method can be performed by an LED device networking device. , including the following steps:
  • Step 110 confirm whether the LED device is configured with the target wireless mesh network when powered on.
  • the LED device may include an LED device body and a drive controller, the drive controller may be connected to the control device through wireless communication technology, and configured to control the action of the LED device body in response to a control command sent by the control device.
  • an LED device can be understood as one LED device among a plurality of LED devices for networking, and the LED device is only a synonym, and the type of the LED device is not limited, and the LED device can be an LED lamp. , LED displays or other types of LED devices, or even other controllable devices.
  • the wireless mesh network is a wireless network technology, which is a special form of the mobile Ad Hoc network. Its core is to let every node in the network send and receive signals, so that the problems of low scalability and poor transmission reliability that have always existed in ordinary wireless technology in the past can be solved.
  • a large number of terminal devices in the wireless mesh network can automatically form a mesh structure through wireless connections.
  • Each node in the wireless mesh network has an automatic routing function, and each node only communicates with adjacent nodes.
  • a wireless mesh network is a self-organizing and self-managing intelligent network that can build a flexible network without a backbone network.
  • a wireless mesh network consists of a shared network, interconnected sensors, mobile phones, and other related devices that can be interconnected.
  • distributed resource sharing allows the devices that make up the wireless mesh network to provide new resources and usage locations for grid computing.
  • the wireless mesh network is mainly composed of LED devices, and the required wireless communication network standard for the wireless mesh network may be WiFi, Bluetooth technology or Zigbee technology.
  • the LED device when the LED device is powered on, the LED device will judge its own network state to determine whether it is configured with the target network state.
  • the current working state of the LED device can be obtained and judged, or the data of the relevant data bits in the LED device can be compared and judged, or the current network parameters of the LED device can be compared with the initial network parameters to achieve the The network status of the LED device is judged, so as to determine whether the LED device is configured with the target wireless mesh network.
  • the way of judging whether the LED device is configured with the target wireless mesh network may also be a way of judging in other forms that meet the usage requirements in the embodiments of the present application.
  • Step 120 In response to the LED device not being configured with the target wireless mesh network, initialize the LED device according to the initial information, and form an initial wireless mesh network with LED devices outside the LED device according to the initial information after the LED device is initialized.
  • initializing the LED device according to the initial information includes initializing the network parameters of the LED device according to the initial information, and the network parameters of the LED device after initialization are modified to the network parameters included in the initial information, thereby realizing that the LED device runs at the initial stage. information under the network parameters set.
  • Multiple LED devices form an initial wireless mesh network according to the initial information to realize pre-networking of multiple LED devices, and multiple LED devices run under the same initial wireless mesh network to realize interconnection between multiple LED devices.
  • Step 130 Publish the status information of the LED device based on the initial wireless mesh network.
  • the LED device After the LED device is initialized in the aforementioned step 120, it runs under the initial wireless mesh network, which can realize interconnection with other LED devices, and multiple LED devices can transmit messages to each other. Multiple LED devices running under the same initial wireless mesh network can uniformly publish their own status information through the initial wireless mesh network. Status information of the LED device under.
  • the state information of the LED device may be information related to the LED device, such as the working state information of the LED device itself, hardware information, physical address information, and the like.
  • the status information of the LED device also includes a unicast address generated by the LED device under the initial information.
  • Step 140 Update the LED device in response to the update request from the startup configurator.
  • a plurality of LED devices are powered on to form an initial wireless mesh network through the foregoing steps.
  • a user terminal can directly access the initial wireless network composed of a plurality of LED devices.
  • the mesh network or through the gateway to perform relay access to the initial wireless mesh network, so as to realize the interconnection between the user terminal and multiple LED devices at the same time.
  • the user terminal broadcasts an update request for updating network parameters to the initial wireless mesh network through the startup configurator in the user terminal. Broadcast new network parameters in the wireless mesh network, complete the one-time update of the network parameters of multiple LED devices, and control the restart of the LED devices after updating the network parameters of the LED devices to make the new network parameters take effect, thus completing the multiple LED devices.
  • Network configuration
  • the LED device by confirming the network configuration status of the LED device when the LED device is powered on, it is judged whether the LED device is configured with the target wireless mesh network, so as to realize the judgment of whether the LED device is an unconfigured device, and then determine whether the LED device is an unconfigured device.
  • the LED device is initialized using the initial information, so that the unconfigured LED device runs under the initial wireless mesh network, realizing the interconnection of multiple unconfigured LED devices, and the user terminal can access the initial wireless mesh network.
  • the mesh network realizes the simultaneous configuration of multiple unconfigured LED devices at the same time, simplifies the configuration process of multiple unconfigured LED devices, avoids the tedious operation caused by connecting the unconfigured LED devices in sequence and configures them separately, and improves the configuration. efficiency and improved user experience.
  • Fig. 2 is a flow chart of a method for networking an LED device provided in Embodiment 2 of the present application. This embodiment is based on the foregoing embodiments to illustrate the networking process. The method includes the following steps:
  • Step 201 Acquire initial information and current networking information of the LED device.
  • the initial information mainly refers to the network parameters set by factory default, which are used to reset the initial network state of the LED device.
  • the initial information may be parameters such as an initial network key.
  • the parameter information included in the initial information is subject to the actual situation.
  • the initial information refers to the network parameters of the LED device running under the default initial wireless mesh network, including but not limited to the above-mentioned initial network key.
  • the networking information mainly refers to network parameters currently configured in the LED device.
  • the memory of the LED device can be directly read, so as to obtain the current network parameters of the LED device.
  • the manner of acquiring the current networking information of the LED device may also be an acquisition manner of other forms that meets the usage requirements in the embodiments of the present application.
  • Step 202 compare the networking information with the initial information; if the networking information is the same as the initial information, then determine that the LED device is not configured with the target wireless mesh network, and execute step 203; if the networking information is different from the initial information, determine the LED device Configure the target wireless mesh network and confirm that the networking is complete.
  • the target wireless mesh network refers to a non-default initial wireless mesh network.
  • the LED device by comparing the acquired current networking information of the LED device with the preset initial information, it is possible to determine the current network setting of the LED device, and to determine whether the LED device is configured as a non-default initial Information, that is, to determine whether the LED device is a device that needs to be configured with a network (a device that is not configured with a network).
  • the LED device After the configuration of the LED device is completed, the LED device will work in a target wireless mesh network with different network parameters from the default initial wireless mesh network.
  • the network parameters in this embodiment are the initial information, Network parameters in the networking information and target information.
  • the network parameters (networking information) set in the LED device are different from the network parameters (initial information) in the default state, it means that the network parameters of the LED device have been configured and changed, and the LED device is currently in the normal networking form, no need Network again.
  • the network parameters (network information) set in the LED device are the same as the network parameters (initial information) in the default state, it means that the network parameters of the LED device have not been modified or have been reset, which means that the LED device needs to be The network parameters are reconfigured.
  • the way to judge whether the LED device is not configured with the target wireless mesh network may also be that the network parameters of the LED device have not been set, that is, the networking information of the LED device is empty. , this situation should be excluded when confirming the network configuration status of the LED device.
  • Step 203 Initialize the LED device according to the initial information.
  • Step 204 after the LED device is initialized, make the initial information valid, and form an initial wireless mesh network with LED devices outside the LED device according to the valid initial information.
  • the LED device after confirming that the LED device is not configured with the target wireless mesh network, the LED device needs to be initialized according to the initial information, and the network parameters of the initialized LED device are changed to the network parameters included in the initial information, Thereby, the LED device can be run under the network parameters set by the initial information.
  • the networking among the multiple LED devices forms the initial wireless mesh network described in the embodiments of the present application, and realizes the interconnection between the multiple LED devices. data transfer between.
  • the initial information is an initial network key
  • step 203 includes:
  • Step 2031 Configure network parameters of the LED device according to the initial network key.
  • the current network parameters of the LED device are replaced with the initial network key, and the current network parameters of the LED device are changed, so that the LED device runs under the initial mesh network, thereby realizing the interconnection of multiple unconfigured LED devices.
  • Step 2032 Generate an initial unicast address according to the configured physical address of the LED device.
  • the LED device when the LED device operates in the initial wireless mesh network, the LED device generates a unicast address according to certain rules and based on a unique physical address, which can effectively avoid multiple LED devices in the initial wireless mesh network.
  • the unicast addresses are the same, the reliability of the networking of multiple LED devices is ensured, so that each unconfigured LED device is interconnected to the initial wireless mesh network.
  • the physical address may be directly used as a unicast address, or a uniform conversion rule may be used to convert the physical address into a unicast address.
  • the physical address is converted based on the physical address and combined with the current time to generate a unique unicast address, so as to avoid the situation that the unicast addresses of multiple LED devices are the same. It is guaranteed that there will be no unicast address conflict in the initial wireless mesh network.
  • Step 205 Publish the status information of the LED device based on the initial wireless mesh network.
  • the status information of the LED device may include a unicast address of the LED device and broadcast data including information about unconfigured networks.
  • the broadcast data including the unconfigured network information may be broadcast parameters defined when the LED device is in the initial wireless mesh network, and added to the broadcast data broadcasted to the outside.
  • the user terminal, server or gateway can learn that the LED device corresponding to the unicast address is in the unconfigured state from the broadcast data containing the unconfigured network information.
  • the user needs to define the network parameters of the LED device. is configured in the new target wireless mesh network.
  • Step 206 Acquire target information from the startup configurator in response to the update request from the startup configurator.
  • the user terminal accesses the initial wireless mesh network directly or through a gateway, server, etc., and obtains the unicast address including the LED device and the broadcast data including the unconfigured network information from the initial wireless mesh network
  • the user operates the user terminal to
  • the LED device reconfigures the network, and sends the target information set by the user to the LED device through the startup configurator in the user terminal.
  • the target network parameters are sent to all LED devices through the broadcast address, and the target unicast address is initially unicast through the LED.
  • the addresses are sent to the LED devices one by one, and the LED devices are configured according to the received target information, so that the distribution network information of the LED devices is updated to the target information set by the user.
  • Step 207 configure the LED device according to the target information.
  • the target information includes the target network key and the target unicast address
  • step 207 includes:
  • Step 2071 Set the unicast address of the LED device as the target unicast address.
  • Step 2072 Set the network parameters of the LED device according to the target network key.
  • Step 208 restart the LED device, so that the LED device runs under the target wireless mesh network.
  • Restarting the LED device can make the configured target information in the LED device take effect, make the LED device work under the target wireless mesh network limited by the target information, and complete the configuration of multiple unconfigured devices in one setting on the user terminal. configuration of the LED device.
  • the method further includes:
  • Step 209 verifying whether the networking of the LED devices is successful; if the networking of the LED devices fails, return to step 205 .
  • the way of judging whether the LED device is configured with the target wireless mesh network in step 110, for example, the current working status of the LED device can be obtained and judged, or the data of the relevant data bits in the LED device can be obtained. Comparing and judging, or comparing the current network parameters of the LED device with the initial network parameters, to judge the network status of the LED device, so as to determine whether the LED device is configured with the target wireless mesh network.
  • the way of judging whether the LED device is configured with the target wireless mesh network may also be other forms of judging ways that meet the usage requirements in the embodiments of the present application.
  • the determination of whether the LED device networking is successful can also be performed after step 207 is completed, to determine whether the network parameters of the LED device are normally configured, and then to determine whether the LED device networking is completed.
  • the startup configurator when adding a new LED device, if the newly added LED device is far away from the startup configurator, the startup configurator cannot directly complete data communication with the newly added LED device. Reset the networked LED device that is closer to the newly added LED device to the default state, so that the networked LED device runs on the same network as the newly added LED device after it is powered on (the newly added LED device After power-on, it runs under the same initial wireless mesh network as the initial wireless mesh network through the settings of steps 201-204.
  • the startup configurator can realize the interconnection with the newly added LED device and the reset LED device at the same time through the initial wireless mesh network composed of the reset LED device and the newly added LED device, and then connect to the initial wireless mesh network through the initial wireless mesh network.
  • the newly added LED device and the reset LED device are networked, so that the newly added LED device and the reset LED device are configured to run in the same target wireless mesh network, so as to realize the network connection to the startup configurator Network configuration of newly added LED devices outside the scope.
  • FIG. 3 is a structural diagram of an LED equipment networking device provided in Embodiment 3 of the present application, and the device may include the following modules:
  • the determining module 301 is configured to confirm whether the LED device is configured with the target wireless mesh network when powered on; the initialization module 302 is configured to initialize the LED device according to the initial information in response to the LED device not being configured with the target wireless mesh network, and After the LED device is initialized, an initial wireless mesh network is formed with the LED devices outside the LED device according to the initial information; the publishing module 303 is set to publish the status information of the LED device based on the initial wireless mesh network; the response module 304 is set to respond to the An update request to start the configurator updates the LED device.
  • the device also includes:
  • the verification module 305 is configured to verify whether the networking of the LED devices is successful; if the networking of the LED devices fails, it returns to execute the operation of publishing the status information of the LED devices based on the initial wireless mesh network.
  • the determination module 301 includes: a networking information acquisition unit, configured to acquire initial information and current networking information of the LED device; a comparison unit, configured to compare the networking information with the initial information; if the networking information is the same as the initial information, determine the LED The device is not configured with the target wireless mesh network; if the networking information is different from the initial information, it is determined that the LED device is configured with the target wireless mesh network.
  • the initialization module 302 includes: an initialization unit, set to initialize the LED device according to the initial information; a validating unit, set to make the initial information valid after the LED device is initialized, and form an initial wireless mesh with LED devices outside the LED device according to the valid initial information network.
  • the initial information is the initial network key; the initializing unit includes: an initializing subunit, which is set to configure the network parameters of the LED device according to the initial network key; the unicast address generating subunit is set to generate an initial Unicast address.
  • Status information of the LED device including the unicast address of the LED device and broadcast data containing information about the unconfigured network.
  • the response module 304 includes: an obtaining target information unit, configured to obtain target information from the startup configurator in response to an update request from the startup configurator; a configuration unit, configured to configure the LED device according to the target information; a restart unit, configured to restart the LED device to make the LED device run under the target wireless mesh network.
  • the target information includes the target network key and the target unicast address.
  • the configuration unit includes: a unicast address setting subunit, configured to set the unicast address of the LED device as the target unicast address; and a network key setting subunit, configured to set the network parameters of the LED device according to the target network key.
  • the LED device networking device provided in the embodiment of the present application can execute the LED device networking method provided in any embodiment of the present application, and has functional modules and effects corresponding to the execution method.
  • FIG. 4 is a structural diagram of a computer device according to Embodiment 4 of the present application.
  • the computer device includes a processor 410, a memory 420, an input device 430, and an output device 440;
  • the number can be one or more, and one processor 410 is taken as an example in FIG. 4; the processor 410, the memory 420, the input device 430 and the output device 440 in the computer equipment can be connected through a bus or other means, and in FIG. Take bus connection as an example.
  • the memory 420 can be configured to store software programs, computer-executable programs, and modules, such as program instructions/modules corresponding to the method for detecting key points of faces in the embodiments of the present application (for example, the determination module 301 , initialization module 302, release module 303, response module 304, verification module 305).
  • the processor 410 executes various functional applications and data processing of the computer device by running the software programs, instructions, and modules stored in the memory 420 , that is, to implement the above-mentioned LED device networking method.
  • the memory 420 may mainly include a storage program area and a storage data area, wherein the storage program area may store an operating system, an application program required for at least one function; the storage data area may store data created according to the use of the terminal, and the like. Additionally, memory 420 may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, or other non-volatile solid-state storage device. In some examples, memory 420 may include memory located remotely from processor 410, which may be connected to a computer device through a network. Examples of such networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.
  • the input device 430 may be configured to receive incoming update requests and target information, and to generate key signal inputs related to user settings and function control of the computer device.
  • the output device 440 is arranged to broadcast broadcast data.
  • Embodiment 5 of the present application also provides a storage medium containing computer-executable instructions, where the computer-executable instructions are used to execute a method for networking LED devices when executed by a computer processor, and the method includes:
  • a storage medium containing computer-executable instructions provided by the embodiments of the present application the computer-executable instructions of the computer-executable instructions are not limited to the above method operations, and can also execute the LED device networking methods provided by any embodiment of the present application. related operations.
  • the present application can be implemented by software and necessary general-purpose hardware, and can also be implemented by hardware.
  • the technical solution of the present application can be embodied in the form of a software product in essence, and the computer software product can be stored in a computer-readable storage medium, such as a floppy disk of a computer, a read-only memory (Read-Only Memory, ROM), a random access A memory (Random Access Memory, RAM), a flash memory (FLASH), a hard disk or an optical disc, etc., including multiple instructions to enable a computer device (which may be a personal computer, a server, or a network device, etc.) to execute the embodiments of the present application.
  • a computer-readable storage medium such as a floppy disk of a computer, a read-only memory (Read-Only Memory, ROM), a random access A memory (Random Access Memory, RAM), a flash memory (FLASH), a hard disk or an optical disc, etc.
  • the multiple units and modules included are only divided according to functional logic, but are not limited to the above-mentioned division, as long as the corresponding functions can be realized;
  • the names of the units are only for the convenience of distinguishing from each other, and are not used to limit the protection scope of the present application.

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Abstract

本文公开了一种LED设备组网方法、装置及设备。LED设备组网方法,包括:在上电时确认LED设备是否配置目标无线网格网络;响应于所述LED设备未配置所述目标无线网格网络,根据初始信息初始化LED设备,并在LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络;基于初始无线网格网络发布LED设备的状态信息;响应于来自启动配置器的更新请求更新LED设备。

Description

LED设备组网方法、装置及设备
本申请要求在2020年11月30日提交中国专利局、申请号为202011380860.4的中国专利申请的优先权,该申请的全部内容通过引用结合在本申请中。
技术领域
本申请涉及发光二极管(Light-Emitting Diode,LED)设备控制技术领域,例如涉及一种LED设备组网方法、装置及设备。
背景技术
随着电子技术的不断发展,LED设备由仅对灯光的开关状态进行控制的方式,发展成为对灯光亮度、灯光颜色、色温可调可控等方式。
对LED设备进行控制调节包括以下两种方案:
一、有线控制方案,通过线路连接LED设备与调节按钮,通过调节按钮与LED设备的有线连接实现对LED设备的控制。
二、无线控制方案,通过WiFi/蓝牙/433通信模组等无线手段实现信号的传输,实现控制端与LED设备之间的连接,实现对LED设备的控制。
采用有线控制方案实现对LED设备的控制,需要布置大量的线材,并且对布线要求高,存在施工成本高,施工难度大的问题,不利于实现对多LED设备的控制;采用无线控制方案对多个LED设备进行控制,只能一个一个顺序控制,无法做到同时控制多个的LED设备,同时当多个LED设备空间的分布距离较远时,需要增加多个控制源,才能保证对所有LED设备的全覆盖控制,因此,实现同时对多个LED设备进行控制的难度较大;并且在采用多个控制源对多个LED设备进行控制时,多个控制源对多个LED设备的接入需要一一操作,使得LED设备的接入操作变得繁琐,需要耗费大量时间。
发明内容
本申请提供一种LED设备组网方法、装置及设备,以实现对多个LED设备的快速组网,可以有效地缩短组网的配置时间。
提供了一种LED设备组网方法,包括:
在上电时确认LED设备是否配置目标无线网格网络;
响应于所述LED设备未配置所述目标无线网格网络,根据初始信息初始化 所述LED设备,并在所述LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络;
基于所述初始无线网格网络发布所述LED设备的状态信息;
响应于来自启动配置器的更新请求更新所述LED设备。
还提供了一种LED设备组网装置,包括:
确定模块,设置为在上电时确认LED设备是否配置目标无线网格网络;
初始化模块,设置为响应于所述LED设备未配置所述目标无线网格网络,根据初始信息初始信息初始化所述LED设备,并在所述LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络;
发布模块,设置为基于所述初始无线网格网络发布所述LED设备的状态信息;
响应模块,设置为响应于来自启动配置器的更新请求更新所述LED设备。
还提供了一种LED设备组网设备,包括:
一个或多个处理器;
存储装置,设置为存储一个或多个程序,
当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现上述的LED设备组网方法。
附图说明
图1为本申请实施例一提供的一种LED设备组网方法的流程图;
图2是本申请实施例二提供的一种LED设备组网方法的流程图;
图3是本申请实施例三提供的一种LED设备组网装置的结构图;
图4是本申请实施例四提供的一种LED设备组网设备的结构图。
具体实施方式
下面结合附图和实施例对本申请进行说明。
实施例一
图1为本申请实施例一提供的一种LED设备组网方法的流程图,本实施例可适用于对多个LED设备进行组网控制的情况,该方法可以由LED设备组网装置来执行,包括如下步骤:
步骤110、在上电时确认LED设备是否配置目标无线网格网络。
在本申请实施例中,LED设备可包括LED设备本体和驱动控制器,该驱动控制器可通过无线通讯技术与控制设备连接,设置为响应控制设备发送的控制命令对LED设备本体进行动作控制。在本申请实施例中,可以将LED设备理解为多个进行组网的LED设备中的一个LED设备,且LED设备仅是一个代名词,对于LED设备的类型并没有限定,LED设备可以是LED灯、LED显示屏或其他类型的LED设备,甚至还可以是其他的可控设备。
在本申请实施例中,无线网格网络是一种无线网络技术,是移动Ad Hoc网络的一种特殊形态。其核心是让网络中的每个节点都发送和接收信号,使普通无线技术过去一直存在的可扩充能力低和传输可靠性差等问题迎刃而解。无线网格网络中的大量终端设备能自动通过无线连接组成网状结构,无线网格网络中的每个节点都具备自动路由功能,每个节点只和邻近节点进行通信。无线网格网络是一种自组织、自管理的智能网络,不需主干网即可构筑富有弹性的网络。传统无线通信网络必须预先设计和布置网络,它的传输路径是固定的,而无线网格网络的传输路径是动态。无线网格网络通过共享网络、相互连接的传感器、移动电话以及其他的能够互联的相关设备组成。在无线网格网络中,分布式的资源共享允许组成无线网格网络的设备为网格计算提供新的资源和使用位置。在本申请实施例中,无线网格网络主要由LED设备组成,对于无线网格网络所需要的无线通信网络标准可以是WiFi、蓝牙技术或Zigbee技术。
在本申请实施例中,在LED设备上电时,该LED设备会对自身的网络状态进行判断,确定自身是否配置有目标网络状态。对于LED设备是否配置目标无线网格网络的判断方式可以是多种的。示例性的,可获取LED设备当前的工作状态并进行判断,或者可对LED设备中相关数据位的数据进行比较判断,又或者可对LED设备当前的网络参数与初始的网络参数进行对比实现对LED设备的网络状态判断,从而确定LED设备是否被配置有目标无线网格网络。另外,对于LED设备是否配置目标无线网格网络的判断方式也可以是满足本申请实施例中使用需求的其他形式的判断方式。
步骤120、响应于LED设备未配置目标无线网格网络,根据初始信息初始化该LED设备,并在该LED设备初始化后根据初始信息与该LED设备外的LED设备组成初始无线网格网络。
在本申请实施例中,在LED设备确定自身未配置目标无线网格网络的情况下,LED设备根据初始信息对自身进行初始化。一实施例中,根据初始信息初始化LED设备包括根据初始信息对LED设备的网络参数进行初始化,初始化后的LED设备的网络参数被修改为初始信息中包含的网络参数,从而实现LED设 备运行在初始信息设定的网络参数下。多个LED设备根据初始信息组成初始无线网格网络,实现多个LED设备的预组网,多个LED设备运行在同一初始无线网格网络下,实现多个LED设备之间的互联。
步骤130、基于初始无线网格网络发布LED设备的状态信息。
LED设备在前述步骤120中初始化后运行在初始无线网格网络下,可实现与其他LED设备之间的互联,多个LED设备之间可相互传递消息。多个LED设备运行在同一初始无线网格网络下,可统一地将自身的状态信息通过初始无线网格网络往外发布,用户终端接入初始无线网格网络后可获取到在初始无线网格网络下的LED设备的状态信息。
LED设备的状态信息,可以是LED设备自身的工作状态信息、硬件信息、物理地址信息等与LED设备相关的信息。此外,LED设备的状态信息还包括LED设备在初始信息下生成的单播地址。
步骤140、响应于来自启动配置器的更新请求更新LED设备。
在本申请实施例中,多个LED设备在上电后通过前述步骤组成初始无线网格网络,对多个LED设备进行互联操作时,用户终端可直接接入到多个LED设备组成的初始无线网格网络中,或者通过网关进行中继接入初始无线网格网络中,从而实现用户终端同时与多个LED设备的互联。在初次配置多个LED设备时,,通过用户终端内的启动配置器向初始无线网格网络内广播更新网络参数的更新请求,用户终端在收到LED设备的响应后根据LED设备的信息向初始无线网格网络内广播新的网络参数,完成一次性更新多个LED设备的网络参数,并在更新LED设备的网络参数后控制重启LED设备使新的网络参数生效,从而完成多个LED设备的组网配置。
在本申请实施例中,通过在LED设备上电时确认LED设备的网络配置状态,判断LED设备是否配置有目标无线网格网络,实现对LED设备是否为未配置设备的判断,进而对未配置的LED设备利用初始信息进行初始化,使未配置的LED设备运行在初始无线网格网络下,实现多个未配置的LED设备的互联,用户终端可接入到初始无线网格网络,基于初始无线网格网络实现同时对多个未配置的LED设备的同步配置,简化对多个未配置的LED设备的配置流程,避免依次连接未配置的LED设备单独进行配置所带来的繁琐操作,提高配置效率和改善用户体验。
实施例二
图2为本申请实施例二提供的一种LED设备组网方法的流程图,本实施例 以前述实施例为基础,说明组网过程。该方法包括如下步骤:
步骤201、获取初始信息以及LED设备当前的组网信息。
在本申请实施例中,初始信息主要指的是出厂默认设置的网络参数,用于重置LED设备的初始网络状态。
在本申请实施例中,初始信息可以为初始网络密钥等参数。对于初始信息包括的参数信息以实际为准。一实施例中,初始信息指LED设备运行在默认的初始无线网格网络下的网络参数,包括但不限于上述的初始网络密钥。
在本申请实施例中,组网信息主要指的是LED设备中当前配置的网络参数。在获取LED设备当前的组网信息时可直接对LED设备的存储器进行读取,从而获得LED设备当前的网络参数。另外,获取LED设备当前的组网信息的方式也可以是满足本申请实施例中使用需求的其他形式的获取方式。
步骤202、比较组网信息与初始信息;若组网信息与初始信息相同,则确定LED设备未配置目标无线网格网络,并执行步骤203;若组网信息与初始信息不同,则确定LED设备配置有目标无线网格网络,并确认组网完成。
在本申请实施例中,目标无线网格网络指的是非默认的初始无线网格网络。
在本申请实施例中,通过对获取的LED设备当前的组网信息与预设的初始信息进行比较,可实现对LED设备当前的网络设置的判断,判断LED设备是否被配置为非默认的初始信息,即判断LED设备是否为需要配网设备(未配网设备)。
在LED设备配置完成后,LED设备将工作在与默认的初始无线网格网络的网络参数不同的目标无线网格网络,本实施例中的网络参数为本申请实施例中提及的初始信息、组网信息和目标信息中的网络参数。
当LED设备内设置的网络参数(组网信息)与默认状态下的网络参数(初始信息)不同时,则代表LED设备的网络参数已被配置更改,LED设备当前为正常组网形式,不需要再次进行组网。当LED设备内设置的网络参数(组网信息)与默认状态下的网络参数(初始信息)相同时,则代表LED设备的网络参数未被修改,或者被重置,代表该LED设备此时需要被重新配置网络参数。
对于LED设备是否未配置目标无线网格网络的判断方式除了比对组网信息是否与初始信息相同外,还可能是LED设备的网络参数未被设置的情况,即LED设备的组网信息为空,在对LED设备的网络配置状态进行确认时应该排除此种情况。
步骤203、根据初始信息初始化LED设备。
步骤204、在LED设备初始化后使初始信息生效,根据生效的初始信息与该LED设备外的LED设备组成初始无线网格网络。
在本申请实施例中,在确认LED设备未配置目标无线网格网络后,需要根据初始信息对LED设备进行初始化操作,初始化后的LED设备的网络参数被更改为初始信息中包含的网络参数,从而实现LED设备运行在初始信息设定的网络参数下。当需要配置的多个LED设备均运行在同一初始信息设定的网络参数下时,多个LED设备之间组网形成本申请实施例所述的初始无线网格网络,实现多个LED设备之间的数据传递。
在一个实施例中,初始信息为初始网络密钥,步骤203包括:
步骤2031、根据初始网络密钥配置LED设备的网络参数。
在本步骤中,使用初始网络密钥替换LED设备当前的网络参数,更改LED设备当前的网络参数,使LED设备运行在初始网格网络下,从而实现多个未配置的LED设备的互联。
步骤2032、根据配置后的LED设备的物理地址生成初始单播地址。
在本申请实施例中,当LED设备运行在初始无线网格网络下时LED设备按照一定的规则根据唯一的物理地址生成单播地址,可有效的避免在初始无线网格网络下多个LED设备的单播地址相同的情况出现,保证多个LED设备组网的可靠性,使得每个未配置的LED设备被互联组网至初始无线网格网络中。
在本申请实施例中,可以直接将物理地址作为单播地址,或者采用统一的转换规则将物理地址转换为单播地址。例如,在物理地址的基础上结合当前时间对物理地址进行换算生成独一无二的单播地址,以避免出现多个LED设备的单播地址相同的情况。保证在初始无线网格网络中不出现单播地址冲突的情况。
步骤205、基于初始无线网格网络发布LED设备的状态信息。
在本申请实施例中,LED设备的状态信息可包括LED设备的单播地址和包含未配网信息的广播数据。其中,包含未配网信息的广播数据可以是将LED设备处于初始无线网格网络时定义的广播参数,添加到往外广播的广播数据中。用户终端、服务器或网关能够从包含未配网信息的广播数据中获知单播地址对应的LED设备处于未配网状态,用户需要对该LED设备的网络参数进行新的定义,从而使该LED设备被配置在新的目标无线网格网络中。
步骤206、响应于来自启动配置器的更新请求,获取来自启动配置器的目标信息。
当用户终端直接或通过网关、服务器等接入初始无线网格网络,获取到来 自初始无线网格网络的包括LED设备的单播地址和包含未配网信息的广播数据后,用户操作用户终端对LED设备进行重新配网,通过用户终端内的启动配置器将用户设定的目标信息发送至LED设备,其中,目标网络参数通过广播地址发给所有LED设备,目标单播地址通过LED初始单播地址一一发给LED设备,LED设备根据接收到的目标信息进行配置,使LED设备的配网信息更新至用户设定的目标信息。
步骤207、根据目标信息配置LED设备。
在一个实施例中,目标信息包括目标网络密钥和目标单播地址,步骤207包括:
步骤2071、将LED设备的单播地址设定为目标单播地址。
步骤2072、根据目标网络密钥设置LED设备的网络参数。
步骤208、重启LED设备,以使LED设备运行在目标无线网格网络下。
对LED设备的重启操作,可使LED设备中被配置的目标信息生效,使LED设备工作在目标信息限定的目标无线网格网络下,实现在用户终端设置一次的情况下完成对多个未配置的LED设备的配置。
在本申请实施例中,在步骤208之后,还包括:
步骤209、验证LED设备是否组网成功;若LED设备组网失败,则返回执行步骤205。
对于LED设备是否组网成功的验证形式可以是多种的。示例性的,可参考步骤110中对LED设备是否配置目标无线网格网络的判断方式,例如可获取LED设备当前的工作状态的获取并进行判断,或者可对LED设备中相关数据位的数据进行比较判断,又或者可对LED设备当前的网络参数与初始的网络参数进行对比实现对LED设备的网络状态判断,从而确定LED设备是否被配置有目标无线网格网络。另外,对于LED设备是否配置目标无线网格网络的判断方式也可以是满足本申请实施例中使用需求的其他形式判断方式。
一实施例中,对于LED设备组网是否成功的判断还可以是在完成步骤207之后进行,判断LED设备的网络参数是否被正常配置,进而判断LED设备是否组网完成。
在本申请的一个可选实施例中,当新增LED设备时,若新增的LED设备距离启动配置器距离较远,启动配置器无法直接与新增的LED设备完成数据互通,可人为地将距离新增的LED设备较近的已组网LED设备重置设置成默认状态,使得该已组网LED设备运行在与新增的LED设备上电后所处的网络(新增的 LED设备在上电后经过步骤201-204的设置运行在初始无线网格网络)相同的初始无线网格网络下。此时启动配置器可通过重置的LED设备与新增的LED设备组成的初始无线网格网络实现同时与新增的LED设备和重置的LED设备的互联,然后通过初始无线网格网络对新增的LED设备和重置的LED设备进行组网操作,使得新增的LED设备和重置的LED设备被配置运行在相同的目标无线网格网络中,从而实现对启动配置器的网络连接范围之外的新增LED设备的组网配置。
实施例三
图3为本申请实施例三提供的一种LED设备组网装置的结构图,该装置可以包括如下模块:
确定模块301,设置为在上电时确认LED设备是否配置目标无线网格网络;初始化模块302,设置为响应于LED设备未配置所述目标无线网格网络,根据初始信息初始化LED设备,并在LED设备初始化后根据初始信息与该LED设备外的LED设备组成初始无线网格网络;发布模块303,设置为基于初始无线网格网络发布LED设备的状态信息;响应模块304,设置为响应于来自启动配置器的更新请求更新LED设备。
该装置还包括:
验证模块305,设置为验证LED设备是否组网成功;若LED设备组网失败,则返回执行基于初始无线网格网络发布LED设备的状态信息的操作。
确定模块301包括:组网信息获取单元,设置为获取初始信息以及LED设备当前的组网信息;比较单元,设置为比较组网信息与初始信息;若组网信息与初始信息相同,则确定LED设备未配置目标无线网格网络;若组网信息与初始信息不同,则确定LED设备配置有目标无线网格网络。
初始化模块302包括:初始化单元,设置为根据初始信息初始化LED设备;生效单元,设置为在LED设备初始化后使初始信息生效,根据生效的初始信息与该LED设备外的LED设备组成初始无线网格网络。
初始信息为初始网络密钥;初始化单元包括:初始化子单元,设置为根据初始网络密钥配置LED设备的网络参数;单播地址生成子单元,设置为根据配置后的LED设备的物理地址生成初始单播地址。
LED设备的状态信息,包括LED设备的单播地址和包含未配网信息的广播数据。
响应模块304包括:获取目标信息单元,设置为响应于来自启动配置器的更新请求,获取来自启动配置器的目标信息;配置单元,设置为根据目标信息配置LED设备;重启单元,设置为重启LED设备,以使LED设备运行在目标无线网格网络下。
目标信息包括目标网络密钥和目标单播地址。
配置单元包括:单播地址设定子单元,设置为将LED设备的单播地址设定为目标单播地址;网络密钥设置子单元,设置为根据目标网络密钥设置LED设备的网络参数。
本申请实施例所提供的LED设备组网装置可执行本申请任意实施例所提供的LED设备组网方法,具备执行方法相应的功能模块和效果。
实施例四
图4为本申请实施例四提供的一种计算机设备的结构图,如图4所示,该计算机设备包括处理器410、存储器420、输入装置430和输出装置440;计算机设备中处理器410的数量可以是一个或多个,图4中以一个处理器410为例;计算机设备中的处理器410、存储器420、输入装置430和输出装置440可以通过总线或其他方式连接,图4中以通过总线连接为例。
存储器420作为一种计算机可读存储介质,可设置为存储软件程序、计算机可执行程序以及模块,如本申请实施例中的人脸关键点检测方法对应的程序指令/模块(例如,确定模块301、初始化模块302、发布模块303、响应模块304、验证模块305)。处理器410通过运行存储在存储器420中的软件程序、指令以及模块,从而执行计算机设备的多种功能应用以及数据处理,即实现上述的LED设备组网方法。
存储器420可主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序;存储数据区可存储根据终端的使用所创建的数据等。此外,存储器420可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。在一些实例中,存储器420可包括相对于处理器410远程设置的存储器,这些远程存储器可以通过网络连接至计算机设备。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
输入装置430可设置为接收输入的更新请求和目标信息,以及产生与计算机设备的用户设置以及功能控制有关的键信号输入。输出装置440设置为广播广播数据。
实施例五
本申请实施例五还提供一种包含计算机可执行指令的存储介质,所述计算机可执行指令在由计算机处理器执行时用于执行一种LED设备组网方法,该方法包括:
在上电时确认LED设备是否配置目标无线网格网络;响应于所述LED设备未配置所述目标无线网格网络,根据初始信息初始化所述LED设备,并在所述LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络;基于所述初始无线网格网络发布所述LED设备的状态信息;响应于来自启动配置器的更新请求更新所述LED设备。
本申请实施例所提供的一种包含计算机可执行指令的存储介质,其计算机可执行指令不限于如上所述的方法操作,还可以执行本申请任意实施例所提供的LED设备组网方法中的相关操作。
通过以上关于实施方式的描述,本申请可借助软件及必需的通用硬件来实现,也可以通过硬件实现。本申请的技术方案本质上可以以软件产品的形式体现出来,该计算机软件产品可以存储在计算机可读存储介质中,如计算机的软盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、闪存(FLASH)、硬盘或光盘等,包括多个指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本申请实施例所述的方法。
上述LED设备组网装置的实施例中,所包括的多个单元和模块只是按照功能逻辑进行划分的,但并不局限于上述的划分,只要能够实现相应的功能即可;另外,多个功能单元的名称也只是为了便于相互区分,并不用于限制本申请的保护范围。

Claims (10)

  1. 一种发光二极管LED设备组网方法,包括:
    在上电时确认LED设备是否配置目标无线网格网络;
    响应于所述LED设备未配置所述目标无线网格网络,根据初始信息初始化所述LED设备,并在所述LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络;
    基于所述初始无线网格网络发布所述LED设备的状态信息;
    响应于来自启动配置器的更新请求更新所述LED设备。
  2. 根据权利要求1所述的方法,其中,所述在上电时确认LED设备是否配置目标无线网格网络,包括:
    获取初始信息以及LED设备的组网信息;
    比较所述组网信息与所述初始信息;
    在所述组网信息与所述初始信息相同的情况下,确定所述LED设备未配置所述目标无线网格网络;
    在所述组网信息与所述初始信息不同的情况下,确定所述LED设备配置有所述目标无线网格网络。
  3. 根据权利要求2所述的方法,其中,所述根据初始信息初始化所述LED设备,并在所述LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络,包括:
    根据所述初始信息初始化所述LED设备;
    在所述LED设备初始化后使所述初始信息生效,根据生效的所述初始信息与所述LED设备外的LED设备组成所述初始无线网格网络。
  4. 根据权利要求3所述的方法,其中,所述初始信息为初始网络密钥;
    所述根据所述初始信息初始化所述LED设备,包括:
    根据所述初始网络密钥配置所述LED设备的网络参数;
    根据配置后的所述LED设备的物理地址生成初始单播地址。
  5. 根据权利要求1所述的方法,其中,所述LED设备的状态信息,包括所述LED设备的单播地址和包含未配网信息的广播数据。
  6. 根据权利要求1所述的方法,其中,所述响应于来自启动配置器的更新请求更新所述LED设备,包括:
    响应于来自所述启动配置器的更新请求,获取来自所述启动配置器的目标 信息;
    根据所述目标信息配置所述LED设备;
    重启所述LED设备,以使所述LED设备运行在所述目标无线网格网络下。
  7. 根据权利要求6所述的方法,其中,所述目标信息包括目标网络密钥和目标单播地址;
    所述根据所述目标信息配置所述LED设备,包括:
    将所述LED设备的单播地址设定为所述目标单播地址;
    根据所述目标网络密钥设置所述LED设备的网络参数。
  8. 根据权利要求1所述的方法,在所述响应于来自启动配置器的更新请求更新所述LED设备之后,还包括:
    验证所述LED设备是否组网成功;
    响应于所述LED设备组网失败,返回执行所述基于所述初始无线网格网络发布所述LED设备的状态信息的操作。
  9. 一种发光二极管LED设备组网装置,包括:
    确定模块,设置为在上电时确认LED设备是否配置目标无线网格网络;
    初始化模块,设置为响应于所述LED设备未配置所述目标无线网格网络,根据初始信息初始化所述LED设备,并在所述LED设备初始化后根据所述初始信息与所述LED设备外的LED设备组成初始无线网格网络;
    发布模块,设置为基于所述初始无线网格网络发布所述LED设备的状态信息;
    响应模块,设置为响应于来自启动配置器的更新请求更新所述LED设备。
  10. 一种发光二极管LED设备组网设备,包括:
    至少一个处理器;
    存储装置,设置为存储至少一个程序;
    当所述至少一个程序被所述至少一个处理器执行,使得所述至少一个处理器实现如权利要求1-8中任一项所述的LED设备组网方法。
PCT/CN2021/096598 2020-11-30 2021-05-28 Led设备组网方法、装置及设备 WO2022110717A1 (zh)

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