WO2021051961A1 - 智能组网方法及系统 - Google Patents

智能组网方法及系统 Download PDF

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Publication number
WO2021051961A1
WO2021051961A1 PCT/CN2020/100328 CN2020100328W WO2021051961A1 WO 2021051961 A1 WO2021051961 A1 WO 2021051961A1 CN 2020100328 W CN2020100328 W CN 2020100328W WO 2021051961 A1 WO2021051961 A1 WO 2021051961A1
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WO
WIPO (PCT)
Prior art keywords
remote control
mesh network
control instruction
wireless mesh
network chip
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PCT/CN2020/100328
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English (en)
French (fr)
Inventor
谢颖浩
何文豪
祝泽坤
李新壮
Original Assignee
珠海格力电器股份有限公司
珠海联云科技有限公司
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Application filed by 珠海格力电器股份有限公司, 珠海联云科技有限公司 filed Critical 珠海格力电器股份有限公司
Publication of WO2021051961A1 publication Critical patent/WO2021051961A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/12Protocols specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks
    • H04L67/125Protocols specially adapted for proprietary or special-purpose networking environments, e.g. medical networks, sensor networks, networks in vehicles or remote metering networks involving control of end-device applications over a network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/80Services using short range communication, e.g. near-field communication [NFC], radio-frequency identification [RFID] or low energy communication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/18Self-organising networks, e.g. ad-hoc networks or sensor networks

Definitions

  • the present disclosure relates to the technical field of networking control, and in particular to an intelligent networking method and system.
  • the existing scene linkage needs to be performed in an online environment. For example, a certain device triggers a certain scene, uploads the trigger information to the server, and the server concurrently sends all participating scene linkages Device control instructions; if the network is dropped or the delay is too high, it will affect normal use; the existing scene linkage function is too dependent on the problem of the online environment, and cannot be applied in an offline environment.
  • the embodiments of the present disclosure provide an intelligent networking method and system to at least solve the technical problem that the existing scene linkage function relies too much on the online environment and cannot realize the scene linkage in an offline environment.
  • an intelligent networking system including: a smart device that is signally connected to an electronic device, the smart device is provided with a first wireless mesh network chip, and the smart device is set as a basis The remote control instruction received by the first wireless mesh network chip controls the electronic device; the gateway device is connected to the first wireless mesh network chip and is configured to send the remote control instruction transmitted via the routing device to the first A wireless mesh network chip; the routing device is respectively connected to the gateway device and the server, and is configured to transmit the received remote control instruction from the server to the gateway device.
  • an intelligent networking system including: a smart device, which is signally connected to the electronic device, and the smart device is provided with a first wireless mesh network chip and a wireless network Wi-Fi
  • the above-mentioned Wi-Fi chip is configured to send a remote control command transmitted via a routing device to the above-mentioned first wireless mesh network chip, and the above-mentioned smart device is configured to control an electronic device according to the above-mentioned remote control command; the above-mentioned routing device, respectively It is connected to the Wi-Fi chip and the server, and is configured to transmit the remote control command received from the server to the Wi-Fi chip.
  • an intelligent networking method is also provided, which is applied to an intelligent networking system.
  • the above-mentioned intelligent networking system includes an intelligent device provided with a first wireless mesh network chip, including: Receive the remote control instruction from the server via the routing device in the smart networking system; send the remote control instruction to the first wireless mesh network chip via the gateway device in the smart networking system; receive according to the smart device The above-mentioned remote control instructions to control the electronic equipment.
  • a smart networking method including: a smart device receives a remote control instruction sent by a gateway device, wherein the smart device is provided with a first wireless mesh network chip, and The gateway device is configured to forward the remote control instruction from the server to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • a smart networking method including: a smart device receives a remote control instruction from a server, wherein the smart device is provided with a first wireless mesh network chip and a wireless network WI-FI chip, the WI-FI chip is configured to forward the received remote control instruction from the server to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • a storage medium includes a stored program, and the device where the storage medium is located is controlled to execute any one of the above intelligent networking methods when the program is running.
  • a processor the above-mentioned processor is set to run a program, wherein, when the above-mentioned program runs, any one of the above-mentioned intelligent networking methods is executed.
  • the linkage control is realized in an offline scenario, and the smart device is signal connected with the electronic device.
  • the smart device is provided with a first wireless mesh network chip, and the smart device is set according to the above-mentioned first wireless mesh network chip.
  • a remote control instruction received by a wireless mesh network chip controls the electronic device; a gateway device, connected to the first wireless mesh network chip, is configured to send the remote control instruction transmitted via the routing device to the first wireless Mesh network chip; the routing device is respectively connected to the gateway device and the server, and is configured to transmit the remote control instructions received from the server to the gateway device, achieving intelligent networking and offline
  • the purpose of the scene linkage function is realized in the environment, which realizes the offline linkage control device, improves the technical effect of the user experience, and solves the problem that the existing scene linkage function is too dependent on the online environment and cannot be realized in the offline environment. problem.
  • Fig. 1 is a schematic structural diagram of an intelligent networking system according to an embodiment of the present disclosure
  • FIG. 2 is a schematic diagram of mesh networking of an optional intelligent networking system according to an embodiment of the present disclosure
  • Fig. 3 is a schematic diagram of an optional scene linkage mode according to an embodiment of the present disclosure.
  • Fig. 4 is a flowchart of an intelligent networking method according to an embodiment of the present disclosure.
  • Fig. 5 is a flowchart of another intelligent networking method according to an embodiment of the present disclosure.
  • Fig. 6 is a flowchart of yet another intelligent networking method according to an embodiment of the present disclosure.
  • Fig. 7 is a schematic diagram of an intelligent networking device according to an embodiment of the present disclosure.
  • Wireless mesh network Also called wireless mesh network, it is a wireless multi-hop network, developed from ad hoc network, and is one of the key technologies to solve the "last mile" problem.
  • FIG. 1 is a schematic structural diagram of an intelligent networking system according to an embodiment of the present disclosure.
  • the above-mentioned intelligent networking system includes : Smart switch 10, electronic device 12, first wireless mesh network chip 101, gateway device 14, routing device 16, server 18, where:
  • the smart device 10 is signally connected to the electronic device 12.
  • the smart device 10 is provided with a first wireless mesh network chip 101, and the smart device is configured to control the above-mentioned remote control command according to the remote control instruction received by the first wireless mesh network chip.
  • the smart device includes a smart switch, and the first wireless mesh network chip may be a Bluetooth mesh network mesh chip.
  • the smart switch may be a switch using a touch button.
  • the smart switch adds a first wireless mesh network chip and utilizes the networking technology of the Bluetooth mesh network chip to realize scene linkage in an offline environment. , And there is no need to concurrently issue multiple control instructions at the same time.
  • the above-mentioned gateway device is a Wi-Fi-to-Bluetooth mesh network gateway, and remote online control and remote offline control can be realized through the smart switch and the gateway device; the entire intelligent networking system is not connected to the Internet ( In the case of offline), the Bluetooth mesh network mesh ad hoc network is used to achieve control.
  • the Wi-Fi end of the above-mentioned gateway device is connected to a routing device (router), and cooperates with applications and servers in multiple electronic devices to complete remote control.
  • the Bluetooth mesh network mesh chip of the aforementioned gateway device can also be used as a manager of the wireless mesh network to maintain important parameters of each electronic device in the wireless mesh network.
  • the linkage control is realized in an offline scenario, and the smart device is signal connected with the electronic device.
  • the smart device is provided with a first wireless mesh network chip, and the smart device is set according to the above-mentioned first wireless mesh network chip.
  • a remote control instruction received by a wireless mesh network chip controls the electronic device; a gateway device, connected to the first wireless mesh network chip, is configured to send the remote control instruction transmitted via the routing device to the first wireless Mesh network chip; the routing device is respectively connected to the gateway device and the server, and is configured to transmit the remote control instructions received from the server to the gateway device, achieving intelligent networking and offline
  • the purpose of the scene linkage function is realized in the environment, which realizes the offline linkage control device, improves the technical effect of the user experience, and solves the problem that the existing scene linkage function is too dependent on the online environment and cannot be realized in the offline environment. problem.
  • the smart switch 10 is signal-connected to the electronic device 12 in the following manner: a second wireless mesh network chip is provided in the above-mentioned electronic devices, and the second wireless mesh network chip in the above-mentioned electronic device is Signal connection with the first wireless mesh network chip in the above-mentioned smart device.
  • the above-mentioned second wireless mesh network chip may be a Bluetooth mesh network chip.
  • each of the multiple electronic devices is pre-allocated with a unicast address, and each electronic device is set to be based on the single The broadcast address determines the remote control command corresponding to each electronic device.
  • multiple electronic devices (device 1, device 2, device 3...device N) with a second wireless mesh network chip can be configured to enter the same wireless network through the wireless mesh network manager.
  • Mesh network and each electronic device added to the wireless mesh network is assigned a unicast address, and the control application APP downloaded in each electronic device stores the above unicast address to realize the In this case, the remote control command corresponding to each of the above-mentioned electronic devices is determined according to the above-mentioned unicast address.
  • the above-mentioned system further includes: an electronic device configured to receive a scene linkage mode customized by a user, wherein a plurality of the above-mentioned electronic devices in the above-mentioned scene linkage mode are configured with the same group
  • the above-mentioned smart device is also connected to the above-mentioned electronic device, and is set to control a plurality of the above-mentioned electronic devices in the above-mentioned scene-linked mode according to the above-mentioned remote control instruction when the above-mentioned scene linkage mode is triggered.
  • the multiple electronic devices include but are not limited to: device 1, device 2, device 3, device 4, device 5, device 6... Device N, Device M, Device P; the user can customize the scene linkage mode (for example, the offline scene linkage mode) through the control APP downloaded in the multiple electronic devices, wherein the scene linkage mode includes at least one of the following: Home mode, away from home mode, sleep mode.
  • the scene linkage mode includes at least one of the following: Home mode, away from home mode, sleep mode.
  • multiple electronic devices in each scene linkage mode are configured with the same multicast address.
  • device 1, device 2, ... device N in the home mode are all configured with the same multicast address.
  • the smart switch may send a remote control instruction to multiple electronic devices in the foregoing scenario linkage mode through the foregoing multicast address when the foregoing scenario linkage mode is triggered, and multiple electronic devices may be in the foregoing scenario linkage mode.
  • the device After the device receives the remote control command, it outputs a response signal, and the command control can be continued through the server.
  • a remote control instruction is sent to multiple electronic devices (device 5, device 6...device P) in the sleep mode through the multicast address 3.
  • an intelligent networking system includes: an intelligent device, which is signally connected to an electronic device, and a first wireless mesh network chip and a wireless network chip are provided in the aforementioned intelligent device.
  • a network Wi-Fi chip, the Wi-Fi chip is configured to send a remote control command transmitted by a routing device to the first wireless mesh network chip, and the smart device is configured to control an electronic device according to the remote control command;
  • the routing device is respectively connected to the Wi-Fi chip and the server, and is configured to transmit the remote control command received from the server to the Wi-Fi chip.
  • the above-mentioned smart device includes a smart switch.
  • the above-mentioned smart switch further integrates the functions of a switch and a gateway by setting the WI-FI chip, and the above-mentioned WI-FI chip is connected to the above-mentioned server; in some embodiments, the above-mentioned smart switch is configured by setting WI- The FI chip can realize the functions of an integrated switch and a gateway. That is, the smart switch is both a switch and a gateway. It can directly receive remote control instructions from the server through the WI-FI chip, and transmit the received remote control instructions to The first wireless mesh network chip.
  • FIGS. 1 to 2 the specific structure of the intelligent networking system shown in FIGS. 1 to 2 in this disclosure is only for illustration. In specific applications, the intelligent networking system in this disclosure can be compared to those shown in FIGS. 1 to 2
  • the intelligent networking system shown has a more or less structure.
  • any of the following optional or preferred intelligent networking methods can be executed or implemented in the intelligent networking system provided in this embodiment.
  • an embodiment of an intelligent networking method is provided. It should be noted that the steps shown in the flowchart of the accompanying drawings can be executed in a computer system such as a set of computer-executable instructions, and, Although a logical sequence is shown in the flowchart, in some cases, the steps shown or described may be performed in a different order than here.
  • the smart networking method in the present disclosure can be applied to a smart networking system.
  • the above smart networking system includes a smart device provided with a first Bluetooth mesh network chip.
  • FIG. 4 is a smart networking system according to an embodiment of the present disclosure. The flowchart of the network method, as shown in Figure 4, the method includes the following steps:
  • Step S102 receiving a remote control instruction from the server via the routing device in the above-mentioned intelligent networking system
  • Step S104 sending the remote control instruction to the first Bluetooth mesh network chip via the gateway device in the intelligent networking system;
  • step S106 the electronic device is controlled by the smart device according to the received remote control instruction.
  • the above-mentioned smart device may be a smart switch
  • the above-mentioned smart switch may be a switch that uses a touch button
  • the above-mentioned smart switch adds a first Bluetooth mesh network chip and utilizes a set of bluetooth bluetooth mesh network chips.
  • Network technology realizes scene linkage in offline environment, and there is no need to concurrently issue multiple control commands at the same time.
  • the above-mentioned gateway device is a Wi-Fi-to-Bluetooth mesh network gateway, and remote online control and remote offline control can be realized through the smart switch and the gateway device; the entire intelligent networking system is not connected to the Internet ( In the case of offline), the Bluetooth mesh network mesh ad hoc network is used to achieve control.
  • the Wi-Fi end of the aforementioned gateway device is connected to a routing device (router), and cooperates with applications and servers in multiple electronic devices to complete remote control.
  • the Bluetooth mesh network mesh chip of the above-mentioned gateway device can also be used as a manager of the mesh network to maintain important parameters of each electronic device in the mesh network.
  • the linkage control is realized in the offline scenario, the remote control instruction from the server is received via the routing device in the above-mentioned intelligent networking system; the above remote control instruction is received via the gateway device in the above-mentioned intelligent networking system Send to the above-mentioned first Bluetooth mesh network chip; through the above-mentioned smart device according to the received remote control instruction to control the electronic device, achieve the purpose of realizing the scene linkage function in the offline environment through the intelligent networking mode, so as to achieve
  • the offline linkage control device improves the technical effect of the user experience, thereby solving the technical problem that the existing scene linkage function relies too much on the online environment and cannot realize the scene linkage in the offline environment.
  • the method before receiving the remote control instruction from the server via the routing device in the intelligent networking system, the method further includes:
  • Step S100 Pre-allocate a unicast address for each of the above-mentioned electronic devices, wherein each of the above-mentioned electronic devices is set to determine the corresponding remote control instruction according to the above-mentioned unicast address.
  • multiple electronic devices with a second Bluetooth mesh network chip can be configured to enter the same wireless mesh network through, but not limited to, the administrator of the wireless mesh network, and enter for adding
  • Each electronic device of the wireless mesh network is assigned a unicast address, and the control application APP downloaded in each electronic device stores the aforementioned unicast address, so that when a remote control instruction is received, the aforementioned unicast address is used. Determine the remote control command corresponding to each of the above-mentioned electronic devices.
  • the method further includes:
  • Step S202 setting a scene linkage mode for the above-mentioned electronic device in advance, wherein a plurality of the above-mentioned electronic devices in the above-mentioned scene linkage mode are configured with the same multicast address;
  • step S204 when the scene linkage mode is triggered, the multiple electronic devices in the scene linkage mode are controlled according to the remote control instruction.
  • multiple electronic devices include but are not limited to: Device 1, Device 2, Device 3, Device 4, Device 5, Device 6... Device N, Device M, Device P; User
  • the scene linkage mode (for example, offline scene linkage mode) can be customized through the control APP downloaded in the multiple electronic devices, where the scene linkage mode includes at least one of the following: a home mode, a home away mode, and a sleep mode.
  • multiple electronic devices in each scene linkage mode are configured with the same multicast address.
  • device 1, device 2, ... device N in the home mode are all configured with the same multicast address.
  • the smart switch may send a remote control instruction to multiple electronic devices in the foregoing scenario linkage mode through the foregoing multicast address when the foregoing scenario linkage mode is triggered, and multiple electronic devices may be in the foregoing scenario linkage mode.
  • the device After the device receives the remote control command, it outputs a response signal, and the command control can be continued through the server.
  • a remote control instruction is sent to multiple electronic devices (device 5, device 6...device P) in the sleep mode through the multicast address 3.
  • FIG. 5 is a flowchart of another intelligent networking method according to an embodiment of the present disclosure, as shown in FIG. 5, including:
  • Step S302 The smart device receives the remote control instruction sent by the gateway device.
  • the smart device is provided with a first Bluetooth mesh network chip, and the gateway device is configured to forward the remote control instruction from the server to the first Bluetooth network.
  • Network chip
  • step S304 the above-mentioned smart device controls the electronic device according to the above-mentioned remote control instruction.
  • the linkage control is realized in the offline scenario, and the remote control instruction sent by the gateway device is received through the smart device.
  • the smart device is provided with a first Bluetooth mesh network chip, and the gateway device is set In order to forward the above remote control command from the server to the first Bluetooth mesh network chip; the smart device controls the electronic device according to the above remote control command, and achieves the realization of the scene linkage function in an offline environment through intelligent networking.
  • the purpose is to realize the offline linkage control device, improve the technical effect of user experience, and solve the technical problem that the existing scene linkage function relies too much on the online environment and cannot realize the scene linkage in the offline environment.
  • FIG. 6 is a flowchart of another intelligent networking method according to an embodiment of the present disclosure, as shown in FIG. 6, including:
  • Step S402 The smart device receives a remote control instruction from the server.
  • the smart device is provided with a first Bluetooth mesh network chip and a wireless network WI-FI chip, and the WI-FI chip is set to receive information from the server.
  • the remote control instruction of the device is forwarded to the above-mentioned first Bluetooth mesh network chip;
  • step S404 the above-mentioned smart device controls the electronic device according to the above-mentioned remote control instruction.
  • the linkage control is realized in the offline scenario, and the remote control instruction from the server is received through the smart device, wherein the smart device is provided with a first Bluetooth mesh network chip and a wireless network WI-FI chip ,
  • the aforementioned WI-FI chip is configured to forward the received remote control instruction from the server to the aforementioned first Bluetooth mesh network chip; the aforementioned smart device controls the electronic device according to the aforementioned remote control instruction, and achieves an intelligent networking
  • the purpose of the scene linkage function is realized in an offline environment, thereby realizing offline linkage control equipment, improving the technical effect of user experience, and solving the existing scene linkage function that is too dependent on the online environment and cannot be implemented in an offline environment The technical problem of scene linkage.
  • FIG. 7 is a schematic structural diagram of an intelligent networking apparatus according to an embodiment of the present disclosure.
  • the intelligent networking device includes: a receiving module 70, a sending module 72, and a control module 74, wherein:
  • the receiving module 70 is set to receive the remote control instruction from the server via the routing device in the above-mentioned intelligent networking system; the sending module 72 is set to send the above-mentioned remote control instruction to the above via the gateway device in the above-mentioned intelligent networking system
  • the first Bluetooth mesh network chip; the control module 74 is configured to control the electronic device according to the received remote control instruction through the smart device.
  • each of the above modules can be implemented by software or hardware.
  • the above modules can be located in the same processor; or, the above modules can be implemented in any combination. Located in different processors.
  • receiving module 70, sending module 72, and control module 74 correspond to steps S102 to S106 in Embodiment 2.
  • the foregoing modules and the corresponding steps implement the same examples and application scenarios, but are not limited to The content disclosed in Example 2 above. It should be noted that the above-mentioned modules can be run in a computer terminal as a part of the device.
  • the foregoing intelligent networking device may also include a processor and a memory.
  • the foregoing receiving module 70, sending module 72, and control module 74 are all stored as program units in the memory, and the processor executes the foregoing program units stored in the memory to achieve The corresponding function.
  • the processor contains a kernel, and the kernel retrieves the corresponding program unit from the memory.
  • One or more of the aforementioned kernels can be set.
  • the memory may include non-permanent memory in computer-readable media, random access memory (RAM) and/or non-volatile memory, such as read-only memory (ROM) or flash memory (flash RAM), and the memory includes at least one Memory chip.
  • an embodiment of a storage medium is also provided.
  • the above-mentioned storage medium includes a stored program, wherein when the above-mentioned program is running, the device where the above-mentioned storage medium is located is controlled to execute any one of the above-mentioned intelligent networking methods.
  • the aforementioned storage medium may be located in any computer terminal in a computer terminal group in a computer network, or located in any mobile terminal in a mobile terminal group, and the aforementioned storage medium includes a stored program.
  • the device where the storage medium is located is controlled to perform the following functions: the remote control instruction from the server is received via the routing device in the above-mentioned intelligent networking system; the above remote control instruction is received via the gateway device in the above-mentioned intelligent networking system Sent to the first wireless mesh network chip; the electronic device is controlled by the smart device according to the received remote control instruction.
  • the device where the storage medium is located is controlled to perform the following functions: the smart device receives a remote control instruction sent by the gateway device, wherein the smart device is provided with a first wireless mesh network chip, and the gateway device is set to Forward the remote control instruction from the server to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • the device where the storage medium is located is controlled to perform the following functions: the smart device receives a remote control instruction from the server, wherein the smart device is provided with a first wireless mesh network chip and a wireless network WI-FI chip, The WI-FI chip is configured to forward the received remote control instruction from the server to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • a processor embodiment is also provided.
  • the above-mentioned processor is configured to run a program, wherein any one of the above-mentioned intelligent networking methods is executed when the above-mentioned program is running.
  • the embodiments of the present disclosure provide a device that includes a processor, a memory, and a program stored on the memory and capable of running on the processor.
  • the processor implements the following steps when executing the program: via the routing device in the above-mentioned intelligent networking system Receive a remote control instruction from the server; send the remote control instruction to the first wireless mesh network chip via the gateway device in the smart networking system; control the electronic device through the smart device according to the received remote control instruction.
  • the smart device receives the remote control instruction sent by the gateway device, wherein the smart device is provided with a first wireless mesh network chip, and the gateway device is set to forward the remote control instruction from the server The remote control instruction is sent to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • the smart device receives a remote control instruction from the server, wherein the smart device is provided with a first wireless mesh network chip and a wireless network WI-FI chip, and the above WI-FI The chip is configured to forward the received remote control instruction from the server to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • the present disclosure also provides a computer program product, which when executed on a data processing device, is suitable for executing a program that initializes the following method steps: receiving a remote control instruction from a server via the routing device in the above-mentioned intelligent networking system; The gateway device in the smart networking system sends the remote control instruction to the first wireless mesh network chip; the smart device controls the electronic device according to the received remote control instruction.
  • the smart device receives the remote control instruction sent by the gateway device, wherein the smart device is provided with a first wireless mesh network chip, and the gateway device is set to forward from the server The said remote control instruction is sent to the said first wireless mesh network chip; the said smart device controls the electronic device according to the said remote control instruction.
  • the smart device receives a remote control instruction from the server, wherein the smart device is provided with a first wireless mesh network chip and a wireless network WI-FI chip, and the above WI- The FI chip is configured to forward the received remote control instruction from the server to the first wireless mesh network chip; the smart device controls the electronic device according to the remote control instruction.
  • the disclosed technical content can be implemented in other ways.
  • the device embodiments described above are only illustrative.
  • the division of units may be a logical function division.
  • multiple units or components may be combined or integrated into Another system, or some features can be ignored, or not implemented.
  • the displayed or discussed mutual coupling or direct coupling or communication connection may be indirect coupling or communication connection through some interfaces, units or modules, and may be in electrical or other forms.
  • the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place, or they may be distributed on multiple units. Some or all of the units may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.
  • the functional units in the various embodiments of the present disclosure may be integrated into one processing unit, or each unit may exist alone physically, or two or more units may be integrated into one unit.
  • the above-mentioned integrated unit can be implemented in the form of hardware or software functional unit.
  • the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer readable storage medium.
  • the technical solution of the present disclosure essentially or the part that contributes to the related technology, or all or part of the technical solution can be embodied in the form of a software product, and the computer software product is stored in a storage medium, It includes several instructions to make a computer device (which may be a personal computer, a server, or a network device, etc.) execute all or part of the steps of the methods described in the various embodiments of the present disclosure.
  • the aforementioned storage media include: U disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), mobile hard disk, magnetic disk or optical disk and other media that can store program code .

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Abstract

本公开公开了一种智能组网方法及系统。其中,该智能组网系统,包括:智能设备,与电子设备信号连接,上述智能设备中设置有第一无线网状网络芯片,上述智能设备被设置为依据上述第一无线网状网络芯片接收到的远程控制指令控制上述电子设备;网关设备,与上述第一无线网状网络芯片连接,被设置为将经路由设备传输的上述远程控制指令发送至上述第一无线网状网络芯片;上述路由设备,分别与上述网关设备、服务器连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述网关设备。本公开解决了现有的场景联动功能过分依赖在线环境,无法在离线的环境下实现场景联动的技术问题。

Description

智能组网方法及系统
本公开要求于2019年9月18日提交中国专利局、申请号为201910881935.8、发明名称为“智能组网方法及系统”的中国专利申请的优先权,其全部内容通过引用结合在本公开中。
技术领域
本公开涉及组网控制技术领域,具体而言,涉及一种智能组网方法及系统。
背景技术
在组网控制技术领域中,现有的场景联动都是需要基于在线的环境下进行的,例如,由某个设备触发某种场景,把触发信息上传至服务器,服务器再并发所有参与场景联动的设备控制指令;如果网络掉线或者延时过高则会影响正常的使用;现有的场景联动功能过分依赖在线环境的问题,无法实现在离线的环境下应用。
针对上述的问题,目前尚未提出有效的解决方案。
发明内容
本公开实施例提供了一种智能组网方法及系统,以至少解决现有的场景联动功能过分依赖在线环境,无法在离线的环境下实现场景联动的技术问题。
根据本公开实施例的一个方面,提供了一种智能组网系统,包括:智能设备,与电子设备信号连接,上述智能设备中设置有第一无线网状网络芯片,上述智能设备被设置为依据上述第一无线网状网络芯片接收到的远程控制指令控制上述电子设备;网关设备,与上述第一无线网状网络芯片连接,被设置为将经路由设备传输的上述远程控制指令发送至上述第一无线网状网络芯片;上述路由设备,分别与上述网关设备、服务器连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述网关设备。
根据本公开实施例的另一方面,还提供了一种智能组网系统,包括:智能设备,与电子设备信号连接,上述智能设备中设置有第一无线网状网络芯片和无线网络Wi-Fi芯片,上述Wi-Fi芯片被设置为将经路由设备传输的远程控制指令发送至上述 第一无线网状网络芯片,上述智能设备被设置为依据上述远程控制指令控制电子设备;上述路由设备,分别与上述Wi-Fi芯片、服务器连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述Wi-Fi芯片。
根据本公开实施例的另一方面,还提供了一种智能组网方法,应用于智能组网系统中,上述智能组网系统中包括设置有第一无线网状网络芯片的智能设备,包括:经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一无线网状网络芯片;通过上述智能设备依据接收到的上述远程控制指令控制电子设备。
根据本公开实施例的另一方面,还提供了一种智能组网方法,包括:智能设备接收网关设备发送的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片,上述网关设备被设置为转发来自服务器的上述远程控制指令至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
根据本公开实施例的另一方面,还提供了一种智能组网方法,包括:智能设备接收来自服务器的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片和无线网络WI-FI芯片,上述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
根据本公开实施例的另一方面,还提供了一种存储介质,上述存储介质包括存储的程序,其中,在上述程序运行时控制上述存储介质所在设备执行任意一项上述的智能组网方法。
根据本公开实施例的另一方面,还提供了一种处理器,上述处理器被设置为运行程序,其中,上述程序运行时执行任意一项上述的智能组网方法。
在本公开实施例中,采用离线场景下实现联动控制的方式,通过智能设备,与电子设备信号连接,上述智能设备中设置有第一无线网状网络芯片,上述智能设备被设置为依据上述第一无线网状网络芯片接收到的远程控制指令控制上述电子设备;网关设备,与上述第一无线网状网络芯片连接,被设置为将经路由设备传输的上述远程控制指令发送至上述第一无线网状网络芯片;上述路由设备,分别与上述网关设备、服务器连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述网关设备,达到了通过智能组网的方式,在离线的环境下实现场景联动功能的目的,从而实现了离线联动控制设备,提高用户体验的技术效果,进而解决了现有的场景联动功能过分依赖在线环境,无法在离线的环境下实现场景联动的技术问题。
附图说明
此处所说明的附图用来提供对本公开的进一步理解,构成本公开的一部分,本公开的示意性实施例及其说明用于解释本公开,并不构成对本公开的不当限定。在附图中:
图1是根据本公开实施例的一种智能组网系统的结构示意图;
图2是根据本公开实施例的一种可选的智能组网系统的mesh组网示意图;
图3是根据本公开实施例的一种可选的场景联动模式的示意图;
图4是根据本公开实施例的一种智能组网方法的流程图;
图5是根据本公开实施例的另一种智能组网方法的流程图;
图6是根据本公开实施例的又一种智能组网方法的流程图;
图7是根据本公开实施例的一种智能组网装置的示意图。
具体实施方式
为了使本技术领域的人员更好地理解本公开方案,下面将结合本公开实施例中的附图,对本公开实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本公开一部分的实施例,而不是全部的实施例。基于本公开中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都应当属于本公开保护的范围。
需要说明的是,本公开的说明书和权利要求书及上述附图中的术语“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。应该理解这样使用的数据在适当情况下可以互换,以便这里描述的本公开的实施例能够以除了在这里图示或描述的那些以外的顺序实施。此外,术语“包括”和“具有”以及他们的任何变形,意图在于覆盖不排他的包含,例如,包含了一系列步骤或单元的过程、方法、系统、产品或设备不必限于清楚地列出的那些步骤或单元,而是可包括没有清楚地列出的或对于这些过程、方法、产品或设备固有的其它步骤或单元。
首先,为方便理解本公开实施例,下面将对本公开中所涉及的部分术语或名词进行解释说明:
无线网状网络(mesh):也称无线网格网络,是一个无线多跳网络,由ad hoc网络发展而来,是解决“最后一公里”问题的关键技术之一。
实施例1
根据本公开实施例,提供了一种智能组网系统的实施例,图1是根据本公开实施例的一种智能组网系统的结构示意图,如图1所示,上述智能组网系统,包括:智能开关10、电子设备12、第一无线网状网络芯片101、网关设备14、路由设备16、服务器18,其中:
智能设备10,与电子设备12信号连接,上述智能设备10中设置有第一无线网状网络芯片101,上述智能设备被设置为依据上述第一无线网状网络芯片接收到的远程控制指令控制上述电子设备;网关设备14,与上述第一无线网状网络芯片101连接,被设置为将经路由设备传输的上述远程控制指令发送至上述第一无线网状网络芯片;上述路由设备16,分别与上述网关设备14、服务器18连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述网关设备。
在一种可选的实施例中,上述智能设备包括智能开关,上述第一无线网状网络芯片可以为蓝牙网状网络mesh芯片。
在一些实施方式中,上述智能开关可以为一种使用轻触按键的开关,上述智能开关通过添加第一无线网状网络芯片,利用蓝牙网状网络芯片的组网技术,实现离线环境的场景联动,并且不用同时并发多条控制指令。
在一些实施方式中,上述网关设备为一个Wi-Fi转蓝牙网状网络mesh的网关,通过智能开关与网关设备即可实现远程在线的控制和远程离线控制;整个智能组网系统在不联网(即离线)的情况下,利用蓝牙网状网络mesh自组网实现控制。
在一些实施方式中,上述网关设备的Wi-Fi端与路由设备(路由器)相连,配合多个电子设备中的应用程序、服务器完成远程控制。作为一种可选的实施例,上述网关设备的蓝牙网状网络mesh芯片也可以作为无线网状网络的管理者,维护无线网状网络中的各电子设备的重要参数。
在本公开实施例中,采用离线场景下实现联动控制的方式,通过智能设备,与电子设备信号连接,上述智能设备中设置有第一无线网状网络芯片,上述智能设备被设置为依据上述第一无线网状网络芯片接收到的远程控制指令控制上述电子设备;网关设备,与上述第一无线网状网络芯片连接,被设置为将经路由设备传输的上述远程控制指令发送至上述第一无线网状网络芯片;上述路由设备,分别与上述网关设备、服务器连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述网关设备,达到了通过智能组网的方式,在离线的环境下实现场景联动功能的目的,从而实现了离线联动控制设备,提高用户体验的技术效果,进而解决了现有的场景联动功 能过分依赖在线环境,无法在离线的环境下实现场景联动的技术问题。
在一种可选的实施例中,智能开关10通过以下方式与电子设备12信号连接:上述电子设备中均设置有第二无线网状网络芯片,上述电子设备中的第二无线网状网络芯片与上述智能设备中的第一无线网状网络芯片信号连接。
在一些实施方式中,,上述第二无线网状网络芯片可以为蓝牙网状网络mesh芯片。
在一种可选的实施例中,在上述电子设备为多个情况下,上述多个电子设备中的每个电子设备均预先分配有单播地址,上述每个电子设备被设置为依据上述单播地址确定与上述每个电子设备对应的上述远程控制指令。
如图2所示,可以但不限于通过无线网状网络管理者将具有第二无线网状网络芯片的多个电子设备(设备1、设备2、设备3……设备N)配置进入同一个无线网状网络,并为添加进入无线网状网络的每个电子设备分配有单播地址,每个电子设备中下载的控制应用程序APP存储有上述单播地址,以实现在接收到远程控制指令的情况下,依据上述单播地址确定与上述每个电子设备对应的远程控制指令。
在一种可选的实施例中,上述系统还包括:电子设备,被设置为接收用户自定义设置的场景联动模式,其中,处于上述场景联动模式下的多个上述电子设备配置有相同的组播地址;上述智能设备,还与上述电子设备连接,被设置为在上述场景联动模式被触发的情况下,依据上述远程控制指令控制处于上述场景联动模式下的多个上述电子设备。
在一些实施方式中,如图3所示,在电子设备为多个的情况下,多个电子设备包括但不限于:设备1、设备2、设备3、设备4、设备5、设备6……设备N、设备M、设备P;用户可以通过该多个电子设备中下载的控制APP自定义设置场景联动模式(例如,离线场景联动模式),其中,该场景联动模式包括以下至少之一:回家模式、离家模式、睡眠模式。
一种可选的实施例中,处于每一种场景联动模式下多个电子设备配置有相同的组播地址,如图2所示,处于回家模式的设备1、设备2……设备N均配置组播地址1;处于离家模式的设备3、设备4……设备M均配置组播地址2;处于睡眠模式的设备5、设备6……设备P均配置组播地址3。
在上述可选的实施例中上述智能开关可以在上述场景联动模式被触发的情况下,通过上述组播地址发送远程控制指令至处于上述场景联动模式下的多个电子设备,并且,多个电子设备接收到远程控制指令之后输出响应信号,还可以通过服务器继续进 行指令控制。
仍如图3所示,在上述睡眠模式被触发的情况下,则通过组播地址3发送远程控制指令至处于睡眠模式下的多个电子设备(设备5、设备6……设备P)。
根据本公开实施例,还提供了一种智能组网系统的实施例,上述智能组网系统包括:智能设备,与电子设备信号连接,上述智能设备中设置有第一无线网状网络芯片和无线网络Wi-Fi芯片,上述Wi-Fi芯片被设置为将经路由设备传输的远程控制指令发送至上述第一无线网状网络芯片,上述智能设备被设置为依据上述远程控制指令控制电子设备;上述路由设备,分别与上述Wi-Fi芯片、服务器连接,被设置为将接收到的来自上述服务器的上述远程控制指令传输至上述Wi-Fi芯片。
在一种可选的实施例中,上述智能设备包括智能开关。
在一种可选的实施例中,上述智能开关还通过设置WI-FI芯片集成开关和网关的功能,上述WI-FI芯片与上述服务器连接;在一些实施方式中,上述智能开关通过设置WI-FI芯片,可以实现集成开关和网关的功能,即该智能开关即是开关又是网关,可以直接通过WI-FI芯片接收来自上述服务器的远程控制指令,并将接收到的上述远程控制指令传输至第一无线网状网络芯片。
需要说明的是,本公开中的图1至图2中所示的智能组网系统的具体结构仅是示意,在具体应用时,本公开中的智能组网系统可以比图1至图2所示的智能组网系统具有多或少的结构。
仍需要说明的是,以下任意一种可选的或优选的智能组网方法,均可以在本实施例所提供的智能组网系统中执行或实现。
实施例2
根据本公开实施例,提供了一种智能组网方法的实施例,需要说明的是,在附图的流程图示出的步骤可以在诸如一组计算机可执行指令的计算机系统中执行,并且,虽然在流程图中示出了逻辑顺序,但是在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤。
本公开中的智能组网方法可以应用于智能组网系统中,上述智能组网系统中包括设置有第一蓝牙网状网络芯片的智能设备,图4是根据本公开实施例的一种智能组网方法的流程图,如图4所示,该方法包括如下步骤:
步骤S102,经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;
步骤S104,经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一蓝牙网状网络芯片;
步骤S106,通过上述智能设备依据接收到的上述远程控制指令控制电子设备。
在一些实施方式中,上述智能设备可以为智能开关,上述智能开关可以为一种使用轻触按键的开关,上述智能开关通过添加第一蓝牙网状网络芯片,利用蓝牙蓝牙网状网络芯片的组网技术,实现离线环境的场景联动,并且不用同时并发多条控制指令。
在一些实施方式中,上述网关设备为一个Wi-Fi转蓝牙网状网络mesh的网关,通过智能开关与网关设备即可实现远程在线的控制和远程离线控制;整个智能组网系统在不联网(即离线)的情况下,利用蓝牙网状网络mesh自组网实现控制。
在一些实施方式中,上述网关设备的Wi-Fi端与路由设备(路由器)相连,配合多个电子设备中的应用程序、服务器完成远程的控制。作为一种可选的实施例,上述网关设备的蓝牙网状网络mesh芯片也可以作为网状网络的管理者,维护网状网络中的各电子设备的重要参数。
在本公开实施例中,采用离线场景下实现联动控制的方式,经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一蓝牙网状网络芯片;通过上述智能设备依据接收到的上述远程控制指令控制电子设备,达到了通过智能组网的方式,在离线的环境下实现场景联动功能的目的,从而实现了离线联动控制设备,提高用户体验的技术效果,进而解决了现有的场景联动功能过分依赖在线环境,无法在离线的环境下实现场景联动的技术问题。
在一种可选的实施例中,在上述电子设备为多个情况下,在经上述智能组网系统中的路由设备接收来自服务器的远程控制指令之前,上述方法还包括:
步骤S100,预先为多个上述电子设备中的每个电子设备分配单播地址,其中,上述每个电子设备被设置为依据上述单播地址确定对应的上述远程控制指令。
可选的,在本公开实施例中,可以但不限于通过无线网状网络的管理者将具有第二蓝牙网状网络芯片的多个电子设备配置进入同一个无线网状网络,并为添加进入无线网状网络的每个电子设备分配有单播地址,每个电子设备中下载的控制应用程序APP存储有上述单播地址,以实现在接收到远程控制指令的情况下,依据上述单播地址确定与上述每个电子设备对应的远程控制指令。
在一种可选的实施例中,在上述电子设备为多个情况下,上述方法还包括:
步骤S202,预先为上述电子设备设置场景联动模式,其中,处于上述场景联动模式下的多个上述电子设备配置有相同的组播地址;
步骤S204,在上述场景联动模式被触发的情况下,依据上述远程控制指令控制处于上述场景联动模式下的多个上述电子设备。
在一些实施方式中,如图3所示,多个电子设备包括但不限于:设备1、设备2、设备3、设备4、设备5、设备6……设备N、设备M、设备P;用户可以通过该多个电子设备中下载的控制APP自定义设置场景联动模式(例如,离线场景联动模式),其中,该场景联动模式包括以下至少之一:回家模式、离家模式、睡眠模式。
一种可选的实施例中,处于每一种场景联动模式下多个电子设备配置有相同的组播地址,如图2所示,处于回家模式的设备1、设备2……设备N均配置组播地址1;处于离家模式的设备3、设备4……设备M均配置组播地址2;处于睡眠模式的设备5、设备6……设备P均配置组播地址3。
在上述可选的实施例中上述智能开关可以在上述场景联动模式被触发的情况下,通过上述组播地址发送远程控制指令至处于上述场景联动模式下的多个电子设备,并且,多个电子设备接收到远程控制指令之后输出响应信号,还可以通过服务器继续进行指令控制。
仍如图3所示,在上述睡眠模式被触发的情况下,则通过组播地址3发送远程控制指令至处于睡眠模式下的多个电子设备(设备5、设备6……设备P)。
根据本公开实施例,还提供了另一种智能组网方法的实施例,图5是根据本公开实施例的另一种智能组网方法的流程图,如图5所示,包括:
步骤S302,智能设备接收网关设备发送的远程控制指令,其中,上述智能设备中设置有第一蓝牙网状网络芯片,上述网关设备被设置为转发来自服务器的上述远程控制指令至上述第一蓝牙网状网络芯片;
步骤S304,上述智能设备依据上述远程控制指令控制电子设备。
在本公开实施例中,采用离线场景下实现联动控制的方式,通过智能设备接收网关设备发送的远程控制指令,其中,上述智能设备中设置有第一蓝牙网状网络芯片,上述网关设备被设置为转发来自服务器的上述远程控制指令至上述第一蓝牙网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备,达到了通过智能组网的方式,在离线的环境下实现场景联动功能的目的,从而实现了离线联动控制设备,提高用户体验的技术效果,进而解决了现有的场景联动功能过分依赖在线环境,无法在离 线的环境下实现场景联动的技术问题。
根据本公开实施例,还提供了又一种智能组网方法的实施例,图6是根据本公开实施例的又一种智能组网方法的流程图,如图6所示,包括:
步骤S402,智能设备接收来自服务器的远程控制指令,其中,上述智能设备中设置有第一蓝牙网状网络芯片和无线网络WI-FI芯片,上述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至上述第一蓝牙网状网络芯片;
步骤S404,上述智能设备依据上述远程控制指令控制电子设备。
在本公开实施例中,采用离线场景下实现联动控制的方式,通过智能设备接收来自服务器的远程控制指令,其中,上述智能设备中设置有第一蓝牙网状网络芯片和无线网络WI-FI芯片,上述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至上述第一蓝牙网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备,达到了通过智能组网的方式,在离线的环境下实现场景联动功能的目的,从而实现了离线联动控制设备,提高用户体验的技术效果,进而解决了现有的场景联动功能过分依赖在线环境,无法在离线的环境下实现场景联动的技术问题。
此外,仍需要说明的是,本实施例的可选或优选实施方式可以参见实施例1中的相关描述,此处不再赘述。
实施例3
根据本公开实施例,还提供了一种用于实施上述智能组网方法的装置实施例,图7是根据本公开实施例的一种智能组网装置的结构示意图,如图7所示,上述智能组网装置,包括:接收模块70、发送模块72和控制模块74,其中:
接收模块70,被设置为经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;发送模块72,被设置为经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一蓝牙网状网络芯片;控制模块74,被设置为通过上述智能设备依据接收到的上述远程控制指令控制电子设备。
需要说明的是,上述各个模块是可以通过软件或硬件来实现的,例如,对于后者,可以通过以下方式实现:上述各个模块可以位于同一处理器中;或者,上述各个模块以任意组合的方式位于不同的处理器中。
此处需要说明的是,上述接收模块70、发送模块72和控制模块74对应于实施例2中的步骤S102至步骤S106,上述模块与对应的步骤所实现的实例和应用场景相同,但不限于上述实施例2所公开的内容。需要说明的是,上述模块作为装置的一部分可 以运行在计算机终端中。
需要说明的是,本实施例的可选或优选实施方式可以参见实施例1和2中的相关描述,此处不再赘述。
上述的智能组网装置还可以包括处理器和存储器,上述接收模块70、发送模块72和控制模块74等均作为程序单元存储在存储器中,由处理器执行存储在存储器中的上述程序单元来实现相应的功能。
处理器中包含内核,由内核去存储器中调取相应的程序单元,上述内核可以设置一个或以上。存储器可能包括计算机可读介质中的非永久性存储器,随机存取存储器(RAM)和/或非易失性内存等形式,如只读存储器(ROM)或闪存(flash RAM),存储器包括至少一个存储芯片。
根据本公开实施例,还提供了一种存储介质实施例。可选地,在本实施例中,上述存储介质包括存储的程序,其中,在上述程序运行时控制上述存储介质所在设备执行上述任意一种智能组网方法。
可选地,在本实施例中,上述存储介质可以位于计算机网络中计算机终端群中的任意一个计算机终端中,或者位于移动终端群中的任意一个移动终端中,上述存储介质包括存储的程序。
可选地,在程序运行时控制存储介质所在设备执行以下功能:经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一无线网状网络芯片;通过上述智能设备依据接收到的上述远程控制指令控制电子设备。
可选地,在程序运行时控制存储介质所在设备执行以下功能:智能设备接收网关设备发送的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片,上述网关设备被设置为转发来自服务器的上述远程控制指令至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
可选地,在程序运行时控制存储介质所在设备执行以下功能:智能设备接收来自服务器的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片和无线网络WI-FI芯片,上述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
根据本公开实施例,还提供了一种处理器实施例。可选地,在本实施例中,上述 处理器被设置为运行程序,其中,上述程序运行时执行上述任意一种智能组网方法。
本公开实施例提供了一种设备,设备包括处理器、存储器及存储在存储器上并可在处理器上运行的程序,处理器执行程序时实现以下步骤:经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一无线网状网络芯片;通过上述智能设备依据接收到的上述远程控制指令控制电子设备。
可选地,处理器执行程序时实现以下步骤:智能设备接收网关设备发送的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片,上述网关设备被设置为转发来自服务器的上述远程控制指令至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
可选地,处理器执行程序时实现以下步骤:智能设备接收来自服务器的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片和无线网络WI-FI芯片,上述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
本公开还提供了一种计算机程序产品,当在数据处理设备上执行时,适于执行初始化有如下方法步骤的程序:经上述智能组网系统中的路由设备接收来自服务器的远程控制指令;经上述智能组网系统中的网关设备将上述远程控制指令发送至上述第一无线网状网络芯片;通过上述智能设备依据接收到的上述远程控制指令控制电子设备。
可选地,计算机程序产品执行程序时实现以下步骤:智能设备接收网关设备发送的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片,上述网关设备被设置为转发来自服务器的上述远程控制指令至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
可选地,计算机程序产品执行程序时实现以下步骤:智能设备接收来自服务器的远程控制指令,其中,上述智能设备中设置有第一无线网状网络芯片和无线网络WI-FI芯片,上述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至上述第一无线网状网络芯片;上述智能设备依据上述远程控制指令控制电子设备。
上述本公开实施例序号仅仅为了描述,不代表实施例的优劣。
在本公开的上述实施例中,对各个实施例的描述都各有侧重,某个实施例中没有详述的部分,可以参见其他实施例的相关描述。
在本公开所提供的几个实施例中,应该理解到,所揭露的技术内容,可通过其它 的方式实现。其中,以上所描述的装置实施例仅仅是示意性的,例如单元的划分,可以为一种逻辑功能划分,实际实现时可以有另外的划分方式,例如多个单元或组件可以结合或者可以集成到另一个系统,或一些特征可以忽略,或不执行。另一点,所显示或讨论的相互之间的耦合或直接耦合或通信连接可以是通过一些接口,单元或模块的间接耦合或通信连接,可以是电性或其它的形式。
所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个单元上。可以根据实际的需要选择其中的部分或者全部单元来实现本实施例方案的目的。
另外,在本公开各个实施例中的各功能单元可以集成在一个处理单元中,也可以是各个单元单独物理存在,也可以两个或两个以上单元集成在一个单元中。上述集成的单元既可以采用硬件的形式实现,也可以采用软件功能单元的形式实现。
所述集成的单元如果以软件功能单元的形式实现并作为独立的产品销售或使用时,可以存储在一个计算机可读取存储介质中。基于这样的理解,本公开的技术方案本质上或者说对相关技术做出贡献的部分或者该技术方案的全部或部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可为个人计算机、服务器或者网络设备等)执行本公开各个实施例所述方法的全部或部分步骤。而前述的存储介质包括:U盘、只读存储器(ROM,Read-Only Memory)、随机存取存储器(RAM,Random Access Memory)、移动硬盘、磁碟或者光盘等各种可以存储程序代码的介质。
以上所述仅是本公开的优选实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本公开原理的前提下,还可以做出若干改进和润饰,这些改进和润饰也应视为本公开的保护范围。

Claims (13)

  1. 一种智能组网系统,包括:
    智能设备,与电子设备信号连接,所述智能设备中设置有第一无线网状网络芯片,所述智能设备被设置为依据所述第一无线网状网络芯片接收到的远程控制指令控制所述电子设备;
    网关设备,与所述第一无线网状网络芯片连接,被设置为将经路由设备传输的所述远程控制指令发送至所述第一无线网状网络芯片;
    所述路由设备,分别与所述网关设备、服务器连接,被设置为将接收到的来自所述服务器的所述远程控制指令传输至所述网关设备。
  2. 根据权利要求1所述的系统,其中,所述电子设备中均设置有第二无线网状网络芯片,所述电子设备中的第二无线网状网络芯片与所述智能设备中的第一无线网状网络芯片信号连接。
  3. 根据权利要求1所述的系统,其中,在所述电子设备为多个情况下,每个所述电子设备均预先分配有单播地址,每个所述电子设备被设置为依据所述单播地址确定对应的所述远程控制指令。
  4. 根据权利要求1所述的系统,其中,所述系统还包括:
    电子设备,被设置为接收用户自定义设置的场景联动模式,其中,处于所述场景联动模式下的多个所述电子设备配置有相同的组播地址;
    所述智能设备,还与所述电子设备连接,被设置为在所述场景联动模式被触发的情况下,依据所述远程控制指令控制处于所述场景联动模式下的多个所述电子设备。
  5. 根据权利要求1所述的系统,其中,所述智能设备包括智能开关。
  6. 一种智能组网系统,包括:
    智能设备,与电子设备信号连接,所述智能设备中设置有第一无线网状网络芯片和无线网络Wi-Fi芯片,所述Wi-Fi芯片被设置为将经路由设备传输的远程控制指令发送至所述第一无线网状网络芯片,所述智能设备被设置为依据所述远程控制指令控制电子设备;
    所述路由设备,分别与所述Wi-Fi芯片、服务器连接,被设置为将接收到的来自所述服务器的所述远程控制指令传输至所述Wi-Fi芯片。
  7. 一种智能组网方法,应用于智能组网系统中,所述智能组网系统中包括设置有第一无线网状网络芯片的智能设备,包括:
    经所述智能组网系统中的路由设备接收来自服务器的远程控制指令;
    经所述智能组网系统中的网关设备将所述远程控制指令发送至所述第一无线网状网络芯片;
    通过所述智能设备依据接收到的所述远程控制指令控制电子设备。
  8. 根据权利要求7所述的方法,其中,在所述电子设备为多个情况下,在经所述智能组网系统中的路由设备接收来自服务器的远程控制指令之前,所述方法还包括:
    预先为多个所述电子设备中的每个电子设备分配单播地址,其中,所述每个电子设备被设置为依据所述单播地址确定对应的所述远程控制指令。
  9. 根据权利要求7所述的方法,其中,在所述电子设备为多个情况下,所述方法还包括:
    预先为所述电子设备设置场景联动模式,其中,处于所述场景联动模式下的多个所述电子设备配置有相同的组播地址;
    在所述场景联动模式被触发的情况下,依据所述远程控制指令控制处于所述场景联动模式下的多个所述电子设备。
  10. 一种智能组网方法,包括:
    智能设备接收网关设备发送的远程控制指令,其中,所述智能设备中设置有第一无线网状网络芯片,所述网关设备被设置为转发来自服务器的所述远程控制指令至所述第一无线网状网络芯片;
    所述智能设备依据所述远程控制指令控制电子设备。
  11. 一种智能组网方法,包括:
    智能设备接收来自服务器的远程控制指令,其中,所述智能设备中设置有第一无线网状网络芯片和无线网络WI-FI芯片,所述WI-FI芯片被设置为将接收到的来自服务器的远程控制指令,转发至所述第一无线网状网络芯片;
    所述智能设备依据所述远程控制指令控制电子设备。
  12. [根据细则91更正 31.08.2020] 
    一种存储介质,所述存储介质包括存储的程序,其中,在所述程序运行时控制所述存储介质所在设备执行权利要求7至10中任意一项所述的智能组网方法。
  13. [根据细则91更正 31.08.2020] 
    一种处理器,所述处理器被设置为运行程序,其中,所述程序运行时执行权利要求7至10中任意一项所述的智能组网方法。
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