WO2019227388A1 - 智能灯控制方法、装置及系统 - Google Patents

智能灯控制方法、装置及系统 Download PDF

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Publication number
WO2019227388A1
WO2019227388A1 PCT/CN2018/089244 CN2018089244W WO2019227388A1 WO 2019227388 A1 WO2019227388 A1 WO 2019227388A1 CN 2018089244 W CN2018089244 W CN 2018089244W WO 2019227388 A1 WO2019227388 A1 WO 2019227388A1
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WIPO (PCT)
Prior art keywords
control instruction
detection component
target
smart light
control
Prior art date
Application number
PCT/CN2018/089244
Other languages
English (en)
French (fr)
Inventor
彭灵
陈辉萍
钟城广
盘国权
范高如
李鑫
陈清泉
黄立旺
王增均
朱荆莲
李文彬
姚化桥
俞伟良
陈海裕
杨金桂
李文和
李国凯
郭飞锋
Original Assignee
深圳市蚂蚁雄兵物联技术有限公司
深圳佳比泰智能照明股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 深圳市蚂蚁雄兵物联技术有限公司, 深圳佳比泰智能照明股份有限公司 filed Critical 深圳市蚂蚁雄兵物联技术有限公司
Priority to CN201880000627.3A priority Critical patent/CN109451882B/zh
Priority to PCT/CN2018/089244 priority patent/WO2019227388A1/zh
Publication of WO2019227388A1 publication Critical patent/WO2019227388A1/zh

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    • 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
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F8/00Arrangements for software engineering
    • G06F8/60Software deployment
    • G06F8/65Updates
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F8/00Arrangements for software engineering
    • G06F8/70Software maintenance or management
    • G06F8/71Version control; Configuration management
    • GPHYSICS
    • G08SIGNALLING
    • G08BSIGNALLING OR CALLING SYSTEMS; ORDER TELEGRAPHS; ALARM SYSTEMS
    • G08B5/00Visible signalling systems, e.g. personal calling systems, remote indication of seats occupied
    • G08B5/22Visible signalling systems, e.g. personal calling systems, remote indication of seats occupied using electric transmission; using electromagnetic transmission
    • G08B5/36Visible signalling systems, e.g. personal calling systems, remote indication of seats occupied using electric transmission; using electromagnetic transmission using visible light sources
    • 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
    • Y02B20/40Control techniques providing energy savings, e.g. smart controller or presence detection

Definitions

  • the present disclosure relates to the field of intelligent control technology, and in particular, to a method, a device, and a system for controlling intelligent lights.
  • the present disclosure provides a smart light control method, device and system.
  • an embodiment of the present disclosure provides a smart light control method applied to a control terminal that is communicatively connected to at least one smart light and at least one detection component; each smart light is associated with at least one detection component, and each detection component It is configured to detect the air state data of the surrounding environment, and when the air state data reaches a preset condition, a corresponding alarm signal is generated and sent to the control terminal, so that the control terminal associates the detection terminal with the detection component according to the alarm signal.
  • the control terminal For each smart light, the control terminal stores a first control instruction set for controlling the smart light, and for each alarm signal generated by a detection component associated with the smart light, the first control instruction set is provided with A control instruction corresponding to the alarm signal, through which the smart lamp can be controlled to achieve a light effect corresponding to the alarm signal; the method includes:
  • the alarm signal including an identification of the detection component
  • an embodiment of the present disclosure provides a smart light control device, which is applied to a control terminal that is communicatively connected to at least one smart light and at least one detection component; each smart light is associated with at least one detection component, and each detection component It is configured to detect the air condition data of the surrounding environment, and when the air condition data reaches a preset condition, a corresponding alarm signal is generated and sent to a smart light associated with the detection component; for each smart light, the control terminal stores useful information For a first control instruction set for controlling the smart light, for each alarm signal generated by a detection component associated with the smart light, a control instruction corresponding to the alarm signal is set in the first control instruction set, and through the control The instruction can control the smart light to achieve the light effect corresponding to the alarm signal; the device includes:
  • a signal receiving module configured to receive an alarm signal sent by any detection component, the alarm signal including an identification of the detection component
  • the instruction set determining module is configured to determine the smart light associated with the detection component as the smart light to be controlled according to the identity of the detection component, and find the to-be-controlled in the stored at least one first control instruction set.
  • the first control instruction set of the smart light as the target set;
  • a control module configured to find a control instruction corresponding to the received alarm signal in the target set as a target control instruction, and send the target control instruction to the intelligent lamp to be controlled, so that the intelligent to be controlled is intelligent
  • the lamp achieves a light effect corresponding to the received alarm signal by executing the target control instruction.
  • an embodiment of the present disclosure provides a smart light control system including a control terminal and at least one smart light and at least one detection component communicatively connected to the control terminal.
  • the control terminal includes a memory, a processor, and the present disclosure
  • the smart light control device provided in the embodiment is stored in the memory and is controlled and executed by the processor to control the smart light according to an alarm signal sent by the detection component.
  • a smart light control method, device, and system are provided.
  • a control terminal can determine a corresponding target control instruction according to an alarm signal sent by a detection component, and control the smart light to implement a corresponding light effect through the target control instruction. Alarm when the air condition data meets the preset conditions.
  • the user can know the air condition of the environment where the smart lamp is located on the one hand, and on the other hand, the functions of the smart lamp are richer, which improves the user experience.
  • FIG. 1 is a connection block diagram of a smart light control system according to an embodiment of the present disclosure
  • FIG. 2 is a schematic block diagram of a control terminal according to an embodiment of the present disclosure
  • FIG. 3 is a schematic flowchart of a smart light control method according to an embodiment of the present disclosure
  • FIG. 4 is another schematic flowchart of a smart light control method according to an embodiment of the present disclosure.
  • FIG. 5 is another schematic flowchart of a smart light control method according to an embodiment of the present disclosure.
  • FIG. 6 is a functional module block diagram of a smart light control device according to an embodiment of the present disclosure.
  • Icons 10-smart light control system; 100-control terminal; 110-smart light control device; 111-signal receiving module; 112-instruction set determination module; 113-control module; 114-first prompt module; 115-first Configuration module; 116-first association module; 117-instruction set creation module; 118-second prompt module; 119-second configuration module; 1110- second association module; 1111-instruction set update module; 1112-version update module 120-memory; 130-processor; 140-communication unit; 150-display unit; 200-smart light; 300-detection component; 400-remote server.
  • FIG. 1 is a connection block diagram of a smart light control system 10 according to an embodiment of the present disclosure.
  • the smart light control system 10 includes a control terminal 100 and at least one smart light 200 and at least one detection component 300 that are communicatively connected with the control terminal 100.
  • the control terminal 100 may be, but is not limited to, smart devices such as a smart phone, a tablet computer, a Personal Digital Assistant (PDA), and a mobile Internet device (Mobile ID).
  • PDA Personal Digital Assistant
  • Mobile ID mobile Internet device
  • control terminal 100 may be installed with an application (Application, APP) for controlling the smart light 200 and the detection component 300, and the APP may be used to send the detection component 300 and / or the smart light 200. Data is processed and parsed.
  • the APP may be downloaded from a corresponding remote server and installed in the control terminal 100.
  • the control terminal 100 is in communication connection with the remote server.
  • the user can search the smart light 200 and detection component 300 in the environment through the APP, and select the corresponding smart light 200 and detection component 300 to add to the pre-established communication group.
  • Each communication group is provided with a The identity identified by the APP is used to uniquely represent the communication packet.
  • members in each communication group (for example, smart light 200 or detection component 300) have an identity that can uniquely represent the member, and the data sent by any member in any communication group carries the identity of the member And the identity of the communication packet, so that the control terminal 100 can determine the sender of the received data, and then determine what kind of processing should be performed on the data.
  • each smart light 200 is associated with at least one detection component 300, and the control terminal 100 stores an association relationship between the smart light 200 and the detection component 300 that are associated with each other.
  • Each detection component 300 is configured to detect the air state data of the environment in which it is located. When the detected air state data reaches a preset condition, a corresponding alarm signal is generated and sent to the control terminal 100, so that the control terminal 100 The alarm signal controls the smart light 200 associated with the detection component 300 and changes the light effect of the smart light 200, thereby achieving the effect of alerting the user.
  • the preset condition may be a preset value or lower than a preset value, or may belong to a preset range, etc., and may be flexibly set according to actual needs, which is not limited in this embodiment.
  • the processor 130 or processing chip used may also change.
  • the type of the processor 130 used by the detection component 300 is changed When changed, the format of the alarm signal generated by it will also change.
  • the type of the processor 130 used by the smart light 200 is changed, the format of the control instruction it can recognize also varies. Therefore, in order to ensure that the control terminal 100 can accurately determine the recognizable control instruction to be sent to the smart lamp 200 when receiving the alarm signals generated by the different types of detection components 300, it is necessary to establish different types of detection components 300 in advance. Correspondence between the generated alarm signals and control instructions for controlling different types of smart lights 200.
  • the control terminal 100 stores a first control instruction set for controlling the smart light 200, and for each alarm signal generated by the detection component 300 associated with the smart light 200, the A control instruction corresponding to the alarm signal is set in the first control instruction set, and the smart light 200 can be controlled by the control instruction to achieve a light effect corresponding to the alarm signal.
  • FIG. 2 it is a schematic block diagram of a control terminal 100 according to an embodiment of the present disclosure.
  • the control terminal 100 includes a memory 120, a processor 130, and a communication unit 140.
  • the smart light control system 10 includes at least one software function module that can be stored in the memory 120 in the form of software or firmware or fixed in an operating system (OS) of the control terminal 100.
  • the processor 130 is configured to execute an executable module stored in the memory 120 when an execution instruction is received.
  • the memory 120 may be, but is not limited to, Random Access Memory (RAM), Read-Only Memory (ROM), Programmable Read-Only Memory (PROM) , Erasable Programmable Read-Only Memory (EPROM), Electrically Erasable Read-Only Memory (Electric Erasable Programmable Read-Only Memory, EEPROM), etc.
  • RAM Random Access Memory
  • ROM Read-Only Memory
  • PROM Programmable Read-Only Memory
  • EPROM Erasable Programmable Read-Only Memory
  • EEPROM Electrically Erasable Read-Only Memory
  • the processor 130 may be an integrated circuit chip and has a signal processing capability.
  • the above processor 130 may be a general-purpose processor, and may specifically include a central processing unit (CPU), a network processor (NP), and the like; it may also be a digital signal processor (DSP), an application specific integrated circuit () ASIC, Field Programmable Gate Array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components.
  • the processor 130 may implement the methods, steps, and logic block diagrams disclosed in the embodiments of the present disclosure.
  • the general-purpose processor may be a microprocessor or any conventional processor.
  • the communication unit 140 is configured to establish a communication connection between the control terminal 100 and other devices (such as the smart light 200, the detection component 300, the remote server 400, etc.) to realize data interaction.
  • the communication unit 140 may include a Bluetooth communication component, and the control terminal 100 may communicate with the detection component 300 and the smart light 200 through the Bluetooth communication component.
  • the communication unit 140 may further include a Wi-Fi component to communicate through The Wi-Fi component is connected to the Internet to communicate with the remote server 400.
  • control terminal 100 may also have more or fewer components than that shown in FIG. 2.
  • it may further include a display unit 150 and the like.
  • control terminal 100 may also have A completely different configuration from that shown in FIG. 2. It is worth noting here that each component shown in FIG. 2 may be implemented by software, hardware, or a combination thereof, which is not limited in this embodiment.
  • the components included in the smart lamp 200, the detection component 300, and the remote server 400 and the connection relationship between the components are similar to those of the control terminal 100, and will not be described in detail here.
  • the smart light 200 further includes a light emitting device capable of being controlled by the corresponding processor 130
  • the detection component 300 further includes a measurement element configured to detect the air state data and configured to convert the data measured by the measurement element into an electrical signal Signal conversion circuit.
  • FIG. 3 it is a schematic flowchart of a smart light control method provided by an embodiment of the present disclosure, which is applied to the control terminal 100 shown in FIG. 2. The detailed process of the method is described below.
  • Step S301 Receive an alarm signal sent by any detection component 300, where the alarm signal includes an identity of the detection component 300.
  • the detection component 300 is configured to detect the air state data of the environment in real time, wherein the air state data may be the content of a specific substance (such as carbon monoxide, carbon dioxide, particulate matter, etc.) in the air.
  • the detection component 300 When the detected air state data reaches a preset value, the detection component 300 generates a corresponding alarm signal, and sends the alarm signal to the control terminal 100.
  • the alarm signal includes an identification of the detection component 300, and the identification may include type information, model information, and an identifier for uniquely identifying the detection component 300.
  • the identifier may be a preset number or a number generated based on a preset algorithm. In this way, the control terminal 100 can determine the sender of the alarm signal and the type and model of the sender according to the identity carried by any of the received alarm signals.
  • the detection component 300 may be any one of a carbon dioxide sensor, a carbon monoxide sensor, a formaldehyde sensor, a combustible gas detector, and the like, and may also be any one of a humidity sensor, a PM2.5 (fine particle) detector, and the like.
  • the preset conditions can be flexibly set according to user requirements. For example, the maximum value of the foregoing data that the user can accept is used as a preset value. When the data detected by any detection component 300 exceeds the preset value, That is, the smart lamp 200 associated with the detection component 300 can be used for alarm, so as to achieve the effect of reminding the user.
  • the safety and quality of the air in the environment where the user is located can be ensured, not only avoiding safety accidents, but also improving the user experience.
  • the smart light 200 is controlled to alarm, which can ensure users in the current environment.
  • This alarm signal can be known so as to avoid the safety accident caused by this.
  • control terminal 100 may receive the alarm signal through the communication unit 140 and transfer the alarm signal to the processor 130 for processing. Steps S302-steps described below can all be executed by the processor 130.
  • Step S302 Determine the smart light 200 associated with the detection component 300 as the smart light to be controlled according to the identity of the detection component 300, and find the to-be-controlled in the stored at least one first control instruction set.
  • the first control instruction set of the smart light is used as the target set.
  • the smart light 200 has an identity, and the specific composition of the identity is similar to the identity of the detection component 300, that is, it includes type information, model information, and a unique identifier for the smart light 200. Identifier.
  • the control terminal 100 For the smart light 200 and the detection component 300 that are related to each other, the control terminal 100 records the association relationship between the smart light 200 and the detection component 300. Specifically, the identity of the smart light 200 and the identity of the detection component 300 can be specifically recorded. Record after identification of bind. Correspondingly, during implementation, the control terminal may find the identity of the smart light 200 bound to the identity of the detection component 300 in the terminal, so as to determine the smart light 200 associated with the detection component 300.
  • each first control instruction set may be stored, and each first control instruction set corresponds to one smart light 200. Therefore, the number of first control instruction sets stored in the control terminal 100 and The number of the smart lights 200 controlled by the control terminal 100 is the same.
  • the target set corresponding to the smart light 200 determined in step S302 is substantially one of the first control instruction sets stored by the control terminal 100, and the first control instruction set is corresponding to the smart light 200 .
  • each control instruction in the first control instruction set can be recognized and executed by the smart light 200, so that the smart light 200 achieves different light-emitting effects.
  • the smart light 200 and the detection component 300 may be associated when any one of the two is establishing a communication connection with the control terminal 100.
  • the smart light control method provided by the embodiment of the present disclosure may further include three steps of step S401 to step S403.
  • step S401 when it is detected that a new detection component 300 establishes a communication connection with the control terminal 100, a second configuration prompt message is output to prompt the user to configure the new detection component 300.
  • the smart light 200 can establish a communication connection with the control terminal 100 within the communication range, and when the control terminal 100 detects the access of the new smart light 200, it can output The first configuration prompt message.
  • the first configuration prompt information may include the identity of the new smart light 200 and other words that are convenient for users to understand the settings, such as "Please configure XXX", where "XXX" may be the said Identity of the new smart light 200.
  • Step S402 In response to a user operation on the first configuration prompt information, enter a first configuration interface, and display the identity of each detection component 300 currently connected to the control terminal 100 on the first configuration interface. .
  • the operation performed by the user on the first configuration prompt information may be a user's single-click, double-click, or swipe operation on the first configuration prompt information, which is not limited in this embodiment.
  • step S403 in response to the user's first selection operation, a target detection component corresponding to the first selection operation is determined in each detection component 300 displayed on the first configuration interface, and the target detection component and the new Is associated with the smart light 200 and records the association relationship between the target detection component and the new smart light 200.
  • the first selection operation refers to an operation in which the user selects the detection component 300 that needs to be alerted by the new smart light 200 on the first configuration interface, and the target detection component is selected by the user through the first selection operation. Of detection component 300.
  • the first control instruction set of each smart light 200 may be created when the smart light 200 establishes a communication connection with the control terminal 100.
  • the smart light control method provided by the embodiment of the present disclosure may further include step S404.
  • Step S404 establishing a first control instruction set corresponding to the new smart light 200, and obtaining a second control instruction set of the target detection component from the remote server, for each of the second control instruction set
  • the alarm signal adds a control instruction corresponding to the alarm signal for controlling the smart light 200 of the same type as the new smart light 200 to the established first control instruction set.
  • the smart light control method provided by the embodiment of the present disclosure may further include three steps of step S501-step S503.
  • step S501 when it is detected that a new detection component 300 establishes a communication connection with the control terminal 100, a second configuration prompt message is output to prompt the user to configure the new detection component 300.
  • the new detection component 300 may establish a communication connection with the control terminal 100 within the communication range, and when the control terminal 100 detects the access of the new detection component 300 To output the second configuration prompt.
  • the second configuration prompt information may include an identity of the new detection component 300.
  • the second configuration prompt information may further include other fields set for the convenience of the user, such as "Please set YYY", where "YYY” may be the identity of the new detection component 300.
  • Step S502 In response to a user operation on the second configuration prompt information, enter a second configuration interface, and display identification information of each smart light 200 currently connected to the control terminal 100 on the second configuration interface. .
  • step S503 in response to the second selection operation of the user, a target smart light corresponding to the second selection operation is determined in each of the smart lights 200 displayed on the second configuration interface, and the target smart light and the new The detection component 300 is associated, and the association relationship between the target smart light and the new detection component 300 is recorded.
  • the second selection operation refers to an operation in which the user selects the smart light 200 on the second configuration interface that needs to display the alarm signal of the new detection component 300, and the target smart light is the user passing the The second selection operation selects the smart light 200.
  • the smart light control method may further include steps. S504.
  • Step S504 the control terminal 100 obtains, from the remote server, a second control instruction set of the detection component 300 of the same type as the new detection component 300, and for each alarm signal in the second control instruction set, A control instruction corresponding to the alarm signal for controlling a smart light 200 of the same type as the target smart light is added to a first control instruction set of the target smart light.
  • each step shown in FIG. 4 and FIG. 5 can be executed by the processor 130 of the control terminal 100.
  • each second control instruction set has version information
  • each control instruction in the second control instruction set includes the version information and a preset flag bit.
  • the version information may be represented by a version number, or may be represented by a time when a second control instruction set was last modified, that is, may be represented by time information.
  • the remote server 400 when the remote server 400 detects a modification operation on any second control instruction set, it updates the version information of the second control instruction set.
  • the version information of the second control instruction set may be updated to the current time, that is, to modify the second control instruction set. time.
  • the smart light control method provided by the embodiment of the present disclosure may further include the following steps:
  • step S303 the control terminal 100 determines a target control instruction corresponding to the received alarm signal in the target set, and sends the target control instruction to the smart light 200, so that the smart light 200 is based on the The control instruction performs the corresponding action to give an alarm.
  • the alarm signal may include an alarm level in addition to the identity of the detection component 300.
  • the identity of the detection component 300 carried in the alarm signal is changed, and / or the alarm level is changed, the determined target control instruction is correspondingly different. Based on this, in each first control instruction set, the identification of the detection component 300 and the alarm level carried in the alarm signal can be used as keys and the control instructions can be used as values.
  • each control instruction in this embodiment may be set by a corresponding developer, for example, controlling the smart light 200 to display a specific color, controlling the smart light 200 to display a specific brightness, controlling the smart light 200 to flash at a specific frequency, etc. It may be any combination of the foregoing.
  • FIG. 6 it is a functional block diagram of a smart light control system 10 provided by an embodiment of the present disclosure.
  • the smart light control system 10 is applied to the control terminal 100 shown in FIG. 2.
  • the smart light control system 10 includes a signal receiving module 111, an instruction set determining module 112, and a control module 113.
  • the signal receiving module 111 is configured to receive an alarm signal sent by any detection component 300, and the alarm signal includes an identity of the detection component 300.
  • step S301 may be performed by the signal receiving module 111.
  • the instruction set determination module 112 is configured to determine the smart light 200 associated with the detection component 300 as a smart light to be controlled according to the identity of the detection component 300, and search in the stored at least one first control instruction set The first control instruction set of the smart lamp to be controlled is set as a target set.
  • step S302 may be executed by the instruction set determining module 112.
  • the control module 113 is configured to find a control instruction corresponding to the received alarm signal in the target set as a target control instruction, and send the target control instruction to the smart lamp to be controlled, so that the to-be-controlled The smart lamp of the smart lamp realizes a light effect corresponding to the received alarm signal by executing the target control instruction.
  • step S303 may be performed by the control module 113.
  • the smart light control system 10 may further include a first prompt module 114, a first configuration module 115, and a first association module 116.
  • the first prompt module 114 is configured to output a first configuration prompt message when detecting that a new smart light 200 establishes a communication connection with the control terminal 100 to prompt a user to configure the new smart light 200. .
  • step S401 for the description of the first prompting module 114, reference may be made to the detailed description of step S401 shown in FIG.
  • the first configuration module 115 is configured to enter a first configuration interface in response to an operation performed by the user on the first configuration prompt information, and display on the first configuration interface various communication connections currently connected to the control terminal 100.
  • the identification of the detection component 300 is configured to enter a first configuration interface in response to an operation performed by the user on the first configuration prompt information, and display on the first configuration interface various communication connections currently connected to the control terminal 100.
  • step S402 may be performed by the first configuration module 115.
  • the first association module 116 is configured to determine a target detection component corresponding to the first selection operation in each detection component 300 displayed on the first configuration interface in response to a first selection operation of the user, and assign the target A detection component is associated with the new smart light 200, and an association relationship between the target detection component and the new smart light 200 is recorded.
  • step S403 may be performed by the first association module 116.
  • the remote server 400 pre-stores a second control instruction set of each type of detection component 300, and the second control instruction set of each type of detection component 300 includes the type of detection
  • the component 300 can generate an alarm signal and a plurality of control instructions corresponding to the alarm signal and used to control different types of smart lights 200, respectively.
  • the smart light control system 10 may further include an instruction set establishing module 117.
  • the instruction set establishing module 117 is configured to, after associating the target detection component with the new smart light 200, establish a first control instruction set corresponding to the new smart light 200, and from the remote
  • the server 400 obtains a second control instruction set of the target detection component, and for each alarm signal in the second control instruction set of the target detection component, the control terminal 100 uses the alarm signal corresponding to the alarm signal for control
  • the control instruction of the smart light 200 of the same type as the new smart light 200 is added to the established first control instruction set.
  • the smart light control system 10 may further include a second prompt module 118, a second configuration module 119, and a second association module 1110.
  • the second prompt module 118 is configured to output a second configuration prompt message when detecting that a new detection component 300 establishes a communication connection with the control terminal 100 to prompt the user to configure the new detection component 300 .
  • step S501 may be performed by the second prompting module 118.
  • the second configuration module 119 is configured to respond to a user's operation on the second configuration prompt information, enter a second configuration interface, and display on the second configuration interface various communication connections currently connected with the control terminal 100. Identification information of the smart light 200.
  • step S502 may be performed by the second configuration module 119.
  • the second association module 1110 is configured to, in response to a second selection operation of the user, determine a target smart light corresponding to the second selection operation in each of the smart lights 200 displayed on the second configuration interface, and the target smart The lamp is associated with the new detection component 300, and the association relationship between the target smart light and the new detection component 300 is recorded.
  • step S503 may be performed by the second association module 1110.
  • the smart light control system 10 may further include an instruction set update module 1111.
  • the instruction set update module 1111 is configured to, after associating the target smart light with the new detection component 300, obtain the first detection component 300 of the same type as the new detection component 300 from the remote server. Two control instruction sets, for each alarm signal in the second control instruction set, a control instruction corresponding to the alarm signal for controlling a smart light 200 of the same type as the target smart light is added to the target The first control instruction set of the smart light.
  • each second control instruction set has version information
  • each control instruction in the second control instruction set includes the version information and a preset flag bit.
  • the remote server 400 is configured to update the version information of the second control instruction set when any second control instruction set is modified.
  • the smart light control system 10 may further include a version update module 1112.
  • the version update module 1112 is configured to obtain version information of the second control instruction set where the target control instruction is located from the remote server 400 as target version information, and determine the version information in the target control instruction and the target. Whether the version information is consistent; if not, look for a control instruction whose preset flag value is the same as the target control instruction in the second control instruction set where the target control instruction is located, and copy the target control instruction Replacing with the found control instruction, and replacing the target control instruction with the found control instruction in the target set.
  • the embodiments of the present disclosure provide a method, a device, and a system for controlling a smart light.
  • a control terminal can determine a corresponding target control instruction according to an alarm signal sent by a detection component, and control the smart light to implement a corresponding target by using the target control instruction Light effect, so as to alarm when the air condition data meets the preset conditions.
  • the user can know the air condition of the environment where the smart lamp is located on the one hand, and on the other hand, the functions of the smart lamp are richer, which improves the user experience.
  • the smart lamp control method, device and system provided by the embodiments of the present disclosure ensure that the user can know the air condition of the environment where the smart lamp is located in time, and enrich the functions of the smart lamp and improve the user experience.

Abstract

一种智能灯控制方法、装置及系统(10),其中,控制终端(100)接收任一检测组件(300)发送的报警信号,报警信号包括检测组件(300)的身份标识(S301);根据检测组件(300)的身份标识确定与检测组件(300)关联的智能灯(200)作为待控制的智能灯(200),并在存储的至少一个第一控制指令集合中查找出待控制的智能灯(200)的第一控制指令集合作为目标集合(S302);在目标集合中查找与接收到的报警信号对应的控制指令作为目标控制指令,并将目标控制指令发送给待控制的智能灯(200),使待控制的智能灯(200)通过执行目标控制指令实现与接收到的报警信号对应的光效(S303)。如此,确保用户及时获知空气状况。

Description

智能灯控制方法、装置及系统 技术领域
本公开涉及智能控制技术领域,尤其涉及一种智能灯控制方法、装置及系统。
背景技术
随着智能设备的不断普及物联网的快速发展,人们对智能家电的需求越来越多。然而,现有的灯具功能单一,无法满足人们的需求。
发明内容
有鉴于此,本公开提供一种智能灯控制方法、装置及系统。
第一方面,本公开实施例提供一种智能灯控制方法,应用于与至少一个智能灯和至少一个检测组件通信连接的控制终端;每个智能灯至少与一个检测组件相关联,每个检测组件配置成检测所在环境的空气状态数据,在该空气状态数据达到预设条件时,生成对应的报警信号发送给所述控制终端,以使所述控制终端根据该报警信号对与该检测组件关联的智能灯进行控制;
针对每个智能灯,所述控制终端中存储有用于控制该智能灯的第一控制指令集合,针对与该智能灯关联的检测组件生成的每个报警信号,该第一控制指令集合中设置有与该报警信号对应的控制指令,通过该控制指令能够控制该智能灯实现与该报警信号对应的光效;所述方法包括:
接收任一检测组件发送的报警信号,所述报警信号中包括该检测组件的身份标识;
根据所述检测组件的身份标识确定与所述检测组件关联的智能灯作为待控制的智能灯,并在存储的至少一个第一控制指令集合中查找出所述待控制的智能灯的第一控制指令集合作为目标集合;
在所述目标集合中查找与接收到的报警信号对应的控制指令作为目标控制指令,并将该目标控制指令发送给所述待控制的智能灯,使所述待控制的智能灯通过执行所述目标控制指令实现与所述接收到的报警信号对应的光效。
第二方面,本公开实施例提供一种智能灯控制装置,应用于与至少一个智能灯和至少一个检测组件通信连接的控制终端;每个智能灯至少与一个检测组件相关联,每个检测组件配置成检测所在环境的空气状态数据,在该空气状态数据达到预设条件时,生成对应的报警信号发送给与该检测组件关联的智能灯;针对每个智能灯,所述控制终端中存储有用于控制该智能灯的第一控制指令集合,针对与该智能灯关联的检测组件所生成的每个报警信号,该第一控制指令集合中设置有与该报警信号对应的控制指令,通过该控制指令能够 控制该智能灯实现与该报警信号对应的光效;所述装置包括:
信号接收模块,配置成接收任一检测组件发送的报警信号,所述报警信号中包括该检测组件的身份标识;
指令集合确定模块,配置成根据所述检测组件的身份标识确定与所述检测组件关联的智能灯作为待控制的智能灯,并在存储的至少一个第一控制指令集合中查找出所述待控制的智能灯的第一控制指令集合作为目标集合;
控制模块,配置成在所述目标集合中查找与接收到的报警信号对应的控制指令作为目标控制指令,并将该目标控制指令发送给所述待控制的智能灯,使所述待控制的智能灯通过执行所述目标控制指令实现与所述接收到的报警信号对应的光效。
第三方面,本公开实施例提供一种智能灯控制系统,包括控制终端及与所述控制终端通信连接的至少一个智能灯和至少一个检测组件,所述控制终端包括存储器、处理器及本公开实施例提供的智能灯控制装置,所述智能灯控制装置存储在所述存储器中,并被所述处理器控制执行,以根据所述检测组件发送的报警信号对所述智能灯进行控制。
相较于现有技术,本公开实施例具有以下有益效果:
本公开实施例提供的一种智能灯控制方法、装置及系统,控制终端能够根据检测组件发送的报警信号确定相应的目标控制指令,并通过该目标控制指令控制智能灯实现对应的光效,从而在空气状态数据符合预设条件时进行报警。如此,一方面使得用户能够及时获知智能灯所在环境的空气状况,另一方面智能灯的功能更加丰富,改善了用户体验。
附图说明
为了更清楚地说明本公开实施例的技术方案,下面将对实施例中所需使用的附图做简单的介绍,应当理解,以下附图仅仅示出了本公开的某些实施例,因此,不应被视作是对本公开的范围的限定。对本领域的普通技术人员而言,在不付出创造性劳动的前提下,还可以根据这些附图获得其它相关的附图。
图1为本公开实施例提供的一种智能灯控制系统的连接框图;
图2为本公开实施例提供的一种控制终端的方框示意图;
图3为本公开实施例提供的一种智能灯控制方法的流程示意图;
图4为本公开实施例提供的智能灯控制方法的又一流程示意图;
图5为本公开实施例提供的智能灯控制方法的又一流程示意图;
图6为本公开实施例提供的智能灯控制装置的功能模块框图。
图标:10-智能灯控制系统;100-控制终端;110-智能灯控制装置;111-信号接收模块;112-指令集合确定模块;113-控制模块;114-第一提示模块;115-第一配置模块;116-第一 关联模块;117-指令集建立模块;118-第二提示模块;119-第二配置模块;1110-第二关联模块;1111-指令集更新模块;1112-版本更新模块;120-存储器;130-处理器;140-通信单元;150-显示单元;200-智能灯;300-检测组件;400-远程服务器。
具体实施方式
为使本公开实施例的目的、技术方案和优点更加清楚,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、完整的描述。应当理解,所描述的实施例是本公开的一部分实施例,而非全部的实施例。通常,在此处附图中描述和示出的本公开实施例的组件可以以各种不同的配置(例如,硬件、软件或其组合)来布置和设计。
因此,在以下附图中提供的本公开的实施例的详细描述并非旨在限制要求保护的本公开的范围,而是仅仅表示本公开的选定实施例。基于本公开中的实施例,本领域的普通技术人员在没有做出创造性劳动的前提下所获得的所有其它实施例,都属于本公开保护的范围。
应注意到:相似的标号和字母在下面的附图中表示类似项,因此,一旦某一项在一个附图中被定义,则在随后的附图中不需要再对其进行进一步定义和解释。
请参照图1,是本公开实施例提供的一种智能灯控制系统10的连接框图。智能灯控制系统10包括控制终端100及与所述控制终端100通信连接的至少一个智能灯200和至少一个检测组件300。其中,所述控制终端100可以是,但不限于,智能手机、平板电脑、个人数字助理(Personal Digital Assistant,PDA)、移动上网设备(Mobile Internet Device,MID)等智能设备。
在本实施例中,所述控制终端100中可以安装有用于控制智能灯200和检测组件300的应用程序(Application,APP),通过该APP可以对检测组件300和和/或智能灯200发送的数据进行处理和解析。其中,该APP可以是从相应的远程服务器下载并安装到控制终端100中的。其中,所述控制终端100与该远程服务器通信连接。
在实施时,用户可以通过所述APP搜索所在环境中的智能灯200及检测组件300,并选取相应的智能灯200和检测组件300添加到预先建立的通信分组中,每个通信分组设置有能够被所述APP识别的身份标识,用于唯一地表示该通信分组。对应地,各通信分组中的成员(比如,智能灯200或检测组件300)具有能够唯一地表示该成员的身份标识,任一通信分组中任一成员发送的数据中携带有该成员的身份标识及该通信分组的身份标识,如此,控制终端100即可确定接收到的数据的发送方,进而确定应当对该数据做何种处理。
在本实施例提供的智能灯控制系统10中,每个智能灯200至少与一个检测组件300相关联,所述控制终端100存储有相互关联的智能灯200和检测组件300之间的关联关系。 每个检测组件300被配置成检测所在环境的空气状态数据,在检测到的空气状态数据达到预设条件时,生成对应的报警信号发送给所述控制终端100,以使所述控制终端100根据该报警信号对与该检测组件300相关联的智能灯200进行控制,改变该智能灯200的光效,从而达到向用户报警的效果。
其中,所述预设条件可以是达到预设值或低于预设值,还可以是属于预设范围等,可以根据实际需求进行灵活设定,本实施例对此不做限制。
在实际应用中,使用的智能灯200和检测组件300均可能有多种类型,使用的处理器130(或处理芯片)也会发生改变,对应地,当检测组件300使用的处理器130的类型改变时,其生成的报警信号的格式也会改变。当智能灯200使用的处理器130的类型改变时,其能够识别的控制指令的格式也有所不同。因此,为了确保控制终端100在接收到不同类型的检测组件300生成的报警信号时,能够准确地确定可被识别的控制指令发送给所述智能灯200,需要预先建立不同类型的检测组件300所生成的报警信号与用于控制不同类型的智能灯200的控制指令之间的对应关系。
具体地,针对每个智能灯200,所述控制终端100中存储有用于控制该智能灯200的第一控制指令集合,针对于该智能灯200关联的检测组件300生成的每个报警信号,该第一控制指令集合中设置有与该报警信号对应的控制指令,通过该控制指令能够控制该智能灯200实现与该报警信号对应的光效。
如图2所示,是本公开实施例提供的一种控制终端100的方框示意图,控制终端100包括存储器120、处理器130及通信单元140。
其中,存储器120、处理器130及通信单元140各元件之间相互直接或间接地电性连接,以实现数据的传输或交互。其中,所述智能灯控制系统10包括至少一个可以以软件(Software)或固件(Firmware)的形式存储于存储器120中或固化在控制终端100的操作系统(Operating System,OS)中的软件功能模块。其中,处理器130被配置为在接收到执行指令时执行存储在存储器120中的可执行模块。
在本实施例中,存储器120可以是,但不限于,随机存取存储器(Random Access Memory,RAM),只读存储器Read Only Memory,ROM),可编程只读存储器Programmable Read-Only Memory,PROM),可擦出只读存储器(Erasable Programmable Read-Only Memory,EPROM),电可擦除只读存储器(Electric Erasable Programmable Read-Only Memory,EEPROM)等。
处理器130可以是一种集成电路芯片,具有信号处理能力。上述的处理器130可以是通用处理器,具体可以包括中央处理器(Central Processing Unit,CPU)、网络处理器(Network  Processor,NP)等;还可以是数字信号处理器(DSP)、专用集成电路()ASIC、现场可编程门阵列(FPGA)或者其它可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件。处理器130可以实现本公开实施例中公开的各方法、步骤及逻辑框图。其中,通用处理器可以是微处理器或任何常规的处理器等。
通信单元140被配置成建立控制终端100与其他设备(诸如,智能灯200、检测组件300、远程服务器400等)之间的通信连接,以实现数据交互。其中,所述通信单元140可以包括蓝牙通信组件,所述控制终端100可以通过该蓝牙通信组件与检测组件300及智能灯200通信连接;所述通信单元140还可以包括Wi-Fi组件,以通过该Wi-Fi组件接入互联网,从而与远程服务器400通信连接。
应当理解,图2所示的结构仅为示意,控制终端100还可以具有比图2所示更多或更少的组件,例如,还可以包括显示单元150等,此外,控制终端100也可以具有与图2所示完全不同的配置。在此值得说明的是,图2所示的各组件可以以软件、硬件或其组合实现,本实施例对此不做限制。
在本实施例中,智能灯200、检测组件300及远程服务器400所包括的部件及各部件之间的连接关系与控制终端100类似,在此不再详述。值得说明的是,智能灯200还包括能够被相应处理器130控制的发光器件,检测组件300还包括配置成检测所述空气状态数据的测量元件及配置成将测量元件所测数据转换成电信号的信号转换电路。
如图3所示,是本公开实施例提供的一种智能灯控制方法的流程示意图,应用于图2所示的控制终端100,下面对该方法的详细流程进行阐述。
步骤S301,接收任一检测组件300发送的报警信号,所述报警信号中包括该检测组件300的身份标识。
在本实施例中,所述检测组件300被配置为实时地检测所在环境的空气状态数据,其中,该空气状态数据可以是空气中特定物质(诸如,一氧化碳、二氧化碳、颗粒物等)的含量。当检测到的空气状态数据达到预设值时,所述检测组件300生成对应的报警信号,并将所述报警信号发送给所述控制终端100。
其中,所述报警信号中包括所述检测组件300的身份标识,该身份标识可以包括所述检测组件300的类型信息、型号信息以及用于唯一地表示所述检测组件300的标识符,可选地,该标识符可以是预先设置的编号,也可以是基于预先设定的算法生成的编号。如此,所述控制终端100能够根据接收到的任一报警信号携载的身份标识,确定该报警信号的发送方、该发送方的类型及型号。
可选地,所述检测组件300可以是二氧化碳传感器、一氧化碳传感器、甲醛传感器、 可燃气体探测器等中的任意一种,还可以是湿度传感器、PM2.5(细颗粒物)探测器等中的任意一种,本实施例对此并不限制。对应地,所述预设条件可以根据用户需求进行灵活设定,例如,将用户能够接受的上述数据的最大值作为预设值,当任一检测组件300检测到的数据超过该预设值时,即可通过与该检测组件300关联的智能灯200进行报警,以达到提醒用户的效果。通过设置上述的各种传感器,可以确保用户所处环境中的空气安全和质量,既避免了出现安全事故,又改善了用户体验。尤其是针对空气中的有毒气体(如一氧化碳等)、可燃气体等的含量,若在检测到上述气体的含量超过设定的安全值时,控制智能灯200报警,能够确保在当前环境中的用户能够获知这一报警信号,从而避免由此出现的安全事故。
在本实施例中,控制终端100可以通过通信单元140接收所述报警信号,并传递给处理器130进行处理。下面描述的步骤S302-步骤均可以由处理器130执行。
步骤S302,根据所述检测组件300的身份标识确定与所述检测组件300关联的智能灯200作为待控制的智能灯,并在存储的至少一个第一控制指令集合中查找出所述待控制的智能灯的第一控制指令集合作为目标集合。
在本实施例中,智能灯200具有身份标识,该身份标识的具体构成与检测组件300的身份标识类似,即包括智能灯200的类型信息、型号信息及用于唯一地表示该智能灯200的标识符。
针对相互关联的智能灯200和检测组件300,控制终端100中记录有该智能灯200和该检测组件300之间的关联关系,具体可以将该智能灯200的身份标识和该检测组件300的身份标识绑定(bind)后进行记录。对应地,在实施时,控制终端可以在本终端中查找与所述检测组件300的身份标识绑定的智能灯200的身份标识,从而确定与所述检测组件300相关联的智能灯200。
在控制终端中,可以存储有一个、两个或多个第一控制指令集合,每个第一控制指令集合对应一个智能灯200,因而,控制终端100中存储的第一控制指令集合的数量与所述控制终端100所控制的智能灯200的数量相同。在步骤S302中确定的与所述智能灯200对应的目标集合,其实质上是控制终端100存储的其中一个第一控制指令集合,且该第一控制指令集合是与所述智能灯200对应的。详细地,该第一控制指令集合中的各控制指令均能被所述智能灯200识别和执行,从而使所述智能灯200达到各个不同的发光效果。
在本实施例中,智能灯200与检测组件300可以是在两者中的任意一个与控制终端100建立通信连接时建立关联的。如图4所示,本公开实施例提供的智能灯控制方法还可以包括步骤S401-步骤S403三个步骤。
步骤S401,当检测到新的检测组件300与所述控制终端100建立通信连接时,输出第二配置提示信息,以提示用户对所述新的检测组件300进行配置。
在使用中,当用户安装相应的智能灯200之后,所述智能灯200可以与通信范围内的控制终端100建立通信连接,当控制终端100检测到新的智能灯200接入时,即可输出第一配置提示信息。
可选地,所述第一配置提示信息可以包括所述新的智能灯200的身份标识及其他为便于用户理解设置的字样,例如“请对XXX进行配置”,其中“XXX”可以为所述新的智能灯200的身份标识。
步骤S402,响应用户针对所述第一配置提示信息进行的操作,进入第一配置界面,并在所述第一配置界面上显示当前与所述控制终端100通信连接的各检测组件300的身份标识。
可选地,用户针对所述第一配置提示信息进行的操作可以是用户对所述第一配置提示信息进行的单击、双击、滑动等操作,本实施例对此不做限定。
步骤S403,响应用户的第一选取操作,在所述第一配置界面显示的各检测组件300中确定与所述第一选取操作对应的目标检测组件,并将所述目标检测组件与所述新的智能灯200相关联,并记录所述目标检测组件与所述新的智能灯200的关联关系。
其中,第一选取操作是指用户在第一配置界面上选取需要通过所述新的智能灯200进行报警提示的检测组件300的操作,目标检测组件即为用户通过所述第一选取操作选定的检测组件300。
此外,在本实施例中,每个智能灯200的第一控制指令集合可以在该智能灯200与所述控制终端100建立通信连接时创建。对应地,在所述控制终端100将所述目标检测组件与所述新的智能灯200相关联之后,本公开实施例提供的智能灯控制方法还可以包括步骤S404。
步骤S404,建立与所述新的智能灯200对应的第一控制指令集合,并从所述远程服务器获取所述目标检测组件的第二控制指令集合,针对该第二控制指令集合中的每个报警信号,将与该报警信号对应的、用于控制类型与所述新的智能灯200相同的智能灯200的控制指令添加到所建立的第一控制指令集合中。
可选地,如图5所示,本公开实施例提供的智能灯控制方法还可以包括步骤S501-步骤S503三个步骤。
步骤S501,当检测到新的检测组件300与所述控制终端100建立通信连接时,输出第二配置提示信息,以提示用户对所述新的检测组件300进行配置。
在使用中,当用户安装新的检测组件300之后,所述新的检测组件300可以与通信范围内的控制终端100建立通信连接,当控制终端100检测到所述新的检测组件300接入时,即可输出第二配置提示信息。其中,所述第二配置提示信息中可以包括所述新的检测组件300的身份标识。此外,所述第二配置提示信息还可以包括为便于用户理解设置的其他字段,诸如“请对YYY进行设置”,其中“YYY”可以是所述新的检测组件300的身份标识。
步骤S502,响应用户针对所述第二配置提示信息进行的操作,进入第二配置界面,并在所述第二配置界面上显示当前与所述控制终端100通信连接的各智能灯200的标识信息。
步骤S503,响应用户的第二选取操作,在所述第二配置界面显示的各智能灯200中确定与所述第二选取操作对应的目标智能灯,将所述目标智能灯与所述新的检测组件300相关联,并记录所述目标智能灯与所述新的检测组件300的关联关系。
在本实施例中,第二选取操作是指用户在第二配置界面上选取需要对所述新的检测组件300的报警信号进行展示的智能灯200的操作,目标智能灯即为用户通过所述第二选取操作选定的智能灯200。
在所述新的检测组件300与所述控制终端100建立通信连接后,表示所述控制终端100可能会接收到所述新的检测组件300发送的报警信号,为了确保所述控制终端100在接收到所述新的检测组件300发送的报警信号时,能够根据该报警信号确定用于控制与所述新的检测组件300对应的智能灯200的控制指令,所述智能灯控制方法还可以包括步骤S504。
步骤S504,所述控制终端100从所述远程服务器获取类型与所述新的检测组件300相同的检测组件300的第二控制指令集合,针对该第二控制指令集合内的每个报警信号,将与该报警信号对应的、用于控制类型与所述目标智能灯相同的智能灯200的控制指令添加到所述目标智能灯的第一控制指令集合内。
值得说明的是,图4和图5所示的各步骤均可以由所述控制终端100的处理器130执行。
可选地,在本实施例中,每个第二控制指令集合具有版本信息,该第二控制指令集合内的每个控制指令包括该版本信息以及一预设的标志位。其中,所述版本信息可以采用版本编号表示,也可以采用第二控制指令集合最近一次被修改的时间来表示,即可以采用时间信息表示。
在本实施例中,所述远程服务器400在检测到对任一第二控制指令集合的修改操作时,更新该第二控制指令集合的版本信息。
例如,假设所述版本信息采用时间信息表示,则在任一第二控制指令集合被修改时,可以将该第二控制指令集合的版本信息更新为当前时间,即更新为修改该第二控制指令集 合的时间。
对应地,本公开实施例提供的智能灯控制方法还可以包括以下步骤:
从所述远程服务器400获取所述目标控制指令所在的第二控制指令集合的版本信息作为目标版本信息,并判断所述目标控制指令中的版本信息与所述目标版本信息是否一致;
若否,则在所述目标控制指令所在的第二控制指令集合内查找所述预设的标志位的值与所述目标控制指令相同的控制指令,将所述目标控制指令替换为查找到的控制指令,并在所述目标集合内将所述目标控制指令替换为所述查找到的控制指令。
如此,可以确保控制终端100中的控制指令与远程服务器400中设置的控制指令保持同步。
在此值得说明的是,上述步骤可以由控制终端100的处理器130控制其他组件(诸如通信单元140、显示单元150等)执行。
步骤S303,所述控制终端100在所述目标集合中确定与接收到的报警信号对应的目标控制指令,并将所述目标控制指令发送给所述智能灯200,使所述智能灯200根据该控制指令执行对应的动作以进行报警。
在本实施例中,报警信号除了包括所述检测组件300的身份标识,还可以包括报警级别。当报警信号中携带的检测组件300的身份标识发生改变,和/或,报警级别发生改变时,所确定的目标控制指令也对应不同。基于此,在各第一控制指令集合中,可以以报警信号中携带的检测组件300的身份标识以及报警级别为键(key)、以控制指令为值(value)进行存储。
可选地,本实施例中的各控制指令可以由相应开发人员进行设置,例如,控制智能灯200按照特定颜色显示、控制智能灯200按照特定亮度显示、控制智能灯200按照特定频率闪烁等,也可以是前述方式中任意组合。
如图6所示,是本公开实施例提供的一种智能灯控制系统10的功能模块框图,该智能灯控制系统10应用于图2所示的控制终端100。所述智能灯控制系统10包括信号接收模块111、指令集合确定模块112和控制模块113。
所述信号接收模块111配置成接收任一检测组件300发送的报警信号,所述报警信号中包括该检测组件300的身份标识。
在本实施例中,关于所述信号接收模块111的描述具体可参考上述内容中对图3所示步骤S301的详细描述,即步骤S301可以由所述信号接收模块111执行。
所述指令集合确定模块112配置成根据所述检测组件300的身份标识确定与所述检测组件300关联的智能灯200作为待控制的智能灯,并在存储的至少一个第一控制指令集合 中查找出所述待控制的智能灯的第一控制指令集合作为目标集合。
在本实施例中,关于所述指令集合确定模块112的描述具体可参考对图3所示步骤S302的详细描述,即步骤S302可以由所述指令集合确定模块112执行。
所述控制模块113配置成在所述目标集合中查找与接收到的报警信号对应的控制指令作为目标控制指令,并将该目标控制指令发送给所述待控制的智能灯,使所述待控制的智能灯通过执行所述目标控制指令实现与所述接收到的报警信号对应的光效。
在本实施例中,关于所述控制模块113的描述具体可参考上述内容中对图3所示步骤S303的详细描述,即步骤S303可以由所述控制模块113执行。
可选地,在本实施例中,所述智能灯控制系统10还可以包括第一提示模块114、第一配置模块115以及第一关联模块116。
其中,所述第一提示模块114配置成当检测到新的智能灯200与所述控制终端100建立通信连接时,输出第一配置提示信息,以提示用户对所述新的智能灯200进行配置。
在本实施例中,关于所述第一提示模块114的描述具体可参考对图4所示步骤S401的详细描述,即步骤S401可以由所述第一提示模块114执行。
所述第一配置模块115配置成响应用户针对所述第一配置提示信息进行的操作,进入第一配置界面,并在所述第一配置界面上显示当前与所述控制终端100通信连接的各检测组件300的身份标识。
在本实施例中,关于所述第一配置模块115的描述具体可以参考对图4所示步骤S402的详细描述,即步骤S402可以由所述第一配置模块115执行。
所述第一关联模块116配置成响应用户的第一选取操作,在所述第一配置界面显示的各检测组件300中确定与所述第一选取操作对应的目标检测组件,并将所述目标检测组件与所述新的智能灯200相关联,并记录所述目标检测组件与所述新的智能灯200的关联关系。
在本实施例中,关于所述第一关联模块116的描述具体可以参考对图4所示步骤S403的详细描述,即步骤S403可以由所述第一关联模块116执行。
可选地,在本实施例中,所述远程服务器400中预存有各类型的检测组件300的第二控制指令集合,每个类型的检测组件300的第二控制指令集合中包括该类型的检测组件300能够生成的报警信号以及与该报警信号对应的、分别用于控制不同类型的智能灯200的多个控制指令。
所述智能灯控制系统10还可以包括指令集建立模块117。
所述指令集建立模块117配置成在将所述目标检测组件与所述新的智能灯200相关联 之后,建立与所述新的智能灯200对应的第一控制指令集合,并从所述远程服务器400获取所述目标检测组件的第二控制指令集合,针对所述目标检测组件的第二控制指令集合中的每个报警信号,所述控制终端100将与该报警信号对应的、用于控制类型与所述新的智能灯200相同的智能灯200的控制指令添加到所建立的第一控制指令集合中。
可选地,在本实施例中,所述智能灯控制系统10还可以包括第二提示模块118、第二配置模块119和第二关联模块1110。
其中,所述第二提示模块118配置成当检测到新的检测组件300与所述控制终端100建立通信连接时,输出第二配置提示信息,以提示用户对所述新的检测组件300进行配置。
在本实施例中,可选地,关于所述第二提示模块118的描述具体可参考对图5所示步骤S501的详细描述,即步骤S501可以由所述第二提示模块118执行。
所述第二配置模块119配置成响应用户针对所述第二配置提示信息进行的操作,进入第二配置界面,并在所述第二配置界面上显示当前与所述控制终端100通信连接的各智能灯200的标识信息。
可选地,在本实施例中,关于所述第二配置模块119的描述具体可参考对图5所示步骤S502的详细描述,即步骤S502可以由所述第二配置模块119执行。
所述第二关联模块1110配置成响应用户的第二选取操作,在所述第二配置界面显示的各智能灯200中确定与所述第二选取操作对应的目标智能灯,将所述目标智能灯与所述新的检测组件300相关联,并记录所述目标智能灯与所述新的检测组件300的关联关系。
可选地,在本实施例中,关于所述第二关联模块1110的描述具体可参考对图5所示步骤S503的详细描述,即步骤S503可以由所述第二关联模块1110执行。
可选地,在本实施例中,所述智能灯控制系统10还可以包括指令集更新模块1111。
所述指令集更新模块1111配置成在将所述目标智能灯与所述新的检测组件300相关联之后,从所述远程服务器获取类型与所述新的检测组件300相同的检测组件300的第二控制指令集合,针对该第二控制指令集合中的每个报警信号,将与该报警信号对应的、用于控制类型与所述目标智能灯相同的智能灯200的控制指令添加到所述目标智能灯的第一控制指令集合中。
可选地,在本实施例中,每个第二控制指令集合具有版本信息,该第二控制指令集合中的每个控制指令包括该版本信息及一预设的标志位。所述远程服务器400配置成在任一第二控制指令集合被修改时,更新该第二控制指令集合的版本信息。
对应地,本公开实施例提供的智能灯控制系统10还可以包括版本更新模块1112。
所述版本更新模块1112配置成从所述远程服务器400获取所述目标控制指令所在的第 二控制指令集合的版本信息作为目标版本信息,并判断所述目标控制指令中的版本信息与所述目标版本信息是否一致;若否,则在所述目标控制指令所在的第二控制指令集合内查找所述预设的标志位的值与所述目标控制指令相同的控制指令,将所述目标控制指令替换为查找到的控制指令,并在所述目标集合内将所述目标控制指令替换为所述查找到的控制指令。
综上所述,本公开实施例提供一种智能灯控制方法、装置及系统,控制终端能够根据检测组件发送的报警信号确定相应的目标控制指令,并通过该目标控制指令控制智能灯实现对应的光效,从而在空气状态数据符合预设条件时进行报警。如此,一方面使得用户能够及时获知智能灯所在环境的空气状况,另一方面智能灯的功能更加丰富,改善了用户体验。
最后,应说明的是,以上所述仅为本公开的选定实施例而已,并不用于限定本公开的范围。对于本领域的技术人员来说,本公开可以有各种更改和变化。凡在本申请的精神和原则之内,所作的任何修改、等同替换、改进灯,均应包含在本申请的保护范围之内。
工业实用性
本公开实施例提供的一种智能灯控制方法、装置及系统,确保用户能够及时获知智能灯所在环境的空气状况,并且丰富了智能灯的功能,改善了用户体验。

Claims (14)

  1. 一种智能灯控制方法,其特征在于,应用于与至少一个智能灯和至少一个检测组件通信连接的控制终端;每个智能灯至少与一个检测组件相关联,每个检测组件配置成检测所在环境的空气状态数据,在该空气状态数据达到预设条件时,生成对应的报警信号发送给所述控制终端,以使所述控制终端根据该报警信号对与该检测组件关联的智能灯进行控制;针对每个智能灯,所述控制终端中存储有用于控制该智能灯的第一控制指令集合,针对与该智能灯关联的检测组件生成的每个报警信号,该第一控制指令集合中设置有与该报警信号对应的控制指令,通过该控制指令能够控制该智能灯实现与该报警信号对应的光效;所述方法包括:
    接收任一检测组件发送的报警信号,所述报警信号包括该检测组件的身份标识;
    根据所述检测组件的身份标识确定与所述检测组件关联的智能灯作为待控制的智能灯,并在存储的至少一个第一控制指令集合中查找出所述待控制的智能灯的第一控制指令集合作为目标集合;
    在所述目标集合中查找与接收到的报警信号对应的控制指令作为目标控制指令,并将该目标控制指令发送给所述待控制的智能灯,使所述待控制的智能灯通过执行所述目标控制指令实现与所述接收到的报警信号对应的光效。
  2. 根据权利要求1所述的智能灯控制方法,其特征在于,所述方法还包括:
    当检测到新的智能灯与所述控制终端建立通信连接时,输出第一配置提示信息,以提示用户对所述新的智能灯进行配置;
    响应用户针对所述第一配置提示信息进行的操作,进入第一配置界面,并在所述第一配置界面上显示当前与所述控制终端通信连接的各检测组件的身份标识;
    响应用户的第一选取操作,在所述第一配置界面显示的各检测组件中确定与所述第一选取操作对应的目标检测组件,并将所述目标检测组件与所述新的智能灯相关联,并记录所述目标检测组件与所述新的智能灯的关联关系。
  3. 根据权利要求2所述的智能灯控制方法,所述控制终端与远程服务器通信连接,所述远程服务器中预存有各类型的检测组件的第二控制指令集合,每个类型的检测组件的第二控制指令集合中包括该类型的检测组件能够生成的报警信号以及与该报警信号对应的、分别用于控制不同类型的智能灯的多个控制指令;
    在将所述目标检测组件与所述新的智能灯相关联之后,所述方法还包括:
    建立与所述新的智能灯对应的第一控制指令集合,并从所述远程服务器获取所述目标 检测组件的第二控制指令集合;
    针对所述目标检测组件的第二控制指令集合中的每个报警信号,所述控制终端将与该报警信号对应的、用于控制类型与所述新的智能灯相同的智能灯的控制指令添加到所建立的第一控制指令集合中。
  4. 根据权利要求3所述的智能灯控制方法,其特征在于,所述方法还包括:
    当检测到新的检测组件与所述控制终端建立通信连接时,输出第二配置提示信息,以提示用户对所述新的检测组件进行配置;
    响应用户针对所述第二配置提示信息进行的操作,进入第二配置界面,并在所述第二配置界面上显示当前与所述控制终端通信连接的各智能灯的标识信息;
    响应用户的第二选取操作,在所述第二配置界面显示的各智能灯中确定与所述第二选取操作对应的目标智能灯,将所述目标智能灯与所述新的检测组件相关联,并记录所述目标智能灯与所述新的检测组件的关联关系。
  5. 根据权利要求4所述的智能灯控制方法,其特征在于,在将所述目标智能灯与所述新的检测组件相关联之后,所述方法还包括:
    从所述远程服务器获取类型与所述新的检测组件相同的检测组件的第二控制指令集合,针对该第二控制指令集合中的每个报警信号,将与该报警信号对应的、用于控制类型与所述目标智能灯相同的智能灯的控制指令添加到所述目标智能灯的第一控制指令集合中。
  6. 根据权利要求3-5中任一项所述的智能灯控制方法,其特征在于,每个第二控制指令集合具有版本信息,该第二控制指令集合中的每个控制指令包括该版本信息及一预设的标志位;所述远程服务器配置成在任一第二控制指令集合被修改时,更新该第二控制指令集合的版本信息;
    在将所述目标控制指令发送给所述智能灯之前,所述方法还包括:
    从所述远程服务器获取所述目标控制指令所在的第二控制指令集合的版本信息作为目标版本信息,并判断所述目标控制指令中的版本信息与所述目标版本信息是否一致;
    若否,则在所述目标控制指令所在的第二控制指令集合内查找所述预设的标志位的值与所述目标控制指令相同的控制指令,将所述目标控制指令替换为查找到的控制指令,并在所述目标集合内将所述目标控制指令替换为所述查找到的控制指令。
  7. 根据权利要求1-6中任一项所述的智能灯控制方法,其特征在于,所述检测组件为二氧化碳传感器、一氧化碳传感器、甲醛传感器及可燃气体探测器中的任意一种。
  8. 一种智能灯控制装置,其特征在于,应用于与至少一个智能灯和至少一个检测组件 通信连接的控制终端;每个智能灯至少与一个检测组件相关联,每个检测组件配置成检测所在环境的空气状态数据,在该空气状态数据达到预设条件时,生成对应的报警信号发送给与该检测组件关联的智能灯;针对每个智能灯,所述控制终端中存储有用于控制该智能灯的第一控制指令集合,针对与该智能灯关联的检测组件所生成的每个报警信号,该第一控制指令集合中设置有与该报警信号对应的控制指令,通过该控制指令能够控制该智能灯实现与该报警信号对应的光效;所述装置包括:
    信号接收模块,配置成接收任一检测组件发送的报警信号,所述报警信号中包括该检测组件的身份标识;
    指令集合确定模块,配置成根据所述检测组件的身份标识确定与所述检测组件关联的智能灯作为待控制的智能灯,并在存储的至少一个第一控制指令集合中查找出所述待控制的智能灯的第一控制指令集合作为目标集合;
    控制模块,配置成在所述目标集合中查找与接收到的报警信号对应的控制指令作为目标控制指令,并将该目标控制指令发送给所述待控制的智能灯,使所述待控制的智能灯通过执行所述目标控制指令实现与所述接收到的报警信号对应的光效。
  9. 根据权利要求8所述的智能灯控制装置,其特征在于,所述装置还包括:
    第一提示模块,配置成当检测到新的智能灯与所述控制终端建立通信连接时,输出第一配置提示信息,以提示用户对所述新的智能灯进行配置;
    第一配置模块,配置成响应用户针对所述第一配置提示信息进行的操作,进入第一配置界面,并在所述第一配置界面上显示当前与所述控制终端通信连接的各检测组件的身份标识;
    第一关联模块,配置成响应用户的第一选取操作,在所述第一配置界面显示的各检测组件中确定与所述第一选取操作对应的目标检测组件,并将所述目标检测组件与所述新的智能灯相关联,并记录所述目标检测组件与所述新的智能灯的关联关系。
  10. 根据权利要求9所述的智能灯控制装置,其特征在于,所述控制终端与远程服务器通信连接,所述远程服务器中预存有各类型的检测组件的第二控制指令集合,每个类型的检测组件的第二控制指令集合中包括该类型的检测组件能够生成的报警信号以及与该报警信号对应的、分别用于控制不同类型的智能灯的多个控制指令;所述装置还包括:
    指令集建立模块,配置成在将所述目标检测组件与所述新的智能灯相关联之后,建立与所述新的智能灯对应的第一控制指令集合,并从所述远程服务器获取所述目标检测组件的第二控制指令集合,针对所述目标检测组件的第二控制指令集合中的每个报警信号,所述控制终端将与该报警信号对应的、用于控制类型与所述新的智能灯相同的智能灯的控制 指令添加到所建立的第一控制指令集合中。
  11. 根据权利要求10所述的智能灯控制装置,其特征在于,所述装置还包括:
    第二提示模块,配置成当检测到新的检测组件与所述控制终端建立通信连接时,输出第二配置提示信息,以提示用户对所述新的检测组件进行配置;
    第二配置模块,配置成响应用户针对所述第二配置提示信息进行的操作,进入第二配置界面,并在所述第二配置界面上显示当前与所述控制终端通信连接的各智能灯的标识信息;
    第二关联模块,配置成响应用户的第二选取操作,在所述第二配置界面显示的各智能灯中确定与所述第二选取操作对应的目标智能灯,将所述目标智能灯与所述新的检测组件相关联,并记录所述目标智能灯与所述新的检测组件的关联关系。
  12. 根据权利要求11所述的智能灯控制装置,其特征在于,所述装置还包括:
    指令集更新模块,配置成在将所述目标智能灯与所述新的检测组件相关联之后,从所述远程服务器获取类型与所述新的检测组件相同的检测组件的第二控制指令集合,针对该第二控制指令集合中的每个报警信号,将与该报警信号对应的、用于控制类型与所述目标智能灯相同的智能灯的控制指令添加到所述目标智能灯的第一控制指令集合中。
  13. 根据权利要求10-12中任一项所述的智能灯控制装置,其特征在于,每个第二控制指令集合具有版本信息,该第二控制指令集合中的每个控制指令包括该版本信息及一预设的标志位;所述远程服务器配置成在任一第二控制指令集合被修改时,更新该第二控制指令集合的版本信息;所述装置还包括:
    版本更新模块,配置成从所述远程服务器获取所述目标控制指令所在的第二控制指令集合的版本信息作为目标版本信息,并判断所述目标控制指令中的版本信息与所述目标版本信息是否一致;若否,则在所述目标控制指令所在的第二控制指令集合内查找所述预设的标志位的值与所述目标控制指令相同的控制指令,将所述目标控制指令替换为查找到的控制指令,并在所述目标集合内将所述目标控制指令替换为所述查找到的控制指令。
  14. 一种智能灯控制系统,其特征在于,包括控制终端及与所述控制终端通信连接的至少一个智能灯和至少一个检测组件,所述控制终端包括存储器、处理器及权利要求8-13中任一项所述的智能灯控制装置,所述智能灯控制装置存储在所述存储器中,并被所述处理器控制执行,以根据所述检测组件发送的报警信号对所述智能灯进行控制。
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