A Smart Control Method and System for Hotel Rooms Based on TV Bluetooth Mesh

By connecting the TV's Bluetooth mesh network module with multiple smart devices, the system receives and parses user commands to control hotel room equipment. This solves the problems of inconvenience and insufficient intelligence in traditional control methods, achieving efficient and convenient intelligent control and improving the user experience.

CN120949617BActive Publication Date: 2026-05-26SHENZHEN JIELONG PIONEER TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHENZHEN JIELONG PIONEER TECH CO LTD
Filing Date
2024-07-19
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Traditional hotel room control methods are inconvenient to operate, have limited functions, low levels of intelligence, high gateway costs, and unfriendly debugging processes, failing to meet users' needs for convenient, efficient, and intelligent living.

Method used

A smart hotel room control system based on Bluetooth mesh on a TV is adopted. The system establishes a communication connection between the smart TV and multiple smart devices through a Bluetooth mesh network module, receives and parses user control commands, controls the relevant devices to perform operations, and realizes smart control of the hotel room.

Benefits of technology

It enhances the intelligence and user experience of hotel rooms, is easy to operate, highly integrated, saves gateway costs, and is more convenient to debug.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This application discloses a method and system for intelligent control of hotel rooms based on a TV's Bluetooth mesh network. The system is applied to a smart TV in a hotel room intelligent control system. The hotel room intelligent control system further includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. The method includes: establishing a communication connection between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room intelligent control system, and initializing the hotel room intelligent control system; receiving user control commands through the smart TV and parsing the control commands to obtain control content; and controlling the smart devices among the m smart devices related to the control content to perform operations corresponding to the control content.
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Description

Technical Field

[0001] This application relates to the field of Internet of Things (IoT) technology or smart home technology, specifically to a smart control method and system for hotel rooms based on a TV Bluetooth mesh. Background Technology

[0002] With the improvement of people's living standards and the continuous development of technology, the demand for intelligent features in hotel rooms and smart homes is growing. Traditional control methods suffer from problems such as inconvenient operation and limited functionality, failing to meet people's pursuit of convenient, efficient, and intelligent living. Furthermore, they are inconvenient to operate and debug, have low integration levels, weak gateway computing power, and increase gateway costs. The human-computer interaction interface during debugging is also unfriendly, especially in hotel rooms. Therefore, the question of how to improve the intelligence of hotel rooms urgently needs to be addressed. Summary of the Invention

[0003] This application provides a method and system for intelligent control of hotel rooms based on a TV's Bluetooth mesh, which can improve the intelligence of hotel rooms and enhance the user experience.

[0004] In a first aspect, embodiments of this application provide a smart control method for hotel rooms based on a TV's Bluetooth mesh network, applied to a smart TV in a hotel room smart control system. The hotel room smart control system further includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. The method includes:

[0005] The communication connection between the smart TV and the m smart devices is established through the Bluetooth mesh network module to form the hotel room smart control system, and the hotel room smart control system is initialized.

[0006] The smart TV receives user control commands and parses the commands to obtain control content.

[0007] Control the smart devices among the m smart devices that are related to the control content to perform operations corresponding to the control content.

[0008] Secondly, this application provides a hotel room intelligent control system based on a TV's Bluetooth mesh network. The hotel room intelligent control system includes a smart TV, a Bluetooth mesh network module, and m smart devices, where m is a positive integer. The system includes: a setup unit, a parsing unit, and a control unit.

[0009] The establishment unit is used to establish a communication connection between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room smart control system, and to initialize the hotel room smart control system.

[0010] The parsing unit is used to receive control commands from the user through the smart TV and parse the control commands to obtain control content;

[0011] The control unit is used to control the smart devices among the m smart devices that are related to the control content to perform operations corresponding to the control content.

[0012] Thirdly, embodiments of this application provide a smart TV, including a processor, a memory, a communication interface, and one or more programs, wherein the one or more programs are stored in the memory and configured to be executed by the processor, and the programs include instructions for performing the steps in the first aspect of embodiments of this application.

[0013] Fourthly, embodiments of this application provide a computer-readable storage medium storing a computer program for electronic data interchange, wherein the computer program causes a computer to perform some or all of the steps described in the first aspect of embodiments of this application.

[0014] Fifthly, embodiments of this application provide a computer program product, wherein the computer program product includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps described in the first aspect of embodiments of this application. The computer program product may be a software installation package.

[0015] Implementing the embodiments of this application has the following beneficial effects:

[0016] As can be seen, the hotel room smart control method and system based on TV Bluetooth mesh described in this application embodiment is applied to a smart TV in a hotel room smart control system. The hotel room smart control system also includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. A communication connection is established between the smart TV and the m smart devices through the Bluetooth mesh network module to form a hotel room smart control system. The hotel room smart control system is initialized and configured. The smart TV receives the user's control commands, parses the control commands to obtain the control content, and controls the smart devices among the m smart devices related to the control content to perform the operations corresponding to the control content. Thus, by combining the smart TV and the Bluetooth mesh network, smart control of hotel rooms and smart homes is realized. It has the advantages of convenient operation, high integration, saving gateway costs, and more convenient debugging. In this way, the intelligence of hotel rooms can be improved and the user experience can be enhanced. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of a hotel room intelligent control system based on a TV Bluetooth mesh, provided in an embodiment of this application.

[0019] Figure 2 This is a flowchart illustrating a smart control method for hotel rooms based on a TV Bluetooth mesh, as provided in an embodiment of this application.

[0020] Figure 3 This is a schematic diagram of the structure of a smart TV provided in an embodiment of this application;

[0021] Figure 4 This is a block diagram of the functional units of a smart hotel room control system based on a TV Bluetooth mesh, provided in an embodiment of this application. Detailed Implementation

[0022] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present application.

[0023] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.

[0024] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0025] The embodiments of this application will be described in detail below.

[0026] Please see Figure 1 , Figure 1 This is a schematic diagram of a hotel room intelligent control system based on a TV Bluetooth mesh network, provided in an embodiment of this application. As shown in the figure, the hotel room intelligent control system includes a smart TV, a Bluetooth mesh network module, and m smart devices, where m is a positive integer.

[0027] The smart TV serves as the control center, communicating and controlling the Bluetooth mesh network module and the m smart devices. The Bluetooth mesh network module is used for data transmission and communication with the smart TV and the m smart devices. Any one of the m smart devices is used to perform a corresponding operation upon receiving the control command.

[0028] Among them, smart devices may include at least one of the following: lamps, temperature control devices, humidity control devices, smart safes, smart toilets, smart faucets, smart curtains, smart refrigerators, remote controls, smart massage chairs, smart trash cans, wearable devices (smart bracelets, smartwatches), smartphones, proximity sensors, smart water dispensers, etc., without limitation.

[0029] Temperature control equipment may include at least one of the following: air conditioner, heater, floor heating, etc., without limitation.

[0030] Please see Figure 2 , Figure 2 This is a flowchart illustrating a hotel room smart control method based on a TV's Bluetooth mesh network, as provided in this application embodiment. The method utilizes a smart TV within a hotel room smart control system. The system further includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. The hotel room smart control method based on a TV's Bluetooth mesh network includes:

[0031] 201. Establish a communication connection between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room smart control system, and initialize the hotel room smart control system.

[0032] In the specific implementation, the smart TV acts as the control center, communicating and controlling with the Bluetooth mesh network module and m smart devices. Data transmission and communication occur between the Bluetooth mesh network module, the smart TV, and the m smart devices. Each of the m smart devices executes a corresponding operation upon receiving a control command. This enables intelligent control of hotel rooms, improving the user experience. Typically, m is an integer greater than 1.

[0033] In this embodiment, a communication connection can be established between a smart TV and m smart devices through a Bluetooth mesh network module to form a smart control system for hotel rooms, and the smart control system for hotel rooms can be initialized.

[0034] 202. Receive the user's control commands through the smart TV and parse the control commands to obtain the control content.

[0035] Control commands can be single commands or combinations of commands, and can be used to control one or more devices. A single command can control a single function of a smart device, while a combination of commands can control a single function or a combination of functions of multiple smart devices, or a combination of functions of a single smart device.

[0036] In this embodiment of the application, the smart device may further include a remote control, which is communicatively connected to the smart TV. The remote control can be used to control the smart TV. Users can input control commands through the remote control, and then the smart TV can receive the user's control commands and parse the control commands to obtain control content. The control content may include the controlled object and the control parameters corresponding to the controlled object.

[0037] Smart devices may also include wearable devices, which communicate with smart TVs and can be used to control smart TVs. Users can input control commands through wearable devices, and then the smart TVs can receive and parse the control commands to obtain control content. The control content may include the controlled object and the corresponding control parameters.

[0038] The control parameters may include the operating parameters of the smart device, or they may include both operating parameters and adjustment parameters, with the adjustment parameters used to regulate the operating parameters. Different smart devices may correspond to different operating parameters. When the smart device is a smart air conditioner, the operating parameters may include at least one of the following: temperature, mode, fan speed, operating current, operating voltage, operating power, etc., without limitation. When the smart device is a lighting fixture, the operating parameters may include at least one of the following: brightness, mode, direction, operating current, operating voltage, operating power, etc., without limitation. When the smart device is a smart curtain, the operating parameters may include at least one of the following: opening speed, opening range, retraction speed, retraction range, mode, operating current, operating voltage, operating power, etc., without limitation.

[0039] 203. Control the smart device among the m smart devices that is related to the control content to perform the operation corresponding to the control content.

[0040] In practice, it can control m smart devices related to the control content to perform operations corresponding to the control content. Furthermore, by combining a smart TV with a Bluetooth mesh network, it can realize intelligent control of hotel rooms and smart homes. It has the advantages of convenient operation, high integration, saving gateway costs, and more convenient debugging. In this way, it can improve the intelligence of hotel rooms and enhance the user experience.

[0041] Optionally, the smart TV is located in a designated hotel room; step 202 above, receiving user control commands through the smart TV, may include the following steps:

[0042] An indoor map of the designated hotel room is displayed on the smart TV; the indoor map includes multiple areas, each area corresponding to an area label, and the area label is used to guide the user to select the corresponding area;

[0043] Determine the target area selected by the user;

[0044] Determine the adjustment parameters corresponding to the target region to obtain at least one adjustment parameter;

[0045] The control command is generated based on the at least one adjustment parameter.

[0046] The designated hotel room can be preset or set by the system default. A smart TV can be installed in the designated hotel room.

[0047] In practice, an indoor map of a designated hotel room is displayed on a smart TV. The indoor map includes multiple areas, each corresponding to an area label. The area label guides the user to select the appropriate area. Different areas can correspond to different area labels, which can be used to identify an area. For example, the area label could be bedroom, living room, toilet, etc., without limitation.

[0048] Furthermore, users can select target areas from an indoor map. Different areas can correspond to different adjustment parameters. For example, a pre-stored mapping relationship between preset areas and adjustment parameters can be used to determine the adjustment parameters corresponding to the target area based on the mapping relationship, thereby obtaining at least one adjustment parameter. Then, control commands can be generated based on at least one adjustment parameter. The adjustment parameters can adjust one or more smart devices.

[0049] Optionally, the hotel room intelligent control system further includes multiple proximity sensors located at different positions; the above step of determining the target area selected by the user may include the following steps:

[0050] The user's location is obtained by locating the user using the multiple proximity sensors;

[0051] Determine the target area corresponding to the user's location.

[0052] The hotel room intelligent control system may also include multiple proximity sensors set in different locations. The proximity sensors may include at least one of the following: laser sensors, infrared sensors, ultrasonic sensors, etc., without limitation.

[0053] Specifically, multiple proximity sensors can be used to locate the user and obtain the user's location. A preset mapping relationship between the location and the area can be set in advance. Then, the target area corresponding to the user's location can be determined based on the mapping relationship. In this way, the area that the user needs to select can be automatically identified based on the user's location, thus ensuring the intelligence of the system.

[0054] Optionally, when the adjustment parameter is used to adjust the light, the smart device includes a lamp. The above steps, determining the adjustment parameter corresponding to the target area to obtain at least one adjustment parameter, can be performed through the following steps:

[0055] Obtain the user's preset illumination parameters;

[0056] Obtain P lamps corresponding to the target area, where P is an integer greater than 1;

[0057] Determine Q lamps corresponding to the user's location, where Q is a positive integer less than or equal to P;

[0058] Identify PQ lamps that are other than the Q lamps among the P lamps;

[0059] Determine the illumination coverage parameters of the Q lamps to obtain Q illumination coverage ranges;

[0060] Determine the center location of the Q irradiation coverage areas;

[0061] Determine the distance between the center location and the user location;

[0062] When the distance is less than or equal to a preset distance, the center position is set to the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the center position meets the preset illuminance parameter.

[0063] The influence coefficient of each of the PQ lamps on the center position is determined to obtain PQ first influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp.

[0064] Select the influence coefficients that are greater than the preset influence coefficient from the PQ first influence coefficients to obtain a influence coefficients, and obtain the remaining PQa influence coefficients, where a is a natural number less than or equal to PQ;

[0065] The adjustment parameters for the corresponding a lamps are determined based on the feedback of the a influence coefficients.

[0066] The adjustment parameters for each of the PQa lamps are determined based on the PQa influence coefficients.

[0067] The preset illumination parameter can be set in advance or left as a system default. The preset distance can be set in advance or left as a system default. The preset influence coefficient can be set in advance or left as a system default.

[0068] Among them, P lamps include Q lamps, that is, Q lamps belong to P lamps. The initial illuminance of each lamp in P lamps can be related to the preset illuminance parameter. For example, the two are equal, or the difference between the two is close to 0.

[0069] Among them, at least one adjustment parameter may include the adjustment parameters of Q lamps, the adjustment parameters of a lamps, and the adjustment parameters of PQa lamps.

[0070] Among them, P lamps are lamps that must be turned on in the target area, or P lamps are lamps that must be turned on and are recommended to be turned on in the target area.

[0071] Among them, Q lights are the lights that must be turned on or are recommended to be turned on within a certain range of the user's location. The certain range can be preset or set by system default.

[0072] In practice, the system can obtain the user's preset illumination parameters when the curtains are fully drawn, at night, or in a windowless hotel room. It can also pre-store the mapping relationship between preset areas and lamps, and then obtain P lamps corresponding to the target area based on the mapping relationship, where P is an integer greater than 1. It can also pre-store the mapping relationship between preset user positions and lamps, and determine Q lamps corresponding to the user positions based on the mapping relationship, where Q is a positive integer less than or equal to P. Finally, it can determine PQ lamps other than the Q lamps among the P lamps.

[0073] Furthermore, the illumination coverage parameters of Q lamps can be determined to obtain Q illumination coverage ranges. Since each lamp corresponds to an illumination coverage parameter, the center position of the Q illumination coverage ranges can also be determined. That is, the illumination coverage ranges can be modeled (a three-dimensional coordinate system can be established) to obtain multiple illumination coverage ranges. Then, the geometric center of these multiple illumination coverage ranges and the distance between the center position and the user position can be determined.

[0074] Next, when the distance is less than or equal to a preset distance, the center position can be set to a preset illuminance parameter, and corresponding adjustment parameters for Q luminaires can be generated to ensure that the illuminance at the center position meets the preset illuminance parameter. Specifically, the absolute value of the difference between the illuminance at the center position and the preset illuminance parameter is within a preset range, which can be preset or defaulted to by the system. In practice, the operating parameters of the Q luminaires can be adjusted to ensure that the illuminance at the center position meets the preset illuminance parameter. The difference between the maximum illuminance of the Q luminaires and the preset illuminance parameter is less than or equal to the upper limit of the preset range, and the difference between the minimum illuminance of the Q luminaires and the preset illuminance parameter is greater than or equal to the lower limit of the preset range.

[0075] Furthermore, the influence coefficient of each of the PQ lamps on the center position can be determined, resulting in PQ first influence coefficients. The influence coefficients are related to the illumination coverage and reflection of each lamp. The reflection can include diffuse reflection, which is related to the layout of the hotel rooms and the material of the hotel. In practice, the illumination coverage and reflection of each lamp can be considered. For example, the influence coefficient can be understood as the light intensity at the center position measured in advance when only any one of the PQ lamps is turned on, and the light intensity is used to reflect the influence coefficient.

[0076] Furthermore, if the first influence coefficient is greater than the preset influence coefficient, it indicates that the corresponding lighting fixture may affect the user experience. Therefore, we can select PQ first influence coefficients that are greater than the preset influence coefficient to obtain a influence coefficients, and then obtain the remaining PQa influence coefficients, where a is a natural number less than or equal to PQ. We can also pre-store the first mapping relationship between the preset influence coefficients and adjustment parameters. Based on this mapping relationship, we determine the adjustment parameters for each of the a influence coefficients corresponding to the lighting fixture. Based on these adjustment parameters, we can adjust the initial brightness of the corresponding lighting fixture. For example, we can lower the brightness, thus reducing the impact, making the light softer, and improving the user experience. Conversely, if the first influence coefficient is less than or equal to the preset influence coefficient, it means that the corresponding lamp will not affect the user experience. In this case, the adjustment parameter of the corresponding lamp can be set to 0, that is, no adjustment is made. That is, when determining the adjustment parameters of the corresponding PQa lamps based on the PQa influence coefficients, the corresponding adjustment parameter is set to 0. In this way, since the initial brightness of the lamp is based on the user's preset brightness parameter, the light is guaranteed to be softer. It can also take into account the impact on the user on diffuse reflection and light superposition, and adjust the brightness of the corresponding lamp based on feedback, so that the adjusted light is more suitable for the user and improves the user experience.

[0077] Furthermore, optionally, the following steps may also be included:

[0078] When the distance is greater than the preset distance, the midpoint position between the center position and the user position is determined, the midpoint position is set as the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the midpoint position meets the preset illuminance parameter.

[0079] Determine the influence coefficient of each of the PQ lamps on the midpoint position to obtain PQ second influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp; select the influence coefficients of the PQ second influence coefficients that are greater than the preset influence coefficients to obtain b influence coefficients, and obtain the remaining PQb influence coefficients, where b is a natural number less than or equal to PQ;

[0080] The adjustment parameters for the corresponding b lamps are determined based on the feedback of the b influence coefficients.

[0081] The adjustment parameters for each of the PQb lamps are determined based on the PQb influence coefficients.

[0082] In practical implementation, when the distance is greater than a preset distance, the midpoint between the center position and the user position can be determined. This midpoint is set as a preset illuminance parameter, and corresponding adjustment parameters for Q luminaires are generated. This ensures that the illuminance at the midpoint meets the preset illuminance parameter; that is, the absolute value of the difference between the illuminance at the midpoint and the preset illuminance parameter is within a preset range. Specifically, the operating parameters of the Q luminaires can be adjusted to ensure that the illuminance at the center meets the preset illuminance parameter. The difference between the maximum illuminance of the Q luminaires and the preset illuminance parameter is less than or equal to the upper limit of the preset range, and the difference between the minimum illuminance of the Q luminaires and the preset illuminance parameter is greater than or equal to the lower limit of the preset range.

[0083] Furthermore, the influence coefficient of each of the PQ lamps on the midpoint position can be determined, resulting in PQ second influence coefficients. These influence coefficients are related to the illumination coverage and reflection of each lamp. The reflection can include diffuse reflection, which is related to the layout of the hotel rooms and the material of the hotel. In practice, the illumination coverage and reflection of each lamp can be considered. For example, the influence coefficient can be understood as the light intensity at the center position measured in advance when only any one of the PQ lamps is turned on, and the light intensity is used to reflect the influence coefficient.

[0084] Furthermore, if the second influence coefficient is greater than the preset influence coefficient, it indicates that the corresponding lighting fixture may affect the user experience. PQ influence coefficients with second influence coefficients greater than the preset influence coefficient are selected to obtain b influence coefficients, and the remaining PQb influence coefficients are obtained, where b is a natural number less than or equal to PQ. The second mapping relationship between the preset influence coefficients and adjustment parameters can also be stored in advance. Based on this mapping relationship, the adjustment parameters of the lighting fixture corresponding to each of the b influence coefficients are determined. Based on the adjustment parameters, the initial brightness of the corresponding lighting fixture can be adjusted. For example, the brightness can be reduced, thus reducing the influence, making the light softer, and improving the user experience. Conversely, if the second influence coefficient is less than or equal to the preset influence coefficient, it means that the corresponding lamp will not affect the user experience. In this case, the adjustment parameter of the corresponding lamp can be set to 0, that is, no adjustment is made. That is, when determining the adjustment parameters of the corresponding PQb lamps based on the PQb influence coefficients, the corresponding adjustment parameter is set to 0. In this way, since the initial brightness of the lamp is based on the user's preset brightness parameter, the light is guaranteed to be softer. It can also take into account the impact on the user on diffuse reflection and light superposition, and adjust the brightness of the corresponding lamp based on feedback, so that the adjusted light is more suitable for the user and improves the user experience.

[0085] Optionally, the smart TV is communicatively connected to the user's wearable device, and the above steps of obtaining the user's preset brightness parameters may include the following steps:

[0086] Obtain the user's reference illumination parameters;

[0087] The wearable device is used to acquire the user's target physiological state parameters.

[0088] Determine the target optimization parameters corresponding to the target physiological state parameters;

[0089] The reference illumination parameters are optimized based on the target optimization parameters to obtain the preset illumination parameters.

[0090] The reference illumination parameter can be preset or set by system default. The target physiological state parameters may include at least one of the following: heart rate, blood temperature, respiratory rate, breathing sounds, electrocardiogram, electroencephalogram, etc., without limitation.

[0091] In practice, the system obtains the user's reference illumination parameters and the user's target physiological state parameters through wearable devices. It can also pre-store the mapping relationship between preset physiological state parameters and optimization parameters. The value range of the optimization parameters can be -0.1 to 0.1. Based on this mapping relationship, the target optimization parameters corresponding to the target physiological state parameters are determined. The reference illumination parameters are then optimized according to the target optimization parameters to obtain the preset illumination parameters. For example, the preset illumination parameters = (1 + target optimization parameters) * reference illumination parameters. In this way, a lighting effect that matches the user's physical and mental state can be obtained, ensuring that the light is softer and helping to improve the user experience.

[0092] As can be seen, the hotel room smart control method based on TV Bluetooth mesh described in this application embodiment is applied to the smart TV in the hotel room smart control system. The hotel room smart control system also includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. A communication connection is established between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room smart control system. The hotel room smart control system is initialized and configured. The smart TV receives the user's control commands, parses the control commands to obtain the control content, and controls the smart devices among the m smart devices related to the control content to perform the operations corresponding to the control content. Thus, by combining the smart TV and the Bluetooth mesh network, smart control of hotel rooms and smart homes is realized. It has the advantages of convenient operation, high integration, saving gateway costs, and more convenient debugging. In this way, the intelligence of hotel rooms can be improved and the user experience can be enhanced.

[0093] Consistent with the above embodiments, please refer to Figure 3 , Figure 3 This is a schematic diagram of the structure of a smart TV according to an embodiment of this application. As shown in the figure, the smart TV includes a processor, a memory, a communication interface, and one or more programs. The one or more programs are stored in the memory and configured to be executed by the processor. The smart TV is applied to a hotel room smart control system, which also includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. In this embodiment, the program includes instructions for performing the following steps:

[0094] The communication connection between the smart TV and the m smart devices is established through the Bluetooth mesh network module to form the hotel room smart control system, and the hotel room smart control system is initialized.

[0095] The smart TV receives user control commands and parses the commands to obtain control content.

[0096] Control the smart devices among the m smart devices that are related to the control content to perform operations corresponding to the control content.

[0097] Optionally, the smart TV serves as a control center, used for communication and control between the Bluetooth mesh network module and the m smart devices; the Bluetooth mesh network module is used for data transmission and communication between the smart TV and the m smart devices; any one of the m smart devices is used to perform a corresponding operation upon receiving the control command.

[0098] Optionally, the smart TV is located in a designated hotel room;

[0099] Regarding receiving user control commands via the smart TV, the above-mentioned program includes instructions for performing the following steps:

[0100] An indoor map of the designated hotel room is displayed on the smart TV; the indoor map includes multiple areas, each area corresponding to an area label, and the area label is used to guide the user to select the corresponding area;

[0101] Determine the target area selected by the user;

[0102] Determine the adjustment parameters corresponding to the target region to obtain at least one adjustment parameter;

[0103] The control command is generated based on the at least one adjustment parameter.

[0104] Optionally, the hotel room intelligent control system also includes multiple proximity sensors located at different positions;

[0105] Regarding the determination of the target area selected by the user, the above procedure includes instructions for performing the following steps:

[0106] The user's location is obtained by locating the user using the multiple proximity sensors;

[0107] Determine the target area corresponding to the user's location.

[0108] Optionally, when the adjustment parameter is used to adjust the light, the smart device includes a lamp, and in determining the adjustment parameter corresponding to the target area to obtain at least one adjustment parameter, the above procedure includes instructions for performing the following steps:

[0109] Obtain the user's preset illumination parameters;

[0110] Obtain P lamps corresponding to the target area, where P is an integer greater than 1;

[0111] Determine Q lamps corresponding to the user's location, where Q is a positive integer less than or equal to P;

[0112] Identify PQ lamps that are other than the Q lamps among the P lamps;

[0113] Determine the illumination coverage parameters of the Q lamps to obtain Q illumination coverage ranges;

[0114] Determine the center location of the Q irradiation coverage areas;

[0115] Determine the distance between the center location and the user location;

[0116] When the distance is less than or equal to a preset distance, the center position is set to the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the center position meets the preset illuminance parameter.

[0117] The influence coefficient of each of the PQ lamps on the center position is determined to obtain PQ first influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp.

[0118] Select the influence coefficients that are greater than the preset influence coefficient from the PQ first influence coefficients to obtain a influence coefficients, and obtain the remaining PQa influence coefficients, where a is a natural number less than or equal to PQ;

[0119] The adjustment parameters for the corresponding a lamps are determined based on the feedback of the a influence coefficients.

[0120] The adjustment parameters for each of the PQa lamps are determined based on the PQa influence coefficients.

[0121] Optionally, the above procedure may also include instructions for performing the following steps:

[0122] When the distance is greater than the preset distance, the midpoint position between the center position and the user position is determined, the midpoint position is set as the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the midpoint position meets the preset illuminance parameter.

[0123] The influence coefficient of each of the PQ lamps on the midpoint position is determined to obtain PQ second influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp.

[0124] Select the PQ second influence coefficients that are greater than the preset influence coefficient to obtain b influence coefficients, and obtain the remaining PQb influence coefficients, where b is a natural number less than or equal to PQ;

[0125] The adjustment parameters for the corresponding b lamps are determined based on the feedback of the b influence coefficients.

[0126] The adjustment parameters for each of the PQb lamps are determined based on the PQb influence coefficients.

[0127] Optionally, the smart TV is communicatively connected to the user's wearable device, and in acquiring the user's preset brightness parameters, the above-mentioned program includes instructions for performing the following steps:

[0128] Obtain the user's reference illumination parameters;

[0129] The wearable device is used to acquire the user's target physiological state parameters.

[0130] Determine the target optimization parameters corresponding to the target physiological state parameters;

[0131] The reference illumination parameters are optimized based on the target optimization parameters to obtain the preset illumination parameters.

[0132] As can be seen, the smart TV in the hotel room intelligent control system described in this application embodiment also includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. A communication connection is established between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room intelligent control system. The system is then initialized and configured. The smart TV receives user control commands, parses them to obtain control content, and controls the smart devices among the m smart devices related to the control content to perform operations corresponding to the control content. Thus, the combination of the smart TV and the Bluetooth mesh network enables intelligent control of hotel rooms and smart homes, offering advantages such as convenient operation, high integration, reduced gateway costs, and easier debugging. This enhances the intelligence of hotel rooms and improves the user experience.

[0133] Figure 4This is a functional unit block diagram of a hotel room intelligent control system 400 based on a TV Bluetooth mesh network, as described in this application embodiment. The hotel room intelligent control system 400 based on a TV Bluetooth mesh network includes a smart TV, a Bluetooth mesh network module, and m smart devices, where m is a positive integer. The hotel room intelligent control system 400 based on a TV Bluetooth mesh network includes: a setup unit 401, a parsing unit 402, and a control unit 403, wherein...

[0134] The establishment unit 401 is used to establish a communication connection between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room smart control system, and to initialize the hotel room smart control system.

[0135] The parsing unit 402 is used to receive control commands from the user through the smart TV and parse the control commands to obtain control content;

[0136] The control unit 403 is used to control the smart device among the m smart devices that is related to the control content to perform the operation corresponding to the control content.

[0137] Optionally, the smart TV serves as a control center, used for communication and control between the Bluetooth mesh network module and the m smart devices;

[0138] The Bluetooth mesh network module is used for data transmission and communication with the smart TV and the m smart devices;

[0139] Any one of the m intelligent devices is used to perform a corresponding operation when the control command is received.

[0140] Optionally, the smart TV is located in a designated hotel room;

[0141] In receiving user control commands via the smart TV, the parsing unit 402 is specifically configured to:

[0142] An indoor map of the designated hotel room is displayed on the smart TV; the indoor map includes multiple areas, each area corresponding to an area label, and the area label is used to guide the user to select the corresponding area;

[0143] Determine the target area selected by the user;

[0144] Determine the adjustment parameters corresponding to the target region to obtain at least one adjustment parameter;

[0145] The control command is generated based on the at least one adjustment parameter.

[0146] Optionally, the hotel room intelligent control system also includes multiple proximity sensors located at different positions;

[0147] In determining the target area selected by the user, the parsing unit 402 is specifically used for:

[0148] The user's location is obtained by locating the user using the multiple proximity sensors;

[0149] Determine the target area corresponding to the user's location.

[0150] Optionally, when the adjustment parameters are used to adjust the light, the smart device includes a lamp, and in determining the adjustment parameters corresponding to the target area to obtain at least one adjustment parameter, the parsing unit 402 is specifically used for:

[0151] Obtain the user's preset illumination parameters;

[0152] Obtain P lamps corresponding to the target area, where P is an integer greater than 1;

[0153] Determine Q lamps corresponding to the user's location, where Q is a positive integer less than or equal to P;

[0154] Identify PQ lamps that are other than the Q lamps among the P lamps;

[0155] Determine the illumination coverage parameters of the Q lamps to obtain Q illumination coverage ranges;

[0156] Determine the center location of the Q irradiation coverage areas;

[0157] Determine the distance between the center location and the user location;

[0158] When the distance is less than or equal to a preset distance, the center position is set to the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the center position meets the preset illuminance parameter.

[0159] The influence coefficient of each of the PQ lamps on the center position is determined to obtain PQ first influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp.

[0160] Select the influence coefficients that are greater than the preset influence coefficient from the PQ first influence coefficients to obtain a influence coefficients, and obtain the remaining PQa influence coefficients, where a is a natural number less than or equal to PQ;

[0161] The adjustment parameters for the corresponding a lamps are determined based on the feedback of the a influence coefficients.

[0162] The adjustment parameters for each of the PQa lamps are determined based on the PQa influence coefficients.

[0163] Optionally, the parsing unit 402 is further specifically used for:

[0164] When the distance is greater than the preset distance, the midpoint position between the center position and the user position is determined, the midpoint position is set as the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the midpoint position meets the preset illuminance parameter.

[0165] The influence coefficient of each of the PQ lamps on the midpoint position is determined to obtain PQ second influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp.

[0166] Select the PQ second influence coefficients that are greater than the preset influence coefficient to obtain b influence coefficients, and obtain the remaining PQb influence coefficients, where b is a natural number less than or equal to PQ;

[0167] The adjustment parameters for the corresponding b lamps are determined based on the feedback of the b influence coefficients.

[0168] The adjustment parameters for each of the PQb lamps are determined based on the PQb influence coefficients.

[0169] Optionally, the smart TV is communicatively connected to the user's wearable device, and in acquiring the user's preset brightness parameters, the parsing unit 402 is specifically used for:

[0170] Obtain the user's reference illumination parameters;

[0171] The wearable device is used to acquire the user's target physiological state parameters.

[0172] Determine the target optimization parameters corresponding to the target physiological state parameters;

[0173] The reference illumination parameters are optimized based on the target optimization parameters to obtain the preset illumination parameters.

[0174] As can be seen, the hotel room intelligent control system based on TV Bluetooth mesh described in this application embodiment is applied to a smart TV in the hotel room intelligent control system. The hotel room intelligent control system also includes a Bluetooth mesh network module and m smart devices, where m is a positive integer. A communication connection is established between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room intelligent control system. The hotel room intelligent control system is initialized and set up. The smart TV receives the user's control commands, parses the control commands to obtain the control content, and controls the smart devices among the m smart devices related to the control content to perform the operations corresponding to the control content. Thus, by combining the smart TV and the Bluetooth mesh network, intelligent control of hotel rooms and smart homes is realized. It has the advantages of convenient operation, high integration, saving gateway costs, and more convenient debugging. In this way, the intelligence of hotel rooms can be improved and the user experience can be enhanced.

[0175] It is understood that the functions of each program module of the hotel room intelligent control system based on TV Bluetooth mesh in this embodiment can be specifically implemented according to the methods in the above method embodiments. The specific implementation process can be referred to the relevant descriptions in the above method embodiments, and will not be repeated here.

[0176] This application also provides a computer storage medium storing a computer program for electronic data interchange, which causes a computer to perform some or all of the steps of any of the methods described in the above method embodiments.

[0177] This application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps of any of the methods described in the above method embodiments. This computer program product can be a software installation package.

[0178] It should be noted that, for the sake of simplicity, the foregoing method embodiments are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, as some steps may be performed in other orders or simultaneously according to this application. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions and modules involved are not necessarily essential to this application.

[0179] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0180] In the several embodiments provided in this application, it should be understood that the disclosed apparatus can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of the units described above is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between devices or units may be electrical or other forms.

[0181] The units described above as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0182] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.

[0183] If the integrated units described above are implemented as software functional units and sold or used as independent products, they can be stored in a computer-readable storage device (CMD). Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a memory and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned memory includes various media capable of storing program code, such as USB flash drives, read-only memory (ROM), random access memory (RAM), portable hard drives, magnetic disks, or optical disks.

[0184] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be implemented by a program instructing related hardware. The program can be stored in a computer-readable storage medium, which may include: flash drive, read-only memory (ROM), random access memory (RAM), disk or optical disk, etc.

[0185] The embodiments of this application have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.

Claims

1. A smart control method for hotel rooms based on a TV's Bluetooth mesh, characterized in that, A smart TV is used in a hotel room intelligent control system, which further includes a Bluetooth mesh network module and m smart devices, where m is a positive integer; the method includes: The communication connection between the smart TV and the m smart devices is established through the Bluetooth mesh network module to form the hotel room smart control system, and the hotel room smart control system is initialized. The smart TV receives control commands from the user and parses the commands to obtain control content. The control content includes the controlled object and the corresponding control parameters. The control parameters include the operating parameters and adjustment parameters of the smart device. Control the smart devices among the m smart devices that are related to the control content to perform operations corresponding to the control content; Receiving user control commands via the smart TV includes displaying an indoor map of a specified hotel room on the smart TV; the indoor map includes multiple areas, each area corresponding to an area label, the area label being used to guide the user to select the corresponding area; and determining the target area selected by the user. When the adjustment parameters are used to adjust the lighting, the smart device, including the lighting fixture, determines the adjustment parameters corresponding to the target area, and obtains at least one adjustment parameter, including: Obtain the user's preset illumination parameters; Obtain P lamps corresponding to the target area, where P is an integer greater than 1; Determine Q lamps corresponding to the user's location, where Q is a positive integer less than or equal to P; Identify PQ lamps that are other than the Q lamps among the P lamps; Determine the illumination coverage parameters of the Q lamps to obtain Q illumination coverage ranges; Determine the center location of the Q irradiation coverage areas; Determine the distance between the center location and the user location; When the distance is less than or equal to a preset distance, the center position is set to the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the center position meets the preset illuminance parameter. The influence coefficient of each of the PQ lamps on the center position is determined to obtain PQ first influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp. Select the influence coefficients that are greater than the preset influence coefficient from the PQ first influence coefficients to obtain a influence coefficients, and obtain the remaining PQa influence coefficients, where a is a natural number less than or equal to PQ; The adjustment parameters for the corresponding a lamps are determined based on the feedback of the a influence coefficients. The adjustment parameters for each of the PQa lamps are determined based on the PQa influence coefficients.

2. The method according to claim 1, characterized in that, The smart TV serves as the control center, used for communication and control between the Bluetooth mesh network module and the m smart devices; The Bluetooth mesh network module is used for data transmission and communication with the smart TV and the m smart devices; Any one of the m intelligent devices is used to perform a corresponding operation when the control command is received.

3. The method according to claim 1, characterized in that, The hotel room intelligent control system also includes multiple proximity sensors installed in different locations; Determining the target area selected by the user includes: The user's location is obtained by locating the user using the multiple proximity sensors; Determine the target area corresponding to the user's location.

4. The method according to claim 1, characterized in that, The method further includes: When the distance is greater than the preset distance, the midpoint position between the center position and the user position is determined, the midpoint position is set as the preset illuminance parameter, and the corresponding adjustment parameters of the Q lamps are generated so that the illuminance at the midpoint position meets the preset illuminance parameter. The influence coefficient of each of the PQ lamps on the midpoint position is determined to obtain PQ second influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp. Select the PQ second influence coefficients that are greater than the preset influence coefficient to obtain b influence coefficients, and obtain the remaining PQb influence coefficients, where b is a natural number less than or equal to PQ; The adjustment parameters for the corresponding b lamps are determined based on the feedback of the b influence coefficients. The adjustment parameters for each of the PQb lamps are determined based on the PQb influence coefficients.

5. The method according to claim 1, characterized in that, The smart TV is communicatively connected to the user's wearable device, and the step of obtaining the user's preset brightness parameters includes: Obtain the user's reference illumination parameters; The wearable device is used to acquire the user's target physiological state parameters. Determine the target optimization parameters corresponding to the target physiological state parameters; The reference illumination parameters are optimized based on the target optimization parameters to obtain the preset illumination parameters.

6. A smart control system for hotel rooms based on a TV's Bluetooth mesh, characterized in that, The hotel room intelligent control system includes a smart TV, a Bluetooth mesh network module, and m smart devices, where m is a positive integer; the system includes: a setup unit, a parsing unit, and a control unit, wherein... The establishment unit is used to establish a communication connection between the smart TV and the m smart devices through the Bluetooth mesh network module to form the hotel room smart control system, and to initialize the hotel room smart control system. The parsing unit is used to receive control commands from the user through the smart TV and parse the control commands to obtain control content; The control unit is used to control the smart device among the m smart devices that is related to the control content to perform an operation corresponding to the control content; Receiving user control commands via the smart TV includes displaying an indoor map of a specified hotel room on the smart TV; the indoor map includes multiple areas, each area corresponding to an area label, the area label being used to guide the user to select the corresponding area; and determining the target area selected by the user. The control content includes the controlled object and the corresponding control parameters; wherein, the control parameters include the operating parameters and adjustment parameters of the smart device; The parsing unit is specifically used for: obtaining the user's preset illumination parameters; obtaining P lamps corresponding to the target area, where P is an integer greater than 1; determining Q lamps corresponding to the user's position, where Q is a positive integer less than or equal to P; determining PQ lamps other than the Q lamps among the P lamps; determining the illumination coverage parameters of the Q lamps to obtain Q illumination coverage ranges; determining the center position of the Q illumination coverage ranges; determining the distance between the center position and the user's position; and when the distance is less than or equal to a preset distance, setting the center position as the preset illumination parameters and generating corresponding values ​​for the Q lamps. The adjustment parameters are adjusted so that the illumination at the center position meets the preset illumination parameters; the influence coefficient of each of the PQ lamps on the center position is determined, resulting in PQ first influence coefficients; the influence coefficients are related to the illumination coverage and reflection of each lamp; the influence coefficients greater than the preset influence coefficient among the PQ first influence coefficients are selected to obtain a influence coefficients, and the remaining PQa influence coefficients are obtained, where a is a natural number less than or equal to PQ; the adjustment parameters of the corresponding a lamps are determined based on the feedback of the a influence coefficients; the adjustment parameters of the corresponding PQa lamps are determined based on the PQa influence coefficients.

7. The system according to claim 6, characterized in that, The smart TV serves as the control center, used for communication and control between the Bluetooth mesh network module and the m smart devices; The Bluetooth mesh network module is used for data transmission and communication with the smart TV and the m smart devices; Any one of the m intelligent devices is used to perform a corresponding operation when the control command is received.