Whole house air conditioning method and device and storage medium
By constructing a list of perception and control capabilities, and using distributed perception-centralized decision-distributed control, the problem of equipment cannot be linked in the whole-house air conditioning system is solved, and the efficiency of air conditioning and user satisfaction are improved.
Patent Information
- Application Number
- CN202410237395.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-01
- Publication Date
- 2025-09-02
AI Technical Summary
In the existing whole-house air conditioning system, each device cannot be linked, the control efficiency is low, and it cannot meet the user's usage needs.
By constructing a list of perception capabilities and control capabilities, the target perception units and control devices are determined, and the distributed perception-centralized decision-distributed control method is adopted to achieve whole-house air conditioning.
It improves the air perception and regulation efficiency in the whole house area, meets the user's air conditioning needs, and avoids the problem of low control efficiency caused by the inability to linkage of equipment.
Smart Images

Figure CN120576458A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of air conditioners, and in particular to a whole-house air conditioning method, device and storage medium. Background Art
[0002] Traditional whole-house air conditioning systems generally use individual devices as the basic units when regulating the air throughout the house. That is, the granularity of the air conditioning process is each device. During this process, some devices may only have the ability to sense but not the ability to regulate the air, or some devices may only have the ability to regulate the air but not the ability to sense the ambient air. As a result, the capabilities of a certain device may be fully used or not used at all, making the whole-house air conditioning unable to meet the user's usage needs during the air conditioning process.
[0003] The above content is only used to assist in understanding the technical solution of the present invention and does not constitute an admission that the above content is prior art. Summary of the Invention
[0004] The main purpose of the present invention is to provide a whole-house air conditioning method, device and storage medium, aiming to solve the technical problems in the prior art of the whole-house air conditioning process, in which the various devices cannot be linked together, the control efficiency is low, and the user's usage needs cannot be met.
[0005] To achieve the above object, the present invention provides a whole-house air conditioning method, which comprises the following steps:
[0006] When running the integrated sensing and control mode, the target sensing unit that meets the sensing requirements is determined according to the sensing capability list to obtain the air dimension data sensed by the target sensing unit;
[0007] When receiving the target air dimension data, the target control device is determined based on the control capability list;
[0008] The target control device is controlled to operate according to the target air dimension data.
[0009] Optionally, before the step of receiving the target air dimension data, the method further includes:
[0010] The target air dimension data is generated based on the air dimension data sensed by the target sensing unit through a preset decision model.
[0011] Optionally, the step of generating the target air dimension data based on the air dimension data sensed by the target sensing unit by using a preset decision model includes:
[0012] Querying a preset mapping table to obtain target air dimension data corresponding to the air dimension data sensed by the target sensing unit; or,
[0013] The target air dimension data corresponding to the air dimension data is generated by the trained target air dimension value recommendation model.
[0014] Optionally, the step of determining, according to the sensing capability list, a sensing unit corresponding to the air dimension data to be sensed includes:
[0015] Get the list of sensing capabilities corresponding to the air dimension data that needs to be sensed;
[0016] According to the perception priority of each perception unit in the perception capability list, the perception unit corresponding to the air dimension that needs to be perceived is determined.
[0017] Optionally, the step of determining the target control device according to the control capability list includes:
[0018] determining an adjustment requirement for the air dimension data according to the air dimension data and the target air dimension data;
[0019] Determine the target control capability list corresponding to the adjustment requirements;
[0020] Determine the target control device from the target control capability list.
[0021] Optionally, determining the target control device from the target control capability list includes:
[0022] The target control device is determined according to the priority of each control device in the target control capability list.
[0023] Optionally, the target control capability list includes: an energy efficiency list and a comfort list, wherein the comfort list includes a list of devices in the entire house whose air dimension data adjustment rate is greater than a preset threshold, and the energy efficiency list includes a list of devices in the entire house whose air dimension data adjustment energy consumption is less than a preset energy consumption;
[0024] The determining of the target control device according to the control capability list further includes:
[0025] When the current air dimension data does not reach the target air dimension data, determining a target control device according to the comfort list;
[0026] When the current air dimension data reaches the target air dimension data, the target control device is determined according to the energy efficiency list.
[0027] Optionally, the step of constructing a list of perception capabilities in the entire house area includes:
[0028] Obtaining the device code, priority, and ability to perceive air dimension data of each sensing unit in the target area; constructing a sensing capability list based on the device code, priority, and ability to perceive air dimension data of the sensing unit; and / or,
[0029] The steps of constructing a control capability list within the entire house include:
[0030] Obtain the equipment code, priority and ability to adjust air dimension data of each air conditioning equipment in the target area; and construct a control capability list based on the equipment code, priority and ability to adjust air dimension data of the air conditioning equipment.
[0031] In addition, to achieve the above-mentioned purpose, the present invention further provides a whole-house air conditioning device, the whole-house air conditioning device comprising:
[0032] An acquisition module is configured to determine a target sensing unit that meets the sensing requirements based on a sensing capability list to obtain air dimension data sensed by the target sensing unit, wherein the sensing capability list includes a list of sensing units in the entire house that have the capability to sense air dimension data, or a list of sensing units that do not have the capability to sense air dimension data;
[0033] a determination module configured to, upon receiving the target air dimension data, determine the target control device according to a control capability list, wherein the control capability list includes a list of devices in the entire house that have the ability to adjust the air dimension data, or a list of devices that do not have the ability to adjust the air dimension data;
[0034] A control module is used to control the target control device to operate according to the target air dimension data.
[0035] In addition, to achieve the above-mentioned purpose, the present invention also proposes a whole-house air conditioning device, which includes: a memory, a processor, and a whole-house air conditioning program stored on the memory and runnable on the processor, and the whole-house air conditioning program is configured to implement the steps of the whole-house air conditioning method described above.
[0036] In addition, to achieve the above objectives, the present invention also proposes a storage medium, which stores a whole-house air conditioning program. When the whole-house air conditioning program is executed by a processor, the steps of the whole-house air conditioning method described above are implemented.
[0037] The present invention discloses a whole-house air conditioning method, which comprises: determining a target sensing unit that meets the sensing requirements according to a sensing capability list to obtain air dimension data sensed by the target sensing unit; when the target air dimension data is received, determining a target control device according to a control capability list; and controlling the target control device to operate according to the target air dimension data. Compared with the prior art, the present invention determines the target sensing unit that meets the sensing requirements in the whole-house air conditioning process through a pre-constructed sensing capability list, and obtains the air dimension data sensed by the target sensing unit to improve the air sensing capability and efficiency in the whole-house area, and then determines the target control device according to the pre-constructed control capability list to improve the efficiency of the air conditioning capability in the whole-house area, and then controls the target control device to operate according to the target air dimension data to realize whole-house air conditioning, thereby avoiding the technical problems in the prior art in that, during the whole-house air conditioning process, various devices cannot be linked together, the control efficiency is low, and the user's usage needs cannot be met. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] Figure 1 It is a structural diagram of a whole-house air conditioning device in the hardware operating environment involved in the embodiment of the present invention;
[0039] Figure 2 This is a flow chart of a first embodiment of the whole-house air conditioning method of the present invention;
[0040] Figure 3 This is a control logic diagram of an embodiment of a whole-house air conditioning method of the present invention;
[0041] Figure 4 This is a flow chart of a second embodiment of the whole-house air conditioning method of the present invention;
[0042] Figure 5 This is a flow chart of a third embodiment of the whole-house air conditioning method of the present invention;
[0043] Figure 6 This is a structural block diagram of the first embodiment of the whole-house air conditioning device of the present invention.
[0044] The purpose, features and advantages of the present invention will be further described with reference to the accompanying drawings and in conjunction with the embodiments. DETAILED DESCRIPTION
[0045] It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0046] Reference Figure 1 , Figure 1 This is a schematic diagram of the structure of a whole-house air conditioning device in the hardware operating environment involved in the embodiment of the present invention.
[0047] like Figure 1 As shown, the whole-house air conditioning equipment may include: a processor 101, such as a central processing unit (CPU), a communication bus 102, a user interface 103, a network interface 104, and a memory 105. Among them, the communication bus 102 is used to realize the connection and communication between these components. The user interface 103 may include a display screen (Display), an input unit such as a keyboard (Keyboard), and the user interface 103 may optionally include a standard wired interface and a wireless interface. The network interface 104 may optionally include a standard wired interface and a wireless interface (such as a wireless fidelity (Wireless-Fidelity, Wi-Fi) interface). The memory 105 may be a high-speed random access memory (Random Access Memory, RAM) or a stable non-volatile memory (Non-Volatile Memory, NVM), such as a disk storage. The memory 105 may optionally be a storage device independent of the aforementioned processor 101.
[0048] Those skilled in the art will understand that Figure 1 The structure shown in the figure does not constitute a limitation on the whole-house air conditioning equipment, and may include more or fewer components than shown in the figure, or combine certain components, or arrange the components differently.
[0049] like Figure 1 As shown, the memory 105 as a storage medium may include an operating system, a network communication module, a user interface module, and a whole-house air conditioning program.
[0050] exist Figure 1 In the whole-house air conditioning device shown, the network interface 104 is mainly used for data communication with the network server; the user interface 103 is mainly used for data interaction with the user; the processor 101 and the memory 105 in the whole-house air conditioning device of the present invention can be set in the whole-house air conditioning device, and the whole-house air conditioning device calls the whole-house air conditioning program stored in the memory 105 through the processor 101 and executes the whole-house air conditioning method provided by the embodiment of the present invention.
[0051] The embodiment of the present invention provides a whole-house air conditioning method, referring to Figure 2 , Figure 2 This is a flow chart of a first embodiment of a whole-house air conditioning method according to the present invention.
[0052] In this embodiment, the whole-house air conditioning method includes the following steps:
[0053] Step S10: Determine a target sensing unit that meets the sensing requirements according to the sensing capability list to obtain air dimension data sensed by the target sensing unit.
[0054] It should be noted that the execution subject of the method of this embodiment can be a device with functions such as data processing, network communication and program running, such as: a controller of a whole-house air-conditioning system or a cloud control server, etc., or other devices that can achieve the same or similar functions. This embodiment does not impose specific restrictions on this. In this embodiment and the following embodiments, the controller of the whole-house air-conditioning system will be used as an example for explanation.
[0055] It should be understood that the existing whole-house system can only be granular with devices, that is, by binding or unbinding devices, the capabilities of the device can be fully used or not used at all. However, some devices are single-sensing, that is, they only have perception capabilities, such as air boxes; some devices are single-control, that is, they only have control capabilities, such as humidifiers or electric heaters without humidity sensors, etc. Some devices are integrated with sensing and control, such as air conditioners with temperature sensors; some devices have strong control but insufficient perception, and may need to rely on other sensing devices; some devices have strong perception but insufficient control, and may need to rely on other control devices; some perception or control capabilities, users do not want to expose for the whole-house system to call.
[0056] For the above situation, refer to Figure 3 This embodiment constructs a list of units with sensing capabilities and a list of devices with control capabilities throughout the house, so that when the air in the whole house needs to be adjusted, air conditioning in the whole house can be achieved through a distributed sensing-centralized decision-making-distributed control approach. Sensing and control do not necessarily require the same device. For example, an air conditioner temperature sensor can be used to control floor heating, and an air box temperature sensor and a humidifier humidity sensor can be used to control the air conditioner.
[0057] It is understandable that the sensing capability list records sensing units with sensing capabilities in the entire house. The sensing units can be components, sensors, etc. with air sensing capabilities and are not limited to a specific device. They are used to sense air properties according to the user's sensing needs. Furthermore, the step of determining the sensing unit corresponding to the air dimension data to be sensed based on the sensing capability list includes:
[0058] Get the list of sensing capabilities corresponding to the air dimension data that needs to be sensed;
[0059] According to the perception priority of each perception unit in the perception capability list, the perception unit corresponding to the air dimension that needs to be perceived is determined.
[0060] The perception capability list records each perception unit with perception capability, and also sorts each perception unit according to the set priority, so that when obtaining the air dimension data of the surrounding environment, the perception unit corresponding to the air dimension to be perceived can be selected according to the priority of each perception unit. For example: the perception priority of the air conditioner is level 1, and the perception priority of floor heating is level 2. When obtaining air dimension data, the data perceived by the air conditioner is used first. If the air conditioner is offline or disabled by the user, the data perceived by the floor heating is used.
[0061] In a specific implementation, the perception demand can be that the whole-house air-conditioning system detects that the temperature, humidity, air flow rate and other factors in the room are different from the area set by the user, and automatically adjusts the generated demand. In this embodiment, when the whole-house air-conditioning system runs the integrated sensing and control function, it executes the target sensing unit that meets the perception demand based on the perception capability list at every preset interval of time T to obtain the air dimension data perceived by the target sensing unit, so as to adjust the air dimension data for each air dimension data and improve the user's comfort. The air dimension data includes but is not limited to: temperature, humidity, air flow rate and fresh air volume.
[0062] Step S20: When the target air dimension data is received, the target control device is determined according to the control capability list.
[0063] It should be understood that the entire house area may be divided into multiple sub-areas due to terrain and other reasons, and is subject to the limitations of device perception and control, making it impossible to perceive or control each sub-area. Therefore, when adjusting the control dimension data within the entire house, this embodiment needs to determine the target control device based on the control capability list to improve the efficiency of air conditioning.
[0064] The target air dimension data refers to the air dimension data that needs to be adjusted, and in order to avoid the problem of being divided into multiple sub-areas due to terrain and other reasons, the target air dimension data also records specific area information.
[0065] For example, if it is detected that the temperature in the bedroom is low, when determining the target control device, it is necessary to select a control device that can affect the bedroom, such as a bedroom heater or a bedroom air conditioner, to increase the temperature of the bedroom.
[0066] The control devices in this embodiment include but are not limited to air conditioners, floor heating, electric fans, dehumidifiers and other devices that can control at least one air dimension data, and if the control device can control multiple air dimension data, the control processes do not affect each other. For example: the air conditioner can control the temperature, humidity, fresh air volume and air flow rate of the indoor environment. When there are multiple air dimension adjustment requirements at the same time, if the air conditioner can be used as the target control device, multiple modes can be run at the same time to achieve the adjustment of multiple air dimension data.
[0067] Furthermore, the step of determining the target control device according to the control capability list includes:
[0068] determining an adjustment requirement for the air dimension data according to the air dimension data and the target air dimension data;
[0069] Determine the target control capability list corresponding to the adjustment requirements;
[0070] Determine the target control device from the target control capability list.
[0071] It can be understood that the process of determining the adjustment requirements of air dimension data takes temperature as an example. If the current temperature in the current area is 15°C, and the received target air dimension data is 25°C, then the temperature in the current area needs to be increased by 10°C. The target control capability list is the equipment in the current area that has the ability to increase the temperature.
[0072] Furthermore, determining the target control device from the target control capability list includes:
[0073] The target control device is determined according to the priority of each control device in the target control capability list.
[0074] Based on the settings of distributed perception-centralized decision-distributed control in this embodiment, when there are multiple control devices in this embodiment, the target control device can be determined according to the priority of each control device in the target control capability list.
[0075] In addition, in order to improve the user experience of air conditioning and reduce the energy consumption of the equipment after the air conditioning is completed, in this embodiment, the target control device is determined according to the control capability list, which also includes:
[0076] When the current air dimension data does not reach the target air dimension data, determining a target control device according to the comfort list;
[0077] When the current air dimension data reaches the target air dimension data, the target control device is determined according to the energy efficiency list.
[0078] The target control capability list in this embodiment includes: an energy efficiency list and a comfort list. The comfort list includes a list of devices in the entire house whose air dimension data adjustment rate is greater than a preset threshold, and the energy efficiency list includes a list of devices in the entire house whose air dimension data adjustment energy consumption is less than a preset energy consumption.
[0079] In the specific implementation, taking temperature as an example, when the current temperature has not reached the target temperature, it means that there is a need for temperature adjustment at this time. In order to shorten the duration of temperature adjustment and meet the needs of users, a control device with a larger temperature adjustment rate is used, such as an air conditioner, to adjust the temperature of the surrounding environment; after the current temperature reaches the target temperature, it means that there is no need for temperature adjustment at this time. At this time, if you want to maintain the target temperature, the target control device still cannot stop running, but because a control device with a larger temperature adjustment rate is used during the adjustment process, the corresponding energy consumption is also relatively high. However, to maintain the temperature stability of the current environment, a higher temperature adjustment rate is not required. At this time, in order to reduce the operating energy consumption of the equipment, you can adjust the equipment with lower energy consumption by running air dimension data, such as electric fans, to reduce operating energy consumption.
[0080] Step S30: controlling the target control device to operate according to the target air dimension data.
[0081] This embodiment determines the target sensing unit that meets the sensing requirements during the whole-house air conditioning process through a pre-constructed sensing capability list, and obtains the air dimension data sensed by the target sensing unit to improve the air sensing capability and efficiency in the whole-house area. Then, the target control device is determined according to the pre-constructed control capability list to improve the efficiency of the air conditioning capability in the whole-house area, and then the target control device is controlled to operate according to the target air dimension data to realize whole-house air conditioning, avoiding the technical problems in the prior art in the whole-house air conditioning process, in which the various devices cannot be linked together, the control efficiency is low, and the user's usage needs cannot be met.
[0082] refer to Figure 4 , Figure 4 This is a flow chart of a second embodiment of a whole-house air conditioning method according to the present invention.
[0083] Based on the first embodiment above, in this embodiment, before step S20, the following steps are further included:
[0084] Step S110: Generate the target air dimension data based on the air dimension data sensed by the target sensing unit through a preset decision model.
[0085] It should be noted that the preset decision model is used to output target air dimension data to provide criteria for controlling the operation of the device. The target air dimension data can be generated by the preset decision model burned in the cloud server or controller based on the air dimension data perceived by the target sensing unit, or it can be a user-set value. This embodiment does not impose any specific restrictions on this.
[0086] Furthermore, the step of generating the target air dimension data based on the air dimension data sensed by the target sensing unit by using a preset decision model includes:
[0087] Querying a preset mapping table to obtain target air dimension data corresponding to the air dimension data sensed by the target sensing unit; or,
[0088] The target air dimension data corresponding to the air dimension data is generated by the trained target air dimension value recommendation model.
[0089] In a specific implementation, the specific steps of generating target air dimension data in this embodiment can be to query a pre-stored mapping table to obtain the target air dimension data corresponding to the air dimension data perceived by the target perception unit, wherein the preset mapping table stores the current air dimension data and the theoretical air dimension data corresponding to the current air dimension data, which are used to determine the adjusted air dimension and amplitude.
[0090] In addition, a target air dimension value recommendation model can be constructed through machine learning or deep learning to estimate the target air dimension data, which is not specifically limited in this embodiment.
[0091] This embodiment generates target air dimension data based on the air dimension data sensed by the target sensing unit through a preset decision model, so as to control the target control device according to the target air dimension data, meet the user's air conditioning needs, and improve the user experience.
[0092] refer to Figure 5 , Figure 5 This is a flow chart of a third embodiment of a whole-house air conditioning method according to the present invention.
[0093] Based on the first embodiment above, in this embodiment, before step S10, the following steps are further included:
[0094] Step S01: Construct and update the perception capability list and control capability list for the entire house area.
[0095] It should be noted that the perception capability list includes a list of devices in each working area that have the ability to perceive air dimension data, or a list of devices that do not have the ability to perceive air dimension data; the control capability list includes a list of devices in each working area that have the ability to adjust air dimension data, or a list of devices that do not have the ability to adjust air dimension data.
[0096] Among them, the list of devices that do not have the ability to perceive air dimension data refers to a list of devices that users are prohibited from sharing perception, or some special areas, which are used to improve user privacy. For example, for a kitchen, when the whole house is cooled, cooking in the kitchen will inevitably cause the temperature in the kitchen area to be higher than other working areas. Similarly, the list of devices that do not have the ability to adjust air dimension data refers to areas that users are prohibited from sharing control, or some special areas, which are used to improve user privacy. For example, in some laboratories, the temperature must be kept within a temperature range. In order to avoid losses caused by misoperation, it is generally prohibited to control it through the controller of the whole-house air conditioner.
[0097] Furthermore, the step of constructing a list of perception capabilities in the entire house area includes:
[0098] Obtain the device code, priority, and ability to perceive air dimension data of each sensing unit in the target area; and construct a sensing capability list based on the device code, priority, and ability to perceive air dimension data of the sensing unit.
[0099] In the specific implementation, when constructing the perception capability list in the whole house area, you can first construct a perception capability list for each workspace in the whole house area separately. The list includes the device ID and priority of the perception unit and the ability of air dimension data to perceive air dimension data. For example: air conditioning A, temperature, L1, it means that air conditioning A provides temperature perception capability, priority L1; air conditioning A, humidity, L2, it means that air conditioning A provides humidity perception capability, priority L2; floor heating A, temperature, L2, it means that floor heating A provides temperature perception capability, priority L2.
[0100] If it is added to the perception capability list, it means that the perception capability of the device is available; if it is not added to the perception capability list, it means that the perception capability of the device is not available; the same device can provide multiple perception capabilities, and the same perception capability can also be provided by multiple devices; for the same perception capability, if it is provided by multiple devices, the information source is confirmed based on priority.
[0101] Furthermore, the step of constructing a control capability list in the entire house area includes:
[0102] Obtain the equipment code, priority and ability to adjust air dimension data of each air conditioning equipment in the target area; and construct a control capability list based on the equipment code, priority and ability to adjust air dimension data of the air conditioning equipment.
[0103] In the specific implementation, when constructing the control capability list for the entire house area, you can first construct a control capability list for each workspace in the entire house area separately. The list includes the device ID, priority and ability to adjust air dimension data of the control device that can realize the air conditioning function. For example: air conditioning A, temperature rise, L2, it means that air conditioning A provides temperature rise control capability (heating mode), priority L2; air conditioning A, temperature drop, L1, it means that air conditioning A provides temperature drop control capability (cooling mode), priority L1; floor heating A, temperature rise, L1, it means that floor heating A provides temperature rise control capability (heating mode), priority L1.
[0104] If a device is added to the control capability list, it means that the control capability is available for the device; if it is not added to the control capability list, it means that the control capability is not available for the device; the same device can provide multiple control capabilities, and the same control capability can also be provided by multiple devices; for the same control capability, if it is provided by multiple devices, the control target is confirmed based on priority.
[0105] This embodiment constructs a perception capability list in advance based on the device code, priority and ability to perceive air dimensional data of each perception unit, and constructs a control capability list based on the device code, priority and ability to adjust air dimensional data of each air conditioning device, so as to facilitate the subsequent acquisition of air dimensional data in the entire house area and targeted adjustment of air dimensional data in each working area, thereby improving the efficiency and effectiveness of air conditioning.
[0106] In addition, an embodiment of the present invention further provides a storage medium storing a whole-house air conditioning program. When the whole-house air conditioning program is executed by a processor, the steps of the whole-house air conditioning method described above are implemented.
[0107] Since the storage medium adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought by the technical solutions of the above embodiments, which will not be described one by one here.
[0108] Reference Figure 6 , Figure 6 This is a structural block diagram of the first embodiment of the whole-house air conditioning device of the present invention.
[0109] like Figure 6 As shown, the whole-house air conditioning device proposed in the embodiment of the present invention includes:
[0110] The acquisition module 10 is used to determine the target sensing unit that meets the sensing requirements according to the sensing capability list when running the integrated sensing and control mode, so as to obtain the air dimension data sensed by the target sensing unit.
[0111] It should be understood that the existing whole-house system can only be granular with devices, that is, by binding or unbinding devices, the capabilities of the device can be fully used or not used at all. However, some devices are single-sensing, that is, they only have perception capabilities, such as air boxes; some devices are single-control, that is, they only have control capabilities, such as humidifiers or electric heaters without humidity sensors, etc. Some devices are integrated with sensing and control, such as air conditioners with temperature sensors; some devices have strong control but insufficient perception, and may need to rely on other sensing devices; some devices have strong perception but insufficient control, and may need to rely on other control devices; some perception or control capabilities, users do not want to expose for the whole-house system to call.
[0112] For the above situation, refer to Figure 3 This embodiment constructs a list of devices with sensing capabilities and a list of devices with control capabilities throughout the house, so that when the air in the whole house needs to be adjusted, air conditioning in the whole house can be achieved through a distributed sensing-centralized decision-making-distributed control approach. Sensing and control do not necessarily have to be performed by the same device. For example, an air conditioner temperature sensor can be used to control floor heating, and an air box temperature sensor and a humidifier humidity sensor can be used to control the air conditioner.
[0113] It is understandable that the perception capability list records the perception units with perception capabilities in the entire house area, which are used to perceive air properties according to the user's perception needs. Furthermore, the step of determining the perception unit corresponding to the air dimension data to be perceived based on the perception capability list includes:
[0114] Get the list of sensing capabilities corresponding to the air dimension data that needs to be sensed;
[0115] According to the perception priority of each perception unit in the perception capability list, the perception unit corresponding to the air dimension that needs to be perceived is determined.
[0116] The perception capability list records each perception unit with perception capability, and also sorts each perception unit according to the set priority, so that when obtaining the air dimension data of the surrounding environment, the perception unit corresponding to the air dimension to be perceived can be selected according to the priority of each perception unit. For example: the perception priority of the air conditioner is level 1, and the perception priority of floor heating is level 2. When obtaining air dimension data, the data perceived by the air conditioner is used first. If the air conditioner is offline or disabled by the user, the data perceived by the floor heating is used.
[0117] In a specific implementation, the perception demand can be that the whole-house air-conditioning system detects that the temperature, humidity, air flow rate and other factors in the room are different from the area set by the user, and automatically adjusts the generated demand. In this embodiment, when the whole-house air-conditioning system runs the integrated sensing and control function, it executes the target sensing unit that meets the perception demand based on the perception capability list at every preset interval of time T to obtain the air dimension data perceived by the target sensing unit, so as to adjust the air dimension data for each air dimension data and improve the user's comfort. The air dimension data includes but is not limited to: temperature, humidity, air flow rate and fresh air volume.
[0118] The determination module 20 is configured to determine the target control device according to the control capability list upon receiving the target air dimension data.
[0119] It should be understood that the entire house area may be divided into multiple sub-areas due to terrain and other reasons, and is subject to the limitations of device perception and control, making it impossible to perceive or control each sub-area. Therefore, when adjusting the control dimension data within the entire house, this embodiment needs to determine the target control device based on the control capability list to improve the efficiency of air conditioning.
[0120] The target air dimension data refers to the air dimension data that needs to be adjusted, and in order to avoid the problem of being divided into multiple sub-areas due to terrain and other reasons, the target air dimension data also records specific area information.
[0121] For example, if it is detected that the temperature in the bedroom is low, when determining the target control device, it is necessary to select a control device that can affect the bedroom, such as a bedroom heater or a bedroom air conditioner, to increase the temperature of the bedroom.
[0122] The control devices in this embodiment include but are not limited to air conditioners, floor heating, electric fans, dehumidifiers, air machines and other devices that can control at least one air dimension data, and if the control device can control multiple air dimension data, the control processes do not affect each other. For example: the air machine can control the temperature, humidity, air flow rate, air purification and fresh air volume of the indoor environment. When there are multiple air dimension adjustment requirements at the same time, if the air conditioner can be used as the target control device, multiple modes can be run at the same time to achieve the adjustment of multiple air dimension data.
[0123] Furthermore, the step of determining the target control device according to the control capability list includes:
[0124] determining an adjustment requirement for the air dimension data according to the air dimension data and the target air dimension data;
[0125] Determine the target control capability list corresponding to the adjustment requirements;
[0126] Determine the target control device from the target control capability list.
[0127] It can be understood that the process of determining the adjustment requirements of air dimension data takes temperature as an example. If the current temperature in the current area is 15°C, and the received target air dimension data is 25°C, then the temperature in the current area needs to be increased by 10°C. The target control capability list is the equipment in the current area that has the ability to increase the temperature.
[0128] Furthermore, determining the target control device from the target control capability list includes:
[0129] The target control device is determined according to the priority of each control device in the target control capability list.
[0130] Based on the settings of distributed perception-centralized decision-distributed control in this embodiment, when there are multiple control devices in this embodiment, the target control device can be determined according to the priority of each control device in the target control capability list.
[0131] In addition, in order to improve the user experience of air conditioning and reduce the energy consumption of the equipment after the air conditioning is completed, in this embodiment, the target control device is determined according to the control capability list, which also includes:
[0132] When the current air dimension data does not reach the target air dimension data, determining a target control device according to the comfort list;
[0133] When the current air dimension data reaches the target air dimension data, the target control device is determined according to the energy efficiency list.
[0134] The target control capability list in this embodiment includes: an energy efficiency list and a comfort list. The comfort list includes a list of devices in the entire house whose air dimension data adjustment rate is greater than a preset threshold, and the energy efficiency list includes a list of devices in the entire house whose air dimension data adjustment energy consumption is less than a preset energy consumption.
[0135] In the specific implementation, taking temperature as an example, when the current temperature has not reached the target temperature, it means that there is a need for temperature adjustment at this time. In order to shorten the duration of temperature adjustment and meet the needs of users, a control device with a larger temperature adjustment rate is used, such as an air conditioner, to adjust the temperature of the surrounding environment; after the current temperature reaches the target temperature, it means that there is no need for temperature adjustment at this time. At this time, if you want to maintain the target temperature, the target control device still cannot stop running, but because a control device with a larger temperature adjustment rate is used during the adjustment process, the corresponding energy consumption is also relatively high. However, to maintain the temperature stability of the current environment, a higher temperature adjustment rate is not required. At this time, in order to reduce the operating energy consumption of the equipment, you can adjust the equipment with lower energy consumption by running air dimension data, such as electric fans, to reduce operating energy consumption.
[0136] The control module 30 is used to control the target control device to operate according to the target air dimension data.
[0137] In one embodiment, the determination module 20 is further configured to generate the target air dimension data based on the air dimension data sensed by the target sensing unit through a preset decision model.
[0138] In one embodiment, the determination module 20 is also used to query a preset mapping table to obtain target air dimension data corresponding to the air dimension data perceived by the target perception unit; or, to generate target air dimension data corresponding to the air dimension data through a trained target air dimension value recommendation model.
[0139] In one embodiment, the acquisition module 10 is further configured to acquire a perception capability list corresponding to the air dimension data that needs to be perceived; and determine the perception unit corresponding to the air dimension that needs to be perceived based on the perception priority of each perception unit in the perception capability list.
[0140] In one embodiment, the determination module 20 is further used to determine the adjustment requirements of the air dimension data based on the air dimension data and the target air dimension data; determine the target control capability list corresponding to the adjustment requirements; and determine the target control device from the target control capability list.
[0141] In one embodiment, the determining module 20 is further configured to determine the target control device according to the priority of each control device in the target control capability list.
[0142] In one embodiment, the acquisition module 10 is also used to construct and update a perception capability list and a control capability list in the entire house area; the perception capability list includes a list of devices in each working area that have the ability to perceive air dimension data, or a list of devices that do not have the ability to perceive air dimension data; the control capability list includes a list of devices in each working area that have the ability to adjust air dimension data, or a list of devices that do not have the ability to adjust air dimension data.
[0143] In one embodiment, the acquisition module 10 is further used to obtain the device code, priority and ability to perceive air dimension data of each perception unit in the target area; construct a perception capability list based on the device code, priority and ability to perceive air dimension data of the perception unit; and / or, obtain the device code, priority and ability to adjust air dimension data of each air-conditioning equipment in the target area; and construct a control capability list based on the device code, priority and ability to adjust air dimension data of the air-conditioning equipment.
[0144] This embodiment determines the target sensing unit that meets the sensing requirements during the whole-house air conditioning process through a pre-constructed sensing capability list, and obtains the air dimension data sensed by the target sensing unit to improve the air sensing capability and efficiency in the whole-house area. Then, the target control device is determined according to the pre-constructed control capability list to improve the efficiency of the air conditioning capability in the whole-house area, and then the target control device is controlled to operate according to the target air dimension data to realize whole-house air conditioning, avoiding the technical problems in the prior art in the whole-house air conditioning process, in which the various devices cannot be linked together, the control efficiency is low, and the user's usage needs cannot be met.
[0145] It should be understood that, although the various steps in the flowchart in the embodiment of the present application are shown in sequence according to the indication of the arrows, these steps are not necessarily performed in sequence in the order indicated by the arrows. Unless clearly stated herein, the execution of these steps is not strictly limited in order, and they can be performed in other orders. Moreover, at least a portion of the steps in the figure may include multiple sub-steps or multiple stages, and these sub-steps or stages are not necessarily performed at the same time, but can be performed at different times, and their execution order is not necessarily performed in sequence, but can be performed in turn or alternately with at least a portion of other steps or sub-steps or stages of other steps.
[0146] It should be understood that the above is only an example and does not constitute any limitation to the technical solution of the present invention. In specific applications, those skilled in the art can make settings as needed, and the present invention does not impose any limitation on this.
[0147] It should be noted that the workflow described above is merely illustrative and does not limit the scope of protection of the present invention. In practical applications, technicians in this field can select part or all of it according to actual needs to achieve the purpose of the embodiment scheme, and no limitation is made here.
[0148] In addition, for technical details not fully described in this embodiment, reference can be made to the whole-house air conditioning method provided in any embodiment of the present invention, and will not be repeated here.
[0149] In addition, it should be noted that, in this document, the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, article, or system comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or system. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article, or system comprising the element.
[0150] The serial numbers of the above embodiments of the present invention are for description only and do not represent the advantages or disadvantages of the embodiments.
[0151] Through the description of the above embodiments, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be implemented by means of software plus the necessary general hardware platform, or of course by hardware, but in many cases the former is a better embodiment. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product is stored in a storage medium (such as a read-only memory (ROM) / RAM, a magnetic disk, or an optical disk), and includes a number of instructions for enabling a terminal device (which can be a mobile phone, a computer, a server, or a network device, etc.) to execute the methods described in each embodiment of the present invention.
[0152] The above are only preferred embodiments of the present invention and are not intended to limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made using the contents of the present invention description and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. A whole-house air conditioning method, characterized in that: The whole-house air conditioning method comprises: Determine a target sensing unit that meets the sensing requirements based on the sensing capability list to obtain air dimension data sensed by the target sensing unit, wherein the sensing capability list includes a device list of sensing units with air dimension data sensing capability in the entire house, or a device list of sensing units without air dimension data sensing capability; When receiving the target air dimension data, the target control device is determined according to the control capability list, wherein the control capability list includes a list of devices in the entire house that have the ability to adjust the air dimension data, or a list of devices that do not have the ability to adjust the air dimension data; The target control device is controlled to operate according to the target air dimension data.
2. The whole-house air conditioning method according to claim 1, wherein: Before the step of receiving the target air dimension data, the method further includes: The target air dimension data is generated based on the air dimension data sensed by the target sensing unit through a preset decision model.
3. The whole-house air conditioning method according to claim 2, wherein: The step of generating the target air dimension data based on the air dimension data sensed by the target sensing unit by using a preset decision model includes: Querying a preset mapping table to obtain target air dimension data corresponding to the air dimension data sensed by the target sensing unit; or, The target air dimension data corresponding to the air dimension data is generated by the trained target air dimension value recommendation model.
4. The whole-house air conditioning method according to claim 1, wherein: The step of determining the sensing unit corresponding to the air dimension data to be sensed according to the sensing capability list includes: Get the list of sensing capabilities corresponding to the air dimension data that needs to be sensed; According to the perception priority of each perception unit in the perception capability list, the perception unit corresponding to the air dimension that needs to be perceived is determined.
5. The whole-house air conditioning method according to claim 1, wherein: The step of determining the target control device according to the control capability list includes: determining an adjustment requirement for the air dimension data according to the air dimension data and the target air dimension data; Determine the target control capability list corresponding to the adjustment requirements; Determine the target control device from the target control capability list.
6. The whole-house air conditioning method according to claim 5, wherein: The step of determining the target control device from the target control capability list includes: The target control device is determined according to the priority of each control device in the target control capability list.
7. The whole-house air conditioning method according to any one of claims 1 to 6, characterized in that: The target control capability list includes: an energy efficiency list and a comfort list, wherein the comfort list includes a list of devices in the entire house whose air dimension data adjustment rate is greater than a preset threshold, and the energy efficiency list includes a list of devices in the entire house whose air dimension data adjustment energy consumption is less than a preset energy consumption; The determining of the target control device according to the control capability list further includes: When the current air dimension data does not reach the target air dimension data, determining a target control device according to the comfort list; When the current air dimension data reaches the target air dimension data, the target control device is determined according to the energy efficiency list.
8. The whole-house air conditioning method according to claim 7, characterized in that: The whole-house air conditioning method further includes: constructing a sensing capability list and a control capability list within the whole-house area, and updating the list; Accordingly, the step of constructing a list of perception capabilities within the entire house area includes: Obtaining the device code, priority, and ability to perceive air dimension data of each sensing unit in the target area; constructing a sensing capability list based on the device code, priority, and ability to perceive air dimension data of the sensing unit; and / or, The steps of constructing a control capability list within the entire house include: Obtain the equipment code, priority and ability to adjust air dimension data of each air conditioning equipment in the target area; and construct a control capability list based on the equipment code, priority and ability to adjust air dimension data of the air conditioning equipment.
9. A whole-house air conditioning device, characterized in that: The whole-house air conditioning device comprises: An acquisition module is configured to determine a target sensing unit that meets the sensing requirements based on a sensing capability list to obtain air dimension data sensed by the target sensing unit, wherein the sensing capability list includes a list of sensing units in the entire house that have the capability to sense air dimension data, or a list of sensing units that do not have the capability to sense air dimension data; a determination module configured to, upon receiving the target air dimension data, determine the target control device according to a control capability list, wherein the control capability list includes a list of devices in the entire house that have the ability to adjust the air dimension data, or a list of devices that do not have the ability to adjust the air dimension data; A control module is used to control the target control device to operate according to the target air dimension data.
10. A storage medium, characterized in that: The storage medium stores a whole-house air conditioning program, and when the whole-house air conditioning program is executed by the processor, the whole-house air conditioning method according to any one of claims 1 to 8 is implemented.
Citation Information
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