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WO2015109865A1 - 空调运行模式自定义控制方法及系统 - Google Patents

空调运行模式自定义控制方法及系统 Download PDF

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Publication number
WO2015109865A1
WO2015109865A1 PCT/CN2014/087411 CN2014087411W WO2015109865A1 WO 2015109865 A1 WO2015109865 A1 WO 2015109865A1 CN 2014087411 W CN2014087411 W CN 2014087411W WO 2015109865 A1 WO2015109865 A1 WO 2015109865A1
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WO
WIPO (PCT)
Prior art keywords
user
air conditioner
virtual button
mode
custom
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2014/087411
Other languages
English (en)
French (fr)
Inventor
陈建昌
曾祥兵
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Midea Group Co Ltd
Original Assignee
Midea Group Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Midea Group Co Ltd filed Critical Midea Group Co Ltd
Priority to US15/110,396 priority Critical patent/US10480809B2/en
Priority to EP14879605.5A priority patent/EP3098526B1/en
Publication of WO2015109865A1 publication Critical patent/WO2015109865A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/65Electronic processing for selecting an operating mode
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/52Indication arrangements, e.g. displays
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • F24F11/64Electronic processing using pre-stored data
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2110/00Control inputs relating to air properties
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B15/00Systems controlled by a computer
    • G05B15/02Systems controlled by a computer electric
    • GPHYSICS
    • G06COMPUTING OR CALCULATING; COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0484Interaction techniques based on graphical user interfaces [GUI] for the control of specific functions or operations, e.g. selecting or manipulating an object, an image or a displayed text element, setting a parameter value or selecting a range
    • G06F3/04847Interaction techniques to control parameter settings, e.g. interaction with sliders or dials
    • GPHYSICS
    • G06COMPUTING OR CALCULATING; COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0487Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
    • G06F3/0488Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
    • G06F3/04883Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures for inputting data by handwriting, e.g. gesture or text
    • GPHYSICS
    • G06COMPUTING OR CALCULATING; COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0487Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
    • G06F3/0488Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
    • G06F3/04886Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures by partitioning the display area of the touch-screen or the surface of the digitising tablet into independently controllable areas, e.g. virtual keyboards or menus
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2120/00Control inputs relating to users or occupants
    • F24F2120/20Feedback from users

Definitions

  • the invention relates to an air conditioner control technology, in particular to a self-defined control method and system for an air conditioner operation mode.
  • touch screen displays have been widely popularized on mobile phones, tablet computers and other terminal devices, and have gradually become popular in home appliances (for example, air conditioners).
  • High-end air conditioners for example, central air conditioners
  • users can directly control such air conditioners by directly operating virtual buttons or menus on such air conditioner touch screen displays.
  • the control of the air conditioner can also be realized through the virtual button or menu on the touch screen display.
  • the operating mode of the existing air conditioner is usually designed by the manufacturer, such as conference mode, office mode, reading mode, etc., and can not be customized according to individual needs, such as whether the air guiding angle is to be blown to the human body or to avoid the wind, whether to sweep the wind, The range of the sweeping wind, the setting temperature, the parameter setting of the sleep curve, etc., usually cannot be customized.
  • a user uses the air conditioner, it is usually necessary to adjust the operating parameters of the air conditioner to suit his own needs.
  • the main purpose of the invention is to make the air conditioning operating parameters differently preset according to different users, and associate the air conditioning operating parameters with the virtual button mapping to realize one-button operation, thereby improving the convenience and accuracy of the air conditioning operation.
  • the present invention provides a self-defined control method for an air-conditioning operation mode, the method comprising the steps of: providing a self-defined setting interface of an operation mode of a control terminal or an air conditioner when receiving a custom setting instruction of an air-conditioning operation mode issued by a user; The user can customize the running parameter of the air conditioner; when the user customizes the setting interface based on the running mode, the control terminal or the air conditioner generates and displays a virtual button corresponding to the operating parameter of the customized setting.
  • control terminal When the control terminal receives the trigger instruction of the generated virtual button, the control terminal controls the air conditioner according to the running parameter corresponding to the generated virtual button, or when the air conditioner receives the trigger instruction of the virtual button generated by the user, Run according to the running parameters corresponding to the generated virtual button.
  • the method further includes: when the control terminal or the air conditioner receives the air conditioning operation mode custom modification instruction corresponding to the existing virtual button issued by the user, providing the operation mode custom modification interface for the user to customize and modify the existing virtual button correspondingly Air conditioning operating parameters.
  • the method further comprises: when the control terminal or the air conditioner receives the existing virtual button deletion instruction issued by the user, providing a running mode custom deletion interface for the user to customize and delete the existing virtual button and its corresponding operating parameter.
  • the method further includes: when receiving the trigger instruction of the user for the existing virtual button, the control terminal controls the air conditioner according to the operation parameter corresponding to the existing virtual button, or the air conditioner receives the user for the existing When the virtual button triggers the command, it runs according to the running parameters corresponding to the existing virtual button.
  • the present invention further provides a self-defined control method for an air-conditioning operation mode, the method comprising the steps of: when receiving a virtual button addition instruction issued by a user, the control terminal or the air conditioner generates and displays an operation parameter to be performed.
  • the virtual button of the custom setting when receiving the custom setting instruction of the air conditioning operation mode corresponding to the generated virtual button issued by the user, the control terminal or the air conditioner provides a running mode custom setting interface for the user to customize the operating parameter of the air conditioner.
  • the control terminal or the air conditioner When the user customizes the setting interface based on the running mode, when the running parameter customization is completed, the control terminal or the air conditioner establishes a mapping relationship between the running parameter of the custom setting and the generated virtual button; When the virtual button triggers the command, the control terminal controls the operation of the air conditioner according to the operation parameter corresponding to the generated virtual button, or the air conditioner responds according to the generated virtual button when receiving the trigger instruction of the virtual button generated by the user. The parameters are run.
  • the method further includes: when the control terminal or the air conditioner receives the air conditioning operation mode custom modification instruction corresponding to the existing virtual button issued by the user, providing the operation mode custom modification interface for the user to customize and modify the existing virtual button correspondingly Air conditioning operating parameters.
  • the method further comprises: when the control terminal or the air conditioner receives the existing virtual button deletion instruction issued by the user, providing a running mode custom deletion interface for the user to customize and delete the existing virtual button and its corresponding operating parameter.
  • the method further includes: when receiving the trigger instruction of the user for the existing virtual button, the control terminal controls the air conditioner according to the operation parameter corresponding to the existing virtual button, or the air conditioner receives the user for the existing When the virtual button triggers the command, it runs according to the running parameters corresponding to the existing virtual button.
  • the present invention further provides a self-defined control system for an air-conditioning operation mode, which is operated in a control terminal or an air conditioner, and the air-conditioning operation mode custom control system includes:
  • the mode customization module is configured to provide a running mode custom setting interface for the user to customize the operating parameter of the air conditioner when receiving the air conditioning running mode custom setting instruction issued by the user; and customizing the setting based on the running mode by the user An interface, when the running parameter customization is completed, generating and displaying a virtual button corresponding to the running parameter of the customized setting;
  • the custom mode excitation module is configured to control, when the terminal receives the trigger instruction of the virtual button generated by the user, perform operation control on the air conditioner according to the operation parameter corresponding to the generated virtual button, or the air conditioner receives the generated When the virtual button triggers the command, it runs according to the running parameters corresponding to the generated virtual button.
  • the mode customization module is further configured to: when receiving an air conditioning operation mode custom modification instruction corresponding to the existing virtual button issued by the user, providing a running mode custom modification interface for the user to customize and modify the existing virtual button Corresponding air conditioning operating parameters.
  • the mode customization module is further configured to: when receiving an existing virtual key deletion instruction issued by the user, provide a running mode custom deletion interface for the user to customize to delete the existing virtual key and the corresponding running parameter.
  • the custom mode excitation module is further configured to: when the control terminal receives the trigger instruction of the user for the existing virtual button, perform operation control on the air conditioner according to an operation parameter corresponding to the existing virtual button, or When the user receives the trigger instruction for the existing virtual button, it runs according to the running parameter corresponding to the existing virtual button.
  • the present invention further provides a self-defined control system for an air-conditioning operation mode, which is operated in a control terminal or an air conditioner, and the air-conditioning operation mode custom control system includes:
  • the mode customization module is configured to generate and display a virtual button to be customized for the running parameter when receiving the virtual button addition instruction issued by the user; and receive the air conditioning operation mode corresponding to the generated virtual button issued by the user.
  • the control terminal or the air conditioner provides a running mode custom setting interface for the user to customize the operating parameter of the air conditioner; when the user customizes the setting interface based on the running mode, and completes the custom setting of the running parameter, the control The mapping relationship between the running parameters of the custom setting and the generated virtual button is established by the terminal or the air conditioner;
  • the custom mode excitation module is configured to: when receiving the trigger instruction of the virtual button for the generated user, the control terminal controls the operation of the air conditioner according to the operation parameter corresponding to the generated virtual button, or the air conditioner generates the generated When the virtual button triggers the command, it runs according to the running parameters corresponding to the generated virtual button.
  • the mode automatic module is further configured to: when receiving an air conditioning operation mode custom modification instruction corresponding to the existing virtual button issued by the user, providing a running mode custom modification interface for the user to customize and modify the existing virtual button correspondingly Air conditioning operating parameters.
  • the mode customization module is further configured to: when receiving an existing virtual key deletion instruction issued by the user, provide a running mode custom deletion interface for the user to customize to delete the existing virtual key and the corresponding running parameter.
  • the custom mode excitation module is further configured to: when the control terminal receives the trigger instruction of the user for the existing virtual button, perform operation control on the air conditioner according to an operation parameter corresponding to the existing virtual button, or When the user receives the trigger instruction for the existing virtual button, it runs according to the running parameter corresponding to the existing virtual button.
  • the present invention provides a running mode custom setting interface for the user to customize the operating parameters of the air conditioner by receiving a custom setting instruction of the air conditioning operating mode issued by the user, and the operating parameters of the customized setting are
  • the virtual button mapping association makes the air conditioning operating parameter realize the differential preset according to the individual user, and associates the air conditioning operating parameter with the virtual button mapping to realize one-button operation, which effectively improves the convenience and accuracy of the air conditioning operation.
  • FIG. 1 is a hardware structural diagram of a preferred embodiment of a control terminal for implementing a custom control of an air conditioning operation mode according to the present invention.
  • FIG. 2 is a system architecture diagram of the touch screen display system of FIG. 1.
  • FIG. 3 is a functional block diagram of a preferred embodiment of the air conditioning operation mode custom control system of FIG. 1.
  • FIG. 4 to FIG. 14 are schematic diagrams showing a preferred embodiment of an operation mode customization setting interface provided by the air conditioning operation mode custom control system of FIG.
  • FIG. 15 is a hardware structural diagram of a preferred embodiment of an air conditioner for realizing self-defined control of an air conditioner operation mode according to the present invention.
  • FIG. 16 is a system architecture diagram of the touch screen display system of FIG. 15.
  • Figure 17 is a functional block diagram of a preferred embodiment of the air conditioning operating mode custom control system of Figure 15.
  • FIG. 18 is a flowchart of a specific implementation of the first embodiment of the air conditioning operation mode custom control method according to the present invention.
  • FIG. 19 is a flowchart of a specific implementation of a second embodiment of a method for automatically controlling an air conditioning operation mode according to the present invention.
  • FIG. 1 is a hardware structural diagram of a preferred embodiment of a control terminal for implementing a custom control of an air conditioning operation mode according to the present invention.
  • the control terminal 1 includes a processing unit 10, a storage unit 15, a wireless signal transmitting unit 13, a touch screen display system 16, and an air conditioning operation mode custom control system 11.
  • the control terminal 1 can be a mobile phone, a tablet, a computer or any other suitable electronic device (preferably a mobile phone).
  • the touch screen display system 16 is configured to provide a human-machine interaction interface for the user to input an instruction, and output display response data of the control terminal 1 to the user instruction.
  • the human-machine interaction interface includes, but is not limited to, an air conditioning operation mode customization setting interface.
  • the touch screen display system 16 includes a touch detection device 160, a touch screen controller 161, and a display unit 162.
  • the display unit 162 is used for display of information content; the touch detection device 160 and the touch screen controller 161 are used by the user to perform a touch operation using the touch screen display system 16.
  • the touch detection device 160 is configured to detect the touch position of the user and transmit the detected information to the touch screen controller 161; the touch screen controller 161 receives the touch position information transmitted from the touch detection device 160, and the received touch position information It is converted into contact coordinate information, the converted contact coordinate information is transmitted to the processing unit 10, and the execution command sent by the receiving processing unit 10 is executed.
  • the touch screen display system 16 may also be any other suitable display system with touch function.
  • the storage unit 15 is configured to store the air conditioning operation mode custom control system 11 and its operation data. It should be emphasized that the storage unit 15 may be a single storage device or a collective name of a plurality of different storage devices, and details are not described herein.
  • the wireless signal transmitting unit 13 is configured to send a control signal corresponding to the operating parameter of the user-defined operating mode to the air conditioner 2 under the control of the processing unit 10.
  • the wireless signal transmitting unit 13 may be a WIFI module, an infrared signal transmitting unit, a Bluetooth module, a wireless signal transmitter with a transmitting antenna, or any other suitable wireless signal transmitting unit (the preferred infrared signal transmitting unit in this embodiment).
  • the processing unit 10 is configured to invoke and execute the air conditioning operation mode custom control system 11 to provide an operation mode customization setting interface (for example, the interfaces shown in FIG. 4 to FIG. 14) for the user to self-operate under the operation of the user. Defining the operating parameters of the air conditioner, generating and displaying a virtual button corresponding to the customized running parameter, and when receiving the triggering instruction (for example, clicking the command) of the virtual button, controlling the operating parameter according to the virtual button.
  • the wireless signal transmitting unit 13 issues a corresponding control signal to the air conditioner to realize operation control of the air conditioner.
  • the processing unit 10 and the storage unit 15 may be separate units, or may be integrated to form a controller, which is not described herein.
  • the operating parameters include a temperature parameter, a humidity parameter, a sweeping wind direction parameter, a sleep temperature curve parameter, and a running time parameter.
  • the operating parameters include temperature parameters, humidity parameters, sweep wind direction parameters, sleep temperature curve parameters, runtime parameters, and/or any other applicable operating parameters (eg, air conditioning display brightness curve, air conditioning display) Color parameters, etc.).
  • the operation mode custom setting interface includes an air conditioning control interface (for example, the interface shown in FIG. 4), an additional virtual key operation interface (for example, the interface shown in FIG. 5-13), and a modified virtual key operation interface. (for example, the interface shown in FIG. 5-13), deleting the virtual key operation interface (for example, the interface shown in FIG. 14), the selected temperature parameter setting/modification operation interface (for example, the interface shown in FIG. 6), The selected humidity parameter setting/modifying operation interface (for example, the interface shown in FIG. 6), the selected running time setting/modifying operation interface (for example, the interface shown in FIG. 13), and the selected sweeping wind direction parameter setting.
  • an air conditioning control interface for example, the interface shown in FIG. 4
  • an additional virtual key operation interface for example, the interface shown in FIG. 5-13
  • a modified virtual key operation interface for example, the interface shown in FIG. 5-13
  • deleting the virtual key operation interface for example, the interface shown in FIG. 14
  • the selected temperature parameter setting/modification operation interface for example, the interface shown in FIG.
  • the operation mode custom setting interface includes any applicable setting interface.
  • the control terminal 1 can control a plurality of air conditioners, in a preferred embodiment, preferably including one for multiple air conditioners The interface selected will not be described here.
  • FIG. 3 it is a functional block diagram of a preferred embodiment of the air conditioning operation mode custom control system of FIG.
  • the functional block diagram shown in FIG. 3 is merely an exemplary diagram of a preferred embodiment, and those skilled in the art can customize the control system around the air conditioner operating mode shown in FIG. 3.
  • the function module of 11 can be easily supplemented by a new function module; the name of each function module is a custom name, which is only used to assist in understanding the various program function blocks of the air conditioning operation mode custom control system 11, and is not used to limit the present invention.
  • the technical solution, the core of the technical solution of the present invention is the function to be achieved by the function modules of the respective defined names.
  • the air conditioning operation mode custom control system 11 includes a mode customization module 110 and a custom mode excitation module 112.
  • the function of each function module of the air conditioning operation mode custom control system 11 is as follows:
  • the mode customization module 110 is configured to provide a running mode custom setting interface for the user to customize the operating parameters of the air conditioner when receiving the air conditioning operation mode custom setting instruction issued by the user.
  • the mode customization module 110 provides an operation mode custom add icon/button, which is made by the user for the icon/key (for example, the "+ mode" virtual button in the operation mode virtual button area 30 shown in FIG. 4).
  • a preset type of operation for example, clicking or double-clicking
  • the mode customization module 110 is further configured to: when the user completes the operation parameter customization setting based on the operation mode customization setting interface, generate and display a virtual button corresponding to the customized operation parameter.
  • the mode customization module 110 not only supports the virtual button addition function, but also supports the modification function of the existing virtual button corresponding parameter, and the deletion function of the existing virtual button.
  • the function of the mode customization module 110 is exemplified based on FIG. 4 to FIG. 14 :
  • the mode Upon receiving the air conditioner operation mode custom add command issued by the user (for example, receiving a command issued by the user by clicking the "+ mode” virtual button in the operation mode virtual button area 30 shown in FIG. 4), the mode is self-selected.
  • the definition module 110 first provides the interface shown in FIG. 5 (based on the interface, the user can set the name of the virtual case corresponding to the operation mode to be customized, for example, the "Wang 5 mode” shown in FIG. 5); when the user is based on When the interface shown in FIG. 5 selects the "temperature setting” or “humidity setting” button for clicking, the mode customization module 110 provides the interface shown in FIG. 6; when the user selects "horizontal sweeping" based on the interface shown in FIG.
  • the mode customization module 110 When the button is clicked, the mode customization module 110 provides the interface shown in FIG. 7-8; when the user selects the "horizontal orientation air supply” button to click based on the interface shown in FIG. 5, the mode customization module 110 provides a map. The interface shown in FIG. 10; when the user selects the "vertical sweep” button to click on the interface shown in FIG. 5, the mode customization module 110 provides the interface shown in FIG. 10; When the user selects the "sleep curve” button to click on the interface shown in FIG. 5, the mode customization module 110 provides the interface shown in FIG. 11 or FIG. 12 (if the interface shown in FIG. 11 is provided, a new temperature curve is popped up. Setting interface; if the interface shown in FIG. 12 is provided, the temperature curve setting interface is displayed on the original interface); when the user selects the "run time setting” button to click based on the interface shown in FIG. 5, the mode customization module 110 The interface shown in Figure 13 is provided.
  • the interface shown in FIG. 6 includes a sliding touch bar 31, and the temperature/humidity setting value can be adjusted by slidingly touching the sliding touch bar 31. For example, sliding toward the “+” symbol can gradually increase according to a preset amplitude. Increase the temperature/humidity setting and slide toward the “—” symbol to gradually decrease the temperature/humidity setting by the preset amplitude.
  • the interface shown in FIG. 7 includes a sweeping control indicator 32, which can adjust the horizontal sweeping area by slidingly touching the threshold control line S and/or E of the sweeping control indicator 32 (ie, at the control lines S and E). The area between them is the set sweeping area).
  • the sweep angle ⁇ of the threshold control line can be dynamically displayed (for example, as shown in FIG. 8).
  • the interface shown in FIG. 9 includes a wind sweep control indicator 32 that can adjust the direction of the horizontally oriented wind sweep by slidingly touching the horizontal orientation control line of the wind sweep control indicator 32.
  • the interface shown in FIG. 10 is similar to the interface shown in FIG. 7, and the operation mode is similar, and details are not described herein.
  • the curve parameter can be changed by sliding the curve in the touch temperature-time coordinate system.
  • a “parameter addition button” (not shown) may also be provided. By clicking the “parameter addition button”, a new parameter setting button may be added to the interface to increase
  • the new parameter setting button may be the same as the parameter type corresponding to the existing parameter setting button (for example, the “temperature setting” button), or may be different, and will not be described herein.
  • a preset type of operation is performed on the existing icon/key (for example, the existing virtual button "Zhang San mode” or “Li Si mode” in the operation mode virtual button area 30 shown in FIG. 4) (for example, a single
  • the mode customization module 110 determines that the user has issued a custom modification command of the air conditioning operation mode; or the mode customization module 110 detects the user's touch operation of the preset touch track, that is, It is judged that the user has issued a custom modification instruction for the air conditioning operation mode.
  • the custom modification interface of the existing virtual button may be similar to or the same as the above-mentioned custom addition interface, and details are not described herein.
  • the mode is self-selected.
  • the definition module 110 first provides the interface shown in FIG. 14, and the user can select an existing operation mode based on the interface shown in FIG. 14 (for example, "Zhang San mode", “Li Si mode”, “Wang Er Ma mode”. , "Zhao Qian mode” and / or “Sun Li mode") to delete, in the example of Figure 14 selected "Zhang San mode", when the user clicks "Delete button", you can delete the existing "Zhang San mode” Virtual keys and their corresponding operating parameters.
  • the mode customization module 110 may further determine the type of processing to be performed (for example, adding a virtual button, modifying a virtual button, deleting a virtual button), and providing a corresponding operation interface based on the determined processing type.
  • the mapping relationship between the processing type and the operation type is set in advance (for example, the "add virtual key” corresponding icon click operation, the "modify virtual key” corresponding icon double-click operation, the "delete virtual key” corresponding icon long press operation (for example, exceed The 3 second icon is pressed continuously)), when the user makes a preset operation type (for example, click, double click or long press) for a specific icon (for example, the provided operation mode custom setting icon), it is judged
  • the user issues a corresponding processing type; or, a mapping relationship between the processing type and the preset touch trajectory is set in advance, and when the user touches the touch operation of the preset touch trajectory, it is determined that the user issues the corresponding processing type.
  • the custom mode activation module 112 is configured to perform operation control on the air conditioner according to an operation parameter corresponding to the virtual button when receiving a trigger instruction of the virtual button (for example, a virtual button named “Zhang San mode”).
  • the mode customization module 110 is configured to generate and display a virtual button to be customized for the running parameter when the virtual button adding instruction issued by the user is received (for example, generating a virtual button, the name and button of the virtual button generated by default)
  • the icons are preset names and button icons respectively, or the default name and button icons are modified in response to the user's name modification command, for example, the name is changed to "Wang 5 mode", and the virtual button issued by the user is received ( For example, when the virtual button named "Wang Wu mode" corresponds to the air conditioning operation mode custom setting command, the operation mode custom setting interface is provided for the user to customize the operating parameters of the air conditioner.
  • the mode customization module 110 provides an operation mode custom add icon/button, which is made by the user for the icon/key (for example, the "+ mode" virtual button in the operation mode virtual button area 30 shown in FIG. 4).
  • a preset type of operation for example, clicking or double-clicking
  • the mode customization module 110 detects that the user makes a touch of the preset touch track.
  • the mode customization module 110 is further configured to establish a mapping relationship between the running parameters of the custom settings and the virtual keys when the user customizes the setting interface based on the running mode to complete the running parameter customization.
  • the custom mode activation module 112 is configured to perform operation control on the air conditioner according to an operation parameter corresponding to the virtual button when receiving a trigger instruction of the virtual button (for example, a virtual button named “Wang Wu mode”).
  • the mode customization module 110 not only supports the virtual button addition function, but also supports the modification function of the existing virtual button corresponding parameter and the deletion function of the existing virtual button.
  • the mode customization module 110 is further configured to provide an operation mode when receiving an air conditioning operation mode custom modification instruction corresponding to an existing virtual button (for example, a virtual button named “Li Si mode”) issued by the user.
  • the custom modification interface (for example, the interface shown in Figure 5-13) allows the user to customize the operating parameters of the air conditioner; when receiving the existing virtual button issued by the user (for example, a virtual button named "Li Si Mode")
  • a running mode custom deletion interface for example, the interface shown in FIG. 14
  • the user is deleted for the user to delete and delete the existing virtual key and its corresponding running parameter (for example, a virtual button named "Li Si mode" and Its corresponding operating parameters).
  • the mode customization module 110 can determine the type of processing to be performed in a specific manner (for example, adding a virtual button, modifying a virtual button, deleting a virtual button), and processing based on the determination.
  • the type provides the corresponding operator interface.
  • a mapping relationship between a processing type and an operation type is set in advance (for example, a "add virtual key” corresponds to a click operation of a running mode custom setting icon, a "modify virtual key” corresponding to an added or an existing virtual key icon double-click operation, "Delete virtual button” corresponds to an added or existing virtual button icon long press operation (for example, a continuous press operation of an icon for more than 3 seconds), which is made by the user for a specific icon (for example, a running mode custom setting icon)
  • the preset operation type for example, click
  • it is judged that the user issues a corresponding processing type instruction for example, adding a virtual key instruction
  • a mapping relationship between the processing type and the preset touch trajectory is set in advance, and the detection is performed.
  • the user makes a touch operation of the preset touch track, it is determined that the user has issued the corresponding processing type.
  • FIG. 15 is a hardware structural diagram of a preferred embodiment of an air conditioner that implements self-defined control of an air conditioning operation mode according to the present invention.
  • the air conditioner 2 includes a processing unit 20, a storage unit 25, a touch screen display system 26, and an air conditioning operation mode custom control system 21.
  • the touch screen display system 26 is configured to provide a human-machine interaction interface for the user to input an instruction, and output a response data indicating the air conditioner 2 to the user instruction.
  • the human-machine interaction interface includes, but is not limited to, an air conditioning operation mode customization setting interface.
  • the touch screen display system 26 includes a touch detection device 260, a touch screen controller 261, and a display unit 262.
  • the display unit 262 is used for display of information content; the touch detection device 260 and the touch screen controller 261 are used by the user to perform a touch operation using the touch screen display system 26.
  • the touch detection device 260 is configured to detect the touch position of the user and transmit the detected information to the touch screen controller 261.
  • the touch screen controller 261 receives the touch position information transmitted from the touch detection device 260, and the received touch position information. It is converted into contact coordinate information, the converted contact coordinate information is transmitted to the processing unit 20, and the execution command sent by the receiving processing unit 20 is executed.
  • the touch screen display system 26 can also be any other suitable display system with touch function.
  • the storage unit 25 is configured to store the air conditioning operation mode custom control system 21 and its operation data. It should be emphasized that the storage unit 25 may be a single storage device or a collective name of a plurality of different storage devices, and details are not described herein.
  • the processing unit 20 is configured to invoke and execute the air conditioning operation mode custom control system 21 to provide an operation mode customization setting interface (for example, the interfaces shown in FIG. 4 to FIG. 14) for the user to self-operate under the operation of the user.
  • an operation mode customization setting interface for example, the interfaces shown in FIG. 4 to FIG. 14
  • the processing unit 20 and the storage unit 25 may be separate units, or may be integrated to form a controller, which is not described herein.
  • the operating parameters include a temperature parameter, a humidity parameter, a sweeping wind direction parameter, a sleep temperature curve parameter, and a running time parameter.
  • the operating parameters include temperature parameters, humidity parameters, sweep wind direction parameters, sleep temperature curve parameters, runtime parameters, and/or any other applicable operating parameters (eg, air conditioning display brightness curve, air conditioning display) Color parameters, etc.).
  • the operation mode custom setting interface includes an air conditioning control interface (for example, the interface shown in FIG. 4), an additional virtual key operation interface (for example, the interface shown in FIG. 5-13), and a modified virtual key operation interface. (for example, the interface shown in FIG. 5-13), deleting the virtual key operation interface (for example, the interface shown in FIG. 14), the selected temperature parameter setting/modification operation interface (for example, the interface shown in FIG. 6), The selected humidity parameter setting/modifying operation interface (for example, the interface shown in FIG. 6), the selected running time setting/modifying operation interface (for example, the interface shown in FIG. 13), and the selected sweeping wind direction parameter setting. / Modify the operation interface (for example, the interface shown in Figure 7-10), the selected sleep temperature curve parameter setting/modification operation interface (for example, the interface shown in Figure 11-12).
  • the run mode custom settings interface includes any suitable settings interface.
  • FIG. 17 it is a functional block diagram of a preferred embodiment of the air conditioning operation mode custom control system of FIG.
  • the functional block diagram shown in FIG. 17 is merely an exemplary diagram of a preferred embodiment, and those skilled in the art can customize the control system around the air conditioner operating mode shown in FIG.
  • the function module of 21 can be easily supplemented by a new function module; the name of each function module is a custom name, which is only used to assist in understanding the various program function blocks of the air conditioning operation mode custom control system 11, and is not used to limit the present invention.
  • the technical solution, the core of the technical solution of the present invention is the function to be achieved by the function modules of the respective defined names.
  • the air conditioning operation mode custom control system 21 includes a mode customization module 210 and a custom mode excitation module 212.
  • the function of each function module of the air conditioning operation mode custom control system 21 is as follows:
  • the mode customization module 210 is configured to provide a running mode custom setting interface for the user to customize the operating parameters of the air conditioner when receiving the air conditioning operation mode custom setting instruction issued by the user.
  • the mode customization module 210 provides an operation mode custom add icon/button, which is made by the user for the icon/key (for example, the "+ mode" virtual button in the operation mode virtual button area 30 shown in FIG. 4).
  • a preset type of operation for example, clicking or double-clicking
  • the mode customization module 210 is further configured to: when the user completes the operation parameter customization setting based on the operation mode customization setting interface, generate and display a virtual button corresponding to the customized operation parameter.
  • the mode customization module 210 not only supports the virtual button addition function, but also supports the modification function of the existing virtual button corresponding parameter, and the deletion function of the existing virtual button.
  • the function of the mode customization module 210 is exemplified based on FIG. 4 to FIG. 14 :
  • the mode Upon receiving the air conditioner operation mode custom add command issued by the user (for example, receiving a command issued by the user by clicking the "+ mode” virtual button in the operation mode virtual button area 30 shown in FIG. 4), the mode is self-selected.
  • the definition module 110 first provides the interface shown in FIG. 5 (based on the interface, the user can set the name of the virtual case corresponding to the operation mode to be customized, for example, the "Wang 5 mode” shown in FIG. 5); when the user is based on When the interface shown in FIG. 5 selects the "temperature setting” or “humidity setting” button for clicking, the mode customization module 210 provides the interface shown in FIG. 6; when the user selects "horizontal sweeping" based on the interface shown in FIG.
  • the mode customization module 210 provides the interface shown in FIG. 7-8; when the user selects the "horizontal orientation air supply” button to click based on the interface shown in FIG. 5, the mode customization module 210 provides a map.
  • the mode customization module 210 provides the interface shown in FIG. 11 or FIG. 12 (if the interface shown in FIG. 11 is provided, a new temperature curve is popped up. Setting interface; if the interface shown in FIG. 12 is provided, the temperature curve setting interface is displayed on the original interface); when the user selects the "run time setting” button to click based on the interface shown in FIG. 5, the mode customization module 210
  • the interface shown in Figure 13 is provided.
  • the interface shown in FIG. 6 includes a sliding touch bar 31, and the temperature/humidity setting value can be adjusted by slidingly touching the sliding touch bar 31. For example, sliding toward the “+” symbol can gradually increase according to a preset amplitude. Increase the temperature/humidity setting and slide toward the “—” symbol to gradually decrease the temperature/humidity setting by the preset amplitude.
  • the interface shown in FIG. 7 includes a sweeping control indicator 32, which can adjust the horizontal sweeping area by slidingly touching the threshold control line S and/or E of the sweeping control indicator 32 (ie, at the control lines S and E). The area between them is the set sweeping area).
  • the sweep angle ⁇ of the threshold control line can be dynamically displayed (for example, as shown in FIG. 8).
  • the interface shown in FIG. 9 includes a wind sweep control indicator 32 that can adjust the direction of the horizontally oriented wind sweep by slidingly touching the horizontal orientation control line of the wind sweep control indicator 32.
  • the interface shown in FIG. 10 is similar to the interface shown in FIG. 7, and the operation mode is similar, and details are not described herein.
  • the curve parameter can be changed by sliding the curve in the touch temperature-time coordinate system.
  • a preset type of operation is performed on the existing icon/key (for example, the existing virtual button "Zhang San mode” or “Li Si mode” in the operation mode virtual button area 30 shown in FIG. 4) (for example, a single
  • the mode customization module 210 determines that the user has issued a custom modification command of the air conditioning operation mode; or the mode customization module 210 detects the user's touch operation of the preset touch track, that is, It is judged that the user has issued a custom modification instruction for the air conditioning operation mode.
  • the custom modification interface of the existing virtual button may be similar to or the same as the above-mentioned custom addition interface, and details are not described herein.
  • the mode is self-selected.
  • the definition module 110 first provides the interface shown in FIG. 14, and the user can select an existing operation mode based on the interface shown in FIG. 14 (for example, "Zhang San mode", “Li Si mode”, “Wang Er Ma mode”. , "Zhao Qian mode” and / or “Sun Li mode") to delete, in the example of Figure 14 selected "Zhang San mode", when the user clicks "Delete button", you can delete the existing "Zhang San mode” Virtual keys and their corresponding operating parameters.
  • the mode customization module 210 may further determine the type of processing to be performed (for example, adding a virtual button, modifying a virtual button, deleting a virtual button), and providing a corresponding operation interface based on the determined processing type.
  • the mapping relationship between the processing type and the operation type is set in advance (for example, the "add virtual key” corresponding icon click operation, the "modify virtual key” corresponding icon double-click operation, the "delete virtual key” corresponding icon long press operation (for example, exceed The 3 second icon is pressed continuously)), when the user makes a preset operation type (for example, click, double click or long press) for a specific icon (for example, the provided operation mode custom setting icon), it is judged
  • the user issues a corresponding processing type; or, a mapping relationship between the processing type and the preset touch trajectory is set in advance, and when the user touches the touch operation of the preset touch trajectory, it is determined that the user issues the corresponding processing type.
  • the custom mode activation module 212 is configured to perform operation control on the air conditioner according to an operation parameter corresponding to the virtual button when receiving a trigger instruction of the virtual button (for example, a virtual button named “Zhang San mode”).
  • the mode customization module 210 is configured to generate and display a virtual button to be customized for the running parameter when receiving the virtual button adding instruction issued by the user (for example, generating a virtual button, the name and button of the virtual button generated by default)
  • the icons are preset names and button icons respectively, or the default name and button icons are modified in response to the user's name modification command, for example, the name is changed to "Wang 5 mode", and the virtual button issued by the user is received ( For example, when the virtual button named "Wang Wu mode" corresponds to the air conditioning operation mode custom setting command, the operation mode custom setting interface is provided for the user to customize the operating parameters of the air conditioner.
  • the mode customization module 210 provides an operation mode custom add icon/button, which is made by the user for the icon/key (for example, the "+ mode" virtual button in the operation mode virtual button area 30 shown in FIG. 4).
  • an operation mode custom add icon/button which is made by the user for the icon/key (for example, the "+ mode" virtual button in the operation mode virtual button area 30 shown in FIG. 4).
  • a preset type of operation for example, clicking or double-clicking
  • it is determined that the user has issued a custom add command for the air conditioning operation mode for example, the mode customization module 210 detects that the user makes a touch of the preset touch track.
  • the mode customization module 210 is further configured to establish a mapping relationship between the running parameters of the custom settings and the virtual keys when the user customizes the setting interface based on the running mode to complete the running parameter customization.
  • the custom mode activation module 212 is configured to perform operation control on the air conditioner according to an operation parameter corresponding to the virtual button when receiving a trigger instruction of the virtual button (for example, a virtual button named “Wang Wu Mode”).
  • the mode customization module 210 not only supports the virtual button addition function, but also supports the modification function of the existing virtual button corresponding parameter, and the deletion function of the existing virtual button.
  • the mode customization module 210 is further configured to provide an operation mode when receiving an air conditioning operation mode custom modification instruction corresponding to an existing virtual button (for example, a virtual button named “Li Si mode”) issued by the user.
  • the custom modification interface (for example, the interface shown in Figure 5-13) allows the user to customize the operating parameters of the air conditioner; when receiving the existing virtual button issued by the user (for example, a virtual button named "Li Si Mode")
  • a running mode custom deletion interface for example, the interface shown in FIG. 14
  • the user is deleted
  • a running mode custom deletion interface for example, the interface shown in FIG. 14
  • the mode customization module 210 can determine the type of processing to be performed in a specific manner (for example, adding a virtual button, modifying a virtual button, deleting a virtual button), and processing based on the determination.
  • the type provides the corresponding operator interface.
  • a mapping relationship between a processing type and an operation type is set in advance (for example, a "add virtual key” corresponds to a click operation of a running mode custom setting icon, a "modify virtual key” corresponding to an added or an existing virtual key icon double-click operation, "Delete virtual button” corresponds to an added or existing virtual button icon long press operation (for example, a continuous press operation of an icon for more than 3 seconds), which is made by the user for a specific icon (for example, a running mode custom setting icon)
  • the preset operation type for example, click
  • it is judged that the user issues a corresponding processing type instruction for example, adding a virtual key instruction
  • a mapping relationship between the processing type and the preset touch trajectory is set in advance, and the detection is performed.
  • the user makes a touch operation of the preset touch track, it is determined that the user has issued the corresponding processing type.
  • FIG. 18 is a flowchart showing a specific implementation of the first embodiment of the air conditioning operation mode custom control method according to the present invention.
  • step S10 the mode customization module 110 or the mode customization module 210 provides a running mode custom setting interface for the user to customize the operating parameters of the air conditioner when receiving the air conditioning operation mode custom setting instruction issued by the user.
  • step S11 the mode customization module 110 or the mode customization module 210 generates and displays a virtual button corresponding to the customized operation parameter when the user completes the operation parameter customization setting based on the operation mode customization setting interface (for example, , the virtual button named "Zhang San mode").
  • Step S12 the custom mode activation module 112, when receiving a trigger instruction of the virtual button (for example, a virtual button named "Zhang San mode”), performs operation control on the air conditioner according to the operation parameter corresponding to the virtual button.
  • the custom mode activation module 212 when receiving a trigger instruction from the user for a virtual button (for example, a virtual button named "Zhang San mode”), operates according to an operation parameter corresponding to the virtual button.
  • FIG. 19 is a flowchart showing a specific implementation of a second embodiment of a method for automatically controlling an air conditioning operation mode according to the present invention.
  • step S20 the mode customization module 110 or the mode customization module 210 generates and displays a virtual button to be customized for the running parameter when receiving the virtual button addition instruction issued by the user (for example, generating a virtual button, and generating by default)
  • the name of the virtual button and the button icon are respectively the preset name and the button icon, or the default name and button icon are modified in response to the user's name modification command, for example, the name is changed to "Zhang San mode".
  • step S21 the mode customization module 110 or the mode customization module 210 provides the air conditioning operation mode custom setting instruction corresponding to the virtual button (for example, the virtual button named “Zhang San mode”) issued by the user.
  • the operation mode custom setting interface allows the user to customize the operating parameters of the air conditioner.
  • Step S22 the mode customization module 110 or the mode customization module 210 establishes a custom setting operation parameter and a virtual button when the user completes the operation parameter customization setting based on the operation mode customization setting interface (for example, the name is “ The mapping relationship of the "three-mode" virtual button).
  • Step S23 the custom mode activation module 112, when receiving a trigger instruction of the virtual button (for example, a virtual button named “Zhang San mode”), performs operation control on the air conditioner according to the operation parameter corresponding to the virtual button;
  • the custom mode firing module 212 operates according to the operating parameters corresponding to the virtual button when receiving a trigger command from the user for the virtual button (eg, a virtual button named "Zhang San Mode").
  • the air conditioning operation mode custom control method of the present invention may further include the following steps (not shown in the figure). :
  • the mode customization module 110 or the mode customization module 210 provides a running mode custom modification interface (for example, the interface shown in FIG. 7) when receiving an air conditioning operation mode custom modification instruction corresponding to the existing virtual button issued by the user. ) for the user to modify the operating parameters of the air conditioner;
  • the mode customization module 110 or the mode customization module 210 provides a runtime mode custom deletion interface when receiving an existing virtual button issued by the user (for example, a virtual button named "Li Si mode”).
  • the interface shown in FIG. 8 is for the user to customize to delete the existing virtual button and its corresponding running parameters (for example, a virtual button named "Li Si mode” and its corresponding operating parameters);
  • the custom mode activation module 112 controls the air conditioner according to the operation parameter corresponding to the existing virtual button.
  • the custom mode firing module 212 runs according to the running parameter corresponding to the virtual button when receiving the trigger instruction of the user for the existing virtual button (for example, a virtual button named “Li Si mode”).

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Abstract

一种空调运行模式自定义控制方法,在接收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数,并将自定义设置的运行参数与虚拟按键映射关联,使得空调运行参数按使用者个体的不同实现了差异化预设,并将空调运行参数与虚拟按键映射关联实现了一键运行,有效提高了空调操作的便捷性和准确性。还公开了一种空调运行模式自定义控制系统。

Description

空调运行模式自定义控制方法及系统
技术领域
本发明涉及一种空调器控制技术,特别涉及一种空调运行模式自定义控制方法及系统。
背景技术
目前,随着触屏技术的迅速发展,触屏显示屏在手机、平板电脑等终端设备上已经得到大规模普及,在家电产品(例如,空调)上也开始逐渐普及起来。中高端的空调(例如,中央空调)上已经具有了大的触屏显示屏,用户通过直接操作这类空调触屏显示屏上的虚拟按键或菜单,可以对这类空调进行直接控制操作。同时随着物联网、射频技术的发展,用户在手机等终端设备上安装空调的控制软件后,通过其触屏显示屏上的虚拟按键或菜单同样可以实现对空调的控制。
然而,现有空调的运行模式通常是由厂家设计,比如会议模式、办公模式、阅读模式等,不能根据个人需要做定制设计,比如导风角度是否要正对人体吹风还是避风,是否扫风,扫风的范围大小,设置温度多少,睡眠曲线的参数设置等,通常都不能进行自定义设置,当一个使用者使用空调时,通常需要对空调的多个运行参数进行调节以适应自身使用需要,这样,当其他人再使用该空调时,通常需要对该空调的多个运行参数进行再调节以适应自身使用需要,导致操作繁琐、费时,且容易出错。
发明内容
本发明的主要目的是使得空调运行参数按使用者个体的不同实现差异化预设,并将空调运行参数与虚拟按键映射关联实现一键运行,提高空调操作的便捷性和准确性。
为实现上述目的,本发明提供了一种空调运行模式自定义控制方法,该方法包括步骤:在接收到用户发出的空调运行模式自定义设置指令时,控制终端或者空调提供运行模式自定义设置界面供用户自定义设置空调的运行参数;在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,控制终端或者空调生成并显示与自定义设置的运行参数对应的虚拟按键;控制终端在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
优选地,该方法还包括:控制终端或者空调在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
优选地,该方法还包括:控制终端或者空调在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
优选地,该方法还包括:控制终端在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
此外,为实现上述目的,本发明还提供了一种空调运行模式自定义控制方法,该方法包括步骤:在收到用户发出的虚拟按键增设指令时,控制终端或者空调生成并显示待进行运行参数自定义设置的虚拟按键;在收到用户发出的,针对生成的虚拟按键对应的空调运行模式自定义设置指令时,控制终端或者空调提供运行模式自定义设置界面供用户自定义设置空调的运行参数;在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,控制终端或者空调建立自定义设置的运行参数与生成的虚拟按键的映射关系;在收到用户针对生成的虚拟按键的触发指令时,控制终端按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
优选地,该方法还包括:控制终端或者空调在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
优选地,该方法还包括:控制终端或者空调在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
优选地,该方法还包括:控制终端在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
此外,为实现上述目的,本发明还提供了一种空调运行模式自定义控制系统,运行于控制终端或者空调中,该空调运行模式自定义控制系统包括:
模式自定义模块,用于在接收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数;以及在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,生成并显示与自定义设置的运行参数对应的虚拟按键;
自定义模式激发模块,用于控制终端在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
优选地,所述模式自定义模块还用于:在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
优选地,所述模式自定义模块还用于:在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
优选地,所述自定义模式激发模块还用于:在控制终端收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,在空调收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
此外,为实现上述目的,本发明还提供了一种空调运行模式自定义控制系统,运行于控制终端或空调中,该空调运行模式自定义控制系统包括:
模式自定义模块,用于在收到用户发出的虚拟按键增设指令时,生成并显示待进行运行参数自定义设置的虚拟按键;在收到用户发出的,针对生成的虚拟按键对应的空调运行模式自定义设置指令时,控制终端或者空调提供运行模式自定义设置界面供用户自定义设置空调的运行参数;在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,控制终端或者空调建立自定义设置的运行参数与生成的虚拟按键的映射关系;
自定义模式激发模块,用于在收到用户针对生成的虚拟按键的触发指令时,控制终端按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
优选地,所述模式自动模块还用于:在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
优选地,所述模式自定义模块还用于:在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
优选地,所述自定义模式激发模块还用于:在控制终端收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,在空调收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
相较现有技术,本发明通过在接收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数,并将自定义设置的运行参数与虚拟按键映射关联,使得空调运行参数按使用者个体的不同实现了差异化预设,并将空调运行参数与虚拟按键映射关联实现了一键运行,有效提高了空调操作的便捷性和准确性。
附图说明
图1为本发明实现空调运行模式自定义控制的控制终端较佳实施例的硬件结构图。
图2为图1中触摸屏显示系统的系统架构图。
图3为图1中空调运行模式自定义控制系统较佳实施例的功能模块图。
图4至图14为图1中空调运行模式自定义控制系统提供的运行模式自定义设置界面较佳实施例的示意图。
图15为本发明实现空调运行模式自定义控制的空调较佳实施例的硬件结构图。
图16为图15中触摸屏显示系统的系统架构图。
图17为图15中空调运行模式自定义控制系统较佳实施例的功能模块图。
图18为本发明空调运行模式自定义控制方法第一实施例的具体实施流程图。
图19为本发明空调运行模式自定义控制方法第二实施例的具体实施流程图。
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
应当理解,此处所描述的具体实施例仅仅用以解释本发明,并不用于限定本发明。
如图1所示,为本发明实现空调运行模式自定义控制的控制终端较佳实施例的硬件结构图。该控制终端1包括处理单元10、存储单元15、无线信号发送单元13、触摸屏显示系统16及空调运行模式自定义控制系统11。控制终端1可以是手机、平板电脑、计算机或其他任意适用的电子设备(优选手机)。
该触摸屏显示系统16,用于提供人机交互界面,以供用户输入指令,且输出显示控制终端1对用户指令的响应数据。在本实施例中,该人机交互界面包括,但不限于,空调运行模式自定义设置界面。
如图2所示,为图1中触摸屏显示系统16的系统架构图。该触摸屏显示系统16包括触摸检测装置160、触摸屏控制器161及显示单元162。显示单元162用于信息内容的显示;触摸检测装置160及触摸屏控制器161用于用户利用该触摸屏显示系统16进行触控操作。其中,触摸检测装置160用于侦测用户的触摸位置并传送侦测的信息传给触摸屏控制器161;触摸屏控制器161接收从触摸检测装置160传来的触摸位置信息,将接收的触摸位置信息转换成触点坐标信息,将转换的触点坐标信息传送给处理单元10,及接收处理单元10发送的执行命令加以执行。
在本发明的其他实施例中,该触摸屏显示系统16还可以是其他任何适用的、带触控功能的显示系统。
该存储单元15,用于存储该空调运行模式自定义控制系统11及其运行数据。需要强调的是,该存储单元15既可以是一个单独的存储装置,也可以是多个不同存储装置的统称,在此不作赘述。
该无线信号发送单元13,用于在该处理单元10的控制下,向空调器2发出用户自定义运行模式的运行参数对应的控制信号。该无线信号发送单元13可以为WIFI模块、红外信号发送单元、蓝牙模块、带发射天线的无线信号发射器或者其他任意适用的无线信号发送单元(本实施例优选红外信号发送单元)。
该处理单元10,用于调用并执行该空调运行模式自定义控制系统11,以在用户的操作下,提供运行模式自定义设置界面(例如,图4至图14所示的界面)供用户自定义设置空调的运行参数,生成并显示与自定义的运行参数对应的虚拟按键,并在收到用户针对虚拟按键的触发指令(例如,点击指令)时,按照虚拟按键对应的运行参数,控制该无线信号发送单元13向空调发出对应的控制信号,实现对空调的运行控制。该处理单元10与存储单元15既可以分别是单独的单元,也可以集成在一起,构成一个控制器,在此不作赘述。
在本实施例中,运行参数包括温度参数、湿度参数、扫风风向参数、睡眠温度曲线参数及运行时间参数。在本发明的其他实施例中,运行参数包括温度参数、湿度参数、扫风风向参数、睡眠温度曲线参数、运行时间参数及/或任意适用的其他运行参数(例如,空调显示亮度曲线、空调显示颜色参数等等)。
在本实施例中,运行模式自定义设置界面包括空调控制界面(例如,图4所示的界面)、增设虚拟按键操作界面(例如,图5-13所示的界面)、修改虚拟按键操作界面(例如,图5-13所示的界面)、删除虚拟按键操作界面(例如,图14所示的界面)、选择的温度参数设定/修改操作界面(例如,图6所示的界面)、选择的湿度参数设定/修改操作界面(例如,图6所示的界面)、选择的运行时间设定/修改操作界面(例如,图13所示的界面)、选择的扫风风向参数设定/修改操作界面(例如,图7-10所示的界面)、选择的睡眠温度曲线参数设定/修改操作界面(例如,图11-12所示的界面)。在本发明的其他实施例中,运行模式自定义设置界面包括任意适用的设置界面,例如,当控制终端1可以控制多个空调时,较佳实施例中,优选包括一个可对多个空调进行选择的界面,在此不作赘述。
也就是说,本领域的技术人员当知:运行参数包含的参数类别并不对本发明的发明思想构成限定;运行模式自定义设置界面包含的界面类型和形式并不对本发明的发明思想构成限定。
如图3所示,为图1中空调运行模式自定义控制系统较佳实施例的功能模块图。
需要强调的是,对本领域的技术人员来说,图3所示功能模块图仅仅是一个较佳实施例的示例图,本领域的技术人员围绕图3所示的该空调运行模式自定义控制系统11的功能模块,可轻易进行新的功能模块的补充;各功能模块的名称是自定义名称,仅用于辅助理解该空调运行模式自定义控制系统11的各个程序功能块,不用于限定本发明的技术方案,本发明技术方案的核心是,各自定义名称的功能模块所要达成的功能。
该空调运行模式自定义控制系统11包括模式自定义模块110及自定义模式激发模块112。该空调运行模式自定义控制系统11的各个功能模块的功能如下:
第一实施例:
该模式自定义模块110,用于在收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数。例一,该模式自定义模块110提供运行模式自定义增设图标/按键,在用户针对该图标/按键(例如,图4所示运行模式虚拟按键区域30内的“+模式”虚拟按键)做出预设类型的操作(例如,单击或者双击)时,即判断用户发出了空调运行模式自定义增设指令;例二,该模式自定义模块110在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了空调运行模式自定义设置指令。
该模式自定义模块110,还用于在用户基于运行模式自定义设置界面,完成运行参数自定义设置时,生成并显示与自定义设置的运行参数对应的虚拟按键。
需要说明的是,在本第一实施例中,该模式自定义模块110不仅支持上述虚拟按键增设功能,还支持现有虚拟按键对应参数的修改功能,以及现有虚拟按键的删除功能。以下,基于图4至图14,对该模式自定义模块110的功能进行示例性说明:
在接收到用户发出的空调运行模式自定义增设指令(例如,接收到用户通过点击图4所示运行模式虚拟按键区域30内的“+模式”虚拟按键,所发出的指令)时,该模式自定义模块110首先提供图5所示的界面(基于该界面,用户可以设置待自定义设置的运行模式对应的虚拟案件的名称,例如,图5所示的“王五模式”);当用户基于图5所示的界面选择“温度设置”或者“湿度设置”按键进行点击时,该模式自定义模块110提供图6所示的界面;当用户基于图5所示的界面选择“水平扫风”按键进行点击时,该模式自定义模块110提供图7-8所示的界面;当用户基于图5所示的界面选择“水平定向送风”按键进行点击时,该模式自定义模块110提供图9所示的界面;当用户基于图5所示的界面选择“垂直扫风”按键进行点击时,该模式自定义模块110提供图10所示的界面;当用户基于图5所示的界面选择“睡眠曲线”按键进行点击时,该模式自定义模块110提供图11或者图12所示的界面(若提供图11所示的界面,则弹出新的温度曲线设置界面;若提供图12所示的界面,则在原界面上显示温度曲线设置界面);当用户基于图5所示的界面选择“运行时间设定”按键进行点击时,该模式自定义模块110提供图13所示的界面。
图6所示界面包括一滑动触控条31,可以通过滑动触控该滑动触控条31可以调节温度/湿度设定值,例如,朝着“+”符号方向滑动即可按预设幅度逐渐增加温度/湿度设定值,朝着“—”符号方向滑动即可按预设幅度逐渐减小温度/湿度设定值。
图7所示界面包括一扫风控制标识32,可以通过滑动触控该扫风控制标识32的阈值控线S及/或E来调节水平扫风的区域(即:处于控线S和E之间的区域为设定的扫风区域)。当用户滑动触控该扫风控制标识32的阈值控线时,可以动态显示该阈值控线的扫风角度β(例如,图8所示)
图9所示界面包括一扫风控制标识32,可以通过滑动触控该扫风控制标识32的水平定向控线来调节水平定向扫风的方向。
图10所示界面与图7所示界面类似,操作方式亦类似,在此不作赘述。
图11或者图12所示界面中,可以通过滑动触控温度—时间坐标系中的曲线,以改变曲线参数。
进一步地,于图5-10所示界面中,还可提供“参数增设按键”(图中未示出),通过点击该“参数增设按键”,可以在界面中增加新的参数设置按键,增加的新的参数设置按键可以与现有参数设置按键(例如,“温度设置”按键)对应的参数类型相同,也可以不同,在此不作赘述。
在用户针对现有图标/按键(例如,图4所示运行模式虚拟按键区域30内的现有虚拟按键“张三模式”或者“李四模式”)做出预设类型的操作(例如,单击或者双击)时,该模式自定义模块110即判断用户发出了空调运行模式自定义修改指令;或者,该模式自定义模块110在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了空调运行模式自定义修改指令。需要说明的是,现有虚拟按键的自定义修改界面可以与上述的自定义增设界面类似或者相同,在此不作赘述。
在接收到用户发出的空调运行模式自定义删除指令(例如,接收到用户通过点击图4所示运行模式虚拟按键区域30内的“—模式”虚拟按键,所发出的指令)时,该模式自定义模块110首先提供图14所示的界面,用户基于图14所示的界面,可以选择对现有的运行模式(例如,“张三模式”、“李四模式”、“王二麻模式”、“赵钱模式”及/或“孙李模式”)进行删除,图14中示例性选中“张三模式”,当用户点击“删除按钮”时,即可删除现有的“张三模式”虚拟按键及其对应的运行参数。
需要说明的是,该模式自定义模块110还可通过其他方式判定需要进行的处理类型(例如,增设虚拟按键、修改虚拟按键、删除虚拟按键),并基于判定的处理类型提供对应的操作界面。例如,预先设置处理类型与操作类型的映射关系(例如,“增设虚拟按键”对应图标单击操作、“修改虚拟按键”对应图标双击操作、“删除虚拟按键”对应图标长按操作(例如,超过3秒的图标连续按击操作)),在用户针对特定图标(例如,提供的运行模式自定义设置图标)做出预设的操作类型(例如,单击、双击或者长按)时,即判断用户发出了对应的处理类型;或者,预先设置处理类型与预设触摸轨迹的映射关系,在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了对应的处理类型。
该自定义模式激发模块112,用于在收到用户针对虚拟按键(例如,名为“张三模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数,对空调进行运行控制。
第二实施例:
该模式自定义模块110,用于在收到用户发出的虚拟按键增设指令时,生成并显示待进行运行参数自定义设置的虚拟按键(例如,生成虚拟按键,默认生成的虚拟按键的名称和按键图标分别为预设的名称和按键图标,或者,响应用户的名称修改指令将默认的名称和按键图标进行修改,例如,名称修改为“王五模式”),在收到用户发出的虚拟按键(例如,名为“王五模式”的虚拟按键)对应的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数。例一,该模式自定义模块110提供运行模式自定义增设图标/按键,在用户针对该图标/按键(例如,图4所示运行模式虚拟按键区域30内的“+模式”虚拟按键)做出预设类型的操作(例如,单击或者双击)时,即判断用户发出了空调运行模式自定义增设指令;例二,该模式自定义模块110在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了空调运行模式自定义设置指令。
该模式自定义模块110,还用于在用户基于运行模式自定义设置界面,完成运行参数自定义设置时,建立自定义设置的运行参数与虚拟按键的映射关系。
该自定义模式激发模块112,用于在收到用户针对虚拟按键(例如,名为“王五模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数,对空调进行运行控制。
需要说明的是,在本第二实施例中,该模式自定义模块110不仅支持上述虚拟按键增设功能,还支持现有虚拟按键对应参数的修改功能,以及现有虚拟按键的删除功能。例如,该模式自定义模块110,还用于在收到用户发出的现有虚拟按键(例如,名为“李四模式”的虚拟按键)对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面(例如,图5-13所示的界面)供用户自定义修改空调的运行参数;在收到用户发出的现有虚拟按键(例如,名为“李四模式”的虚拟按键)删除指令时,提供运行模式自定义删除界面(例如,图14所示的界面)供用户自定义删除现有虚拟按键及其对应的运行参数(例如,名为“李四模式”的虚拟按键及其对应的运行参数)。
需要说明的是,在本第二实施例中,该模式自定义模块110可通过特定方式判定需要进行的处理类型(例如,增设虚拟按键、修改虚拟按键、删除虚拟按键),并基于判定的处理类型提供对应的操作界面。例如,预先设置处理类型与操作类型的映射关系(例如,“增设虚拟按键”对应运行模式自定义设置图标的单击操作、“修改虚拟按键”对应增设的或者现有的虚拟按键图标双击操作、“删除虚拟按键”对应增设的或者现有的虚拟按键图标长按操作(例如,超过3秒的图标连续按击操作)),在用户针对特定图标(例如,运行模式自定义设置图标)做出预设的操作类型(例如,单击)时,即判断用户发出了对应的处理类型指令(例如,增设虚拟按键指令);或者,预先设置处理类型与预设触摸轨迹的映射关系,在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了对应的处理类型。
如图15所示,为本发明实现空调运行模式自定义控制的空调较佳实施例的硬件结构图。该空调2包括处理单元20、存储单元25、触摸屏显示系统26及空调运行模式自定义控制系统21。
该触摸屏显示系统26,用于提供人机交互界面,以供用户输入指令,且输出显示空调2对用户指令的响应数据。在本实施例中,该人机交互界面包括,但不限于,空调运行模式自定义设置界面。
如图16所示,为图15中触摸屏显示系统26的系统架构图。该触摸屏显示系统26包括触摸检测装置260、触摸屏控制器261及显示单元262。显示单元262用于信息内容的显示;触摸检测装置260及触摸屏控制器261用于用户利用该触摸屏显示系统26进行触控操作。其中,触摸检测装置260用于侦测用户的触摸位置并传送侦测的信息传给触摸屏控制器261;触摸屏控制器261接收从触摸检测装置260传来的触摸位置信息,将接收的触摸位置信息转换成触点坐标信息,将转换的触点坐标信息传送给处理单元20,及接收处理单元20发送的执行命令加以执行。
在本发明的其他实施例中,该触摸屏显示系统26还可以是其他任何适用的、带触控功能的显示系统。
该存储单元25,用于存储该空调运行模式自定义控制系统21及其运行数据。需要强调的是,该存储单元25既可以是一个单独的存储装置,也可以是多个不同存储装置的统称,在此不作赘述。
该处理单元20,用于调用并执行该空调运行模式自定义控制系统21,以在用户的操作下,提供运行模式自定义设置界面(例如,图4至图14所示的界面)供用户自定义设置空调的运行参数,生成并显示与自定义的运行参数对应的虚拟按键,并在收到用户针对虚拟按键的触发指令(例如,点击指令)时,按照虚拟按键对应的运行参数运行。该处理单元20与存储单元25既可以分别是单独的单元,也可以集成在一起,构成一个控制器,在此不作赘述。
在本实施例中,运行参数包括温度参数、湿度参数、扫风风向参数、睡眠温度曲线参数及运行时间参数。在本发明的其他实施例中,运行参数包括温度参数、湿度参数、扫风风向参数、睡眠温度曲线参数、运行时间参数及/或任意适用的其他运行参数(例如,空调显示亮度曲线、空调显示颜色参数等等)。
在本实施例中,运行模式自定义设置界面包括空调控制界面(例如,图4所示的界面)、增设虚拟按键操作界面(例如,图5-13所示的界面)、修改虚拟按键操作界面(例如,图5-13所示的界面)、删除虚拟按键操作界面(例如,图14所示的界面)、选择的温度参数设定/修改操作界面(例如,图6所示的界面)、选择的湿度参数设定/修改操作界面(例如,图6所示的界面)、选择的运行时间设定/修改操作界面(例如,图13所示的界面)、选择的扫风风向参数设定/修改操作界面(例如,图7-10所示的界面)、选择的睡眠温度曲线参数设定/修改操作界面(例如,图11-12所示的界面)。在本发明的其他实施例中,运行模式自定义设置界面包括任意适用的设置界面。
也就是说,本领域的技术人员当知:运行参数包含的参数类别并不对本发明的发明思想构成限定;运行模式自定义设置界面包含的界面类型和形式并不对本发明的发明思想构成限定。
如图17所示,为图12中空调运行模式自定义控制系统较佳实施例的功能模块图。
需要强调的是,对本领域的技术人员来说,图17所示功能模块图仅仅是一个较佳实施例的示例图,本领域的技术人员围绕图17所示的该空调运行模式自定义控制系统21的功能模块,可轻易进行新的功能模块的补充;各功能模块的名称是自定义名称,仅用于辅助理解该空调运行模式自定义控制系统11的各个程序功能块,不用于限定本发明的技术方案,本发明技术方案的核心是,各自定义名称的功能模块所要达成的功能。
该空调运行模式自定义控制系统21包括模式自定义模块210及自定义模式激发模块212。该空调运行模式自定义控制系统21的各个功能模块的功能如下:
第一实施例:
该模式自定义模块210,用于在收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数。例一,该模式自定义模块210提供运行模式自定义增设图标/按键,在用户针对该图标/按键(例如,图4所示运行模式虚拟按键区域30内的“+模式”虚拟按键)做出预设类型的操作(例如,单击或者双击)时,即判断用户发出了空调运行模式自定义增设指令;例二,该模式自定义模块210在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了空调运行模式自定义设置指令。
该模式自定义模块210,还用于在用户基于运行模式自定义设置界面,完成运行参数自定义设置时,生成并显示与自定义设置的运行参数对应的虚拟按键。
需要说明的是,在本第一实施例中,该模式自定义模块210不仅支持上述虚拟按键增设功能,还支持现有虚拟按键对应参数的修改功能,以及现有虚拟按键的删除功能。以下,基于图4至图14,对该模式自定义模块210的功能进行示例性说明:
在接收到用户发出的空调运行模式自定义增设指令(例如,接收到用户通过点击图4所示运行模式虚拟按键区域30内的“+模式”虚拟按键,所发出的指令)时,该模式自定义模块110首先提供图5所示的界面(基于该界面,用户可以设置待自定义设置的运行模式对应的虚拟案件的名称,例如,图5所示的“王五模式”);当用户基于图5所示的界面选择“温度设置”或者“湿度设置”按键进行点击时,该模式自定义模块210提供图6所示的界面;当用户基于图5所示的界面选择“水平扫风”按键进行点击时,该模式自定义模块210提供图7-8所示的界面;当用户基于图5所示的界面选择“水平定向送风”按键进行点击时,该模式自定义模块210提供图9所示的界面;当用户基于图5所示的界面选择“垂直扫风”按键进行点击时,该模式自定义模块210提供图10所示的界面;当用户基于图5所示的界面选择“睡眠曲线”按键进行点击时,该模式自定义模块210提供图11或者图12所示的界面(若提供图11所示的界面,则弹出新的温度曲线设置界面;若提供图12所示的界面,则在原界面上显示温度曲线设置界面);当用户基于图5所示的界面选择“运行时间设定”按键进行点击时,该模式自定义模块210提供图13所示的界面。
图6所示界面包括一滑动触控条31,可以通过滑动触控该滑动触控条31可以调节温度/湿度设定值,例如,朝着“+”符号方向滑动即可按预设幅度逐渐增加温度/湿度设定值,朝着“—”符号方向滑动即可按预设幅度逐渐减小温度/湿度设定值。
图7所示界面包括一扫风控制标识32,可以通过滑动触控该扫风控制标识32的阈值控线S及/或E来调节水平扫风的区域(即:处于控线S和E之间的区域为设定的扫风区域)。当用户滑动触控该扫风控制标识32的阈值控线时,可以动态显示该阈值控线的扫风角度β(例如,图8所示)
图9所示界面包括一扫风控制标识32,可以通过滑动触控该扫风控制标识32的水平定向控线来调节水平定向扫风的方向。
图10所示界面与图7所示界面类似,操作方式亦类似,在此不作赘述。
图11或者图12所示界面中,可以通过滑动触控温度—时间坐标系中的曲线,以改变曲线参数。
在用户针对现有图标/按键(例如,图4所示运行模式虚拟按键区域30内的现有虚拟按键“张三模式”或者“李四模式”)做出预设类型的操作(例如,单击或者双击)时,该模式自定义模块210即判断用户发出了空调运行模式自定义修改指令;或者,该模式自定义模块210在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了空调运行模式自定义修改指令。需要说明的是,现有虚拟按键的自定义修改界面可以与上述的自定义增设界面类似或者相同,在此不作赘述。
在接收到用户发出的空调运行模式自定义删除指令(例如,接收到用户通过点击图4所示运行模式虚拟按键区域30内的“—模式”虚拟按键,所发出的指令)时,该模式自定义模块110首先提供图14所示的界面,用户基于图14所示的界面,可以选择对现有的运行模式(例如,“张三模式”、“李四模式”、“王二麻模式”、“赵钱模式”及/或“孙李模式”)进行删除,图14中示例性选中“张三模式”,当用户点击“删除按钮”时,即可删除现有的“张三模式”虚拟按键及其对应的运行参数。
需要说明的是,该模式自定义模块210还可通过其他方式判定需要进行的处理类型(例如,增设虚拟按键、修改虚拟按键、删除虚拟按键),并基于判定的处理类型提供对应的操作界面。例如,预先设置处理类型与操作类型的映射关系(例如,“增设虚拟按键”对应图标单击操作、“修改虚拟按键”对应图标双击操作、“删除虚拟按键”对应图标长按操作(例如,超过3秒的图标连续按击操作)),在用户针对特定图标(例如,提供的运行模式自定义设置图标)做出预设的操作类型(例如,单击、双击或者长按)时,即判断用户发出了对应的处理类型;或者,预先设置处理类型与预设触摸轨迹的映射关系,在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了对应的处理类型。
该自定义模式激发模块212,用于在收到用户针对虚拟按键(例如,名为“张三模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数,对空调进行运行控制。
第二实施例:
该模式自定义模块210,用于在收到用户发出的虚拟按键增设指令时,生成并显示待进行运行参数自定义设置的虚拟按键(例如,生成虚拟按键,默认生成的虚拟按键的名称和按键图标分别为预设的名称和按键图标,或者,响应用户的名称修改指令将默认的名称和按键图标进行修改,例如,名称修改为“王五模式”),在收到用户发出的虚拟按键(例如,名为“王五模式”的虚拟按键)对应的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数。例一,该模式自定义模块210提供运行模式自定义增设图标/按键,在用户针对该图标/按键(例如,图4所示运行模式虚拟按键区域30内的“+模式”虚拟按键)做出预设类型的操作(例如,单击或者双击)时,即判断用户发出了空调运行模式自定义增设指令;例二,该模式自定义模块210在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了空调运行模式自定义设置指令。
该模式自定义模块210,还用于在用户基于运行模式自定义设置界面,完成运行参数自定义设置时,建立自定义设置的运行参数与虚拟按键的映射关系。
该自定义模式激发模块212,用于在收到用户针对虚拟按键(例如,名为“王五模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数,对空调进行运行控制。
需要说明的是,在本第二实施例中,该模式自定义模块210不仅支持上述虚拟按键增设功能,还支持现有虚拟按键对应参数的修改功能,以及现有虚拟按键的删除功能。例如,该模式自定义模块210,还用于在收到用户发出的现有虚拟按键(例如,名为“李四模式”的虚拟按键)对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面(例如,图5-13所示的界面)供用户自定义修改空调的运行参数;在收到用户发出的现有虚拟按键(例如,名为“李四模式”的虚拟按键)删除指令时,提供运行模式自定义删除界面(例如,图14所示的界面)供用户自定义删除现有虚拟按键及其对应的运行参数(例如,名为“李四模式”的虚拟按键及其对应的运行参数)。
需要说明的是,在本第二实施例中,该模式自定义模块210可通过特定方式判定需要进行的处理类型(例如,增设虚拟按键、修改虚拟按键、删除虚拟按键),并基于判定的处理类型提供对应的操作界面。例如,预先设置处理类型与操作类型的映射关系(例如,“增设虚拟按键”对应运行模式自定义设置图标的单击操作、“修改虚拟按键”对应增设的或者现有的虚拟按键图标双击操作、“删除虚拟按键”对应增设的或者现有的虚拟按键图标长按操作(例如,超过3秒的图标连续按击操作)),在用户针对特定图标(例如,运行模式自定义设置图标)做出预设的操作类型(例如,单击)时,即判断用户发出了对应的处理类型指令(例如,增设虚拟按键指令);或者,预先设置处理类型与预设触摸轨迹的映射关系,在侦测到用户做出预设触摸轨迹的触摸操作时,即判断用户发出了对应的处理类型。
如图18所示,为本发明空调运行模式自定义控制方法第一实施例的具体实施流程图。
步骤S10,该模式自定义模块110或者模式自定义模块210,在收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数。
步骤S11,该模式自定义模块110或者模式自定义模块210,在用户基于运行模式自定义设置界面,完成运行参数自定义设置时,生成并显示与自定义设置的运行参数对应的虚拟按键(例如,名为“张三模式”的虚拟按键)。
步骤S12,该自定义模式激发模块112,在收到用户针对虚拟按键(例如,名为“张三模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数,对空调进行运行控制;或者,该自定义模式激发模块212,在收到用户针对虚拟按键(例如,名为“张三模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数运行。
如图19所示,为本发明空调运行模式自定义控制方法第二实施例的具体实施流程图。
步骤S20,该模式自定义模块110或者模式自定义模块210,在收到用户发出的虚拟按键增设指令时,生成并显示待进行运行参数自定义设置的虚拟按键(例如,生成虚拟按键,默认生成的虚拟按键的名称和按键图标分别为预设的名称和按键图标,或者,响应用户的名称修改指令将默认的名称和按键图标进行修改,例如,名称修改为“张三模式”)。
步骤S21,该模式自定义模块110或者模式自定义模块210,在收到用户发出的虚拟按键(例如,名为“张三模式”的虚拟按键)对应的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数。
步骤S22,该模式自定义模块110或者模式自定义模块210,在用户基于运行模式自定义设置界面,完成运行参数自定义设置时,建立自定义设置的运行参数与虚拟按键(例如,名为“张三模式”的虚拟按键)的映射关系。
步骤S23,该自定义模式激发模块112在收到用户针对虚拟按键(例如,名为“张三模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数,对空调进行运行控制;或者,该自定义模式激发模块212在收到用户针对虚拟按键(例如,名为“张三模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数运行。
需要说明的是,在本发明的其他实施例中,上述步骤S20、步骤S21、步骤S22及步骤S23之外,本发明空调运行模式自定义控制方法还可包括如下步骤(图中未示出):
该模式自定义模块110或者模式自定义模块210,在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面(例如,图7所示的界面)供用户自定义修改空调的运行参数;
该模式自定义模块110或者模式自定义模块210,在收到用户发出的现有虚拟按键(例如,名为“李四模式”的虚拟按键)删除指令时,提供运行模式自定义删除界面(例如,图8所示的界面)供用户自定义删除现有虚拟按键及其对应的运行参数(例如,名为“李四模式”的虚拟按键及其对应的运行参数);
该自定义模式激发模块112在收到用户针对现有虚拟按键(例如,名为“李四模式”的虚拟按键)的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制;或者,该自定义模式激发模块212在收到用户针对现有虚拟按键(例如,名为“李四模式”的虚拟按键)的触发指令时,按照虚拟按键对应的运行参数运行。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。

Claims (20)

  1. 一种空调运行模式自定义控制方法,其特征在于,该方法包括步骤:
    在接收到用户发出的空调运行模式自定义设置指令时,控制终端或者空调提供运行模式自定义设置界面供用户自定义设置空调的运行参数;
    在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,控制终端或者空调生成并显示与自定义设置的运行参数对应的虚拟按键;
    控制终端在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
  2. 如权利要求1所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端或者空调在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
  3. 如权利要求1所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端或者空调在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
  4. 如权利要求2所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  5. 如权利要求3所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  6. 一种空调运行模式自定义控制方法,其特征在于,该方法包括步骤:
    在收到用户发出的虚拟按键增设指令时,控制终端或者空调生成并显示待进行运行参数自定义设置的虚拟按键;
    在收到用户发出的,针对生成的虚拟按键对应的空调运行模式自定义设置指令时,控制终端或者空调提供运行模式自定义设置界面供用户自定义设置空调的运行参数;
    在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,控制终端或者空调建立自定义设置的运行参数与生成的虚拟按键的映射关系;
    在收到用户针对生成的虚拟按键的触发指令时,控制终端按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
  7. 如权利要求6所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端或者空调在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
  8. 如权利要求6所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端或者空调在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
  9. 如权利要求7所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  10. 如权利要求8所述的空调运行模式自定义控制方法,其特征在于,该方法还包括:
    控制终端在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  11. 一种空调运行模式自定义控制系统,其特征在于,运行于控制终端或者空调中,该空调运行模式自定义控制系统包括:
    模式自定义模块,用于在接收到用户发出的空调运行模式自定义设置指令时,提供运行模式自定义设置界面供用户自定义设置空调的运行参数;以及在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,生成并显示与自定义设置的运行参数对应的虚拟按键;
    自定义模式激发模块,用于控制终端在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
  12. 如权利要求11所述的空调运行模式自定义控制系统,其特征在于,所述模式自定义模块还用于:在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
  13. 如权利要求11所述的空调运行模式自定义控制系统,其特征在于,所述模式自定义模块还用于:在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
  14. 如权利要求12所述的空调运行模式自定义控制系统,其特征在于,所述自定义模式激发模块还用于:在控制终端收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,在空调收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  15. 如权利要求13所述的空调运行模式自定义控制系统,其特征在于,所述自定义模式激发模块还用于:在控制终端收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,在空调收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  16. 一种空调运行模式自定义控制系统,其特征在于,运行于控制终端或空调中,该空调运行模式自定义控制系统包括:
    模式自定义模块,用于在收到用户发出的虚拟按键增设指令时,生成并显示待进行运行参数自定义设置的虚拟按键;在收到用户发出的,针对生成的虚拟按键对应的空调运行模式自定义设置指令时,控制终端或者空调提供运行模式自定义设置界面供用户自定义设置空调的运行参数;在用户基于所述运行模式自定义设置界面,完成所述运行参数自定义设置时,控制终端或者空调建立自定义设置的运行参数与生成的虚拟按键的映射关系;
    自定义模式激发模块,用于在收到用户针对生成的虚拟按键的触发指令时,控制终端按照生成的虚拟按键对应的运行参数,对空调进行运行控制,或者,空调在收到用户针对生成的虚拟按键的触发指令时,按照生成的虚拟按键对应的运行参数运行。
  17. 如权利要求16所述的空调运行模式自定义控制系统,其特征在于,所述模式自动模块还用于:在收到用户发出的现有虚拟按键对应的空调运行模式自定义修改指令时,提供运行模式自定义修改界面供用户自定义修改现有虚拟按键对应的空调运行参数。
  18. 如权利要求16所述的空调运行模式自定义控制系统,其特征在于,所述模式自定义模块还用于:在收到用户发出的现有虚拟按键删除指令时,提供运行模式自定义删除界面供用户自定义删除现有虚拟按键及其对应的运行参数。
  19. 如权利要求17所述的空调运行模式自定义控制系统,其特征在于,所述自定义模式激发模块还用于:在控制终端收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,在空调收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
  20. 如权利要求18所述的空调运行模式自定义控制系统,其特征在于,所述自定义模式激发模块还用于:在控制终端收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数,对空调进行运行控制,或者,在空调收到用户针对现有虚拟按键的触发指令时,按照现有虚拟按键对应的运行参数运行。
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112612214A (zh) * 2020-12-23 2021-04-06 青岛海尔科技有限公司 用于功能界面生成的方法、系统和电子设备

Families Citing this family (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2017020231A1 (zh) * 2015-08-03 2017-02-09 薄冰 根据代码调整空调时弹出专利信息的方法以及空调
CN105530268A (zh) * 2016-02-24 2016-04-27 华为技术有限公司 一种异构协议互通方法及控制器
CN106850358B (zh) * 2016-12-29 2021-10-26 无锡小天鹅电器有限公司 智能电器及其控制方法、装置、系统
CN108278737B (zh) * 2017-12-20 2020-12-25 珠海格力电器股份有限公司 一种空调的控制方法、装置、存储介质、空调及遥控器
CN108335469A (zh) * 2017-12-21 2018-07-27 珠海格力电器股份有限公司 按键功能设置方法及装置
CN108469740A (zh) * 2018-03-08 2018-08-31 广东美的制冷设备有限公司 一键控制的参数控制方法、家电设备及终端控制设备
CN108709288A (zh) * 2018-03-12 2018-10-26 珠海格力电器股份有限公司 一种功能自定义空调的实现方法、装置及空调
GB2572592B (en) * 2018-04-04 2020-08-26 Dyson Technology Ltd Control of a fan assembly
CN109080407A (zh) * 2018-08-21 2018-12-25 上海博泰悦臻网络技术服务有限公司 通风模式的自定义方法和车机
CN109654679B (zh) * 2018-11-15 2021-10-29 青岛海尔空调器有限总公司 控制空调的方法及装置、系统、存储介质
CN110160224A (zh) * 2019-05-08 2019-08-23 青岛海尔空调器有限总公司 空气调节设备的控制方法及装置、空气调节设备
CN112527173A (zh) * 2019-09-18 2021-03-19 佛山市顺德区美的电热电器制造有限公司 一种电器设备功能设置方法及相关设备
CN110822663B (zh) * 2019-11-27 2023-09-01 广东美的制冷设备有限公司 空气调节设备的控制方法、装置以及服务器
CN112925459B (zh) * 2019-12-05 2022-08-19 佛山市云米电器科技有限公司 风扇的吹风控制方法、终端设备、系统及存储介质
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CN113969901B (zh) * 2020-07-24 2023-07-21 中移(苏州)软件技术有限公司 一种转速控制方法、装置、计算机存储介质及设备
CN112503730A (zh) * 2020-10-29 2021-03-16 阳光城集团上海信息科技有限公司 基于物联网平台的空调控制方法及其系统
CN112413847B (zh) * 2020-11-20 2022-03-18 珠海格力电器股份有限公司 功能定制方法、装置、系统及存储介质
CN114562805B (zh) * 2020-11-27 2024-03-29 广东美的制冷设备有限公司 空调器及其控制方法、计算机存储介质
CN112762585A (zh) * 2021-01-08 2021-05-07 青岛海信日立空调系统有限公司 一种空调系统和控制方法
CN215062755U (zh) * 2021-04-30 2021-12-07 广东松下环境系统有限公司 换气装置
CN113985845A (zh) * 2021-10-27 2022-01-28 奇瑞商用车(安徽)有限公司 一种基于用户diy设置的车辆远程控制方法
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CN114924494A (zh) * 2022-05-11 2022-08-19 深圳市恒致云科技有限公司 智能设备的按键定义方法、装置、计算机设备、存储介质
CN115185420B (zh) * 2022-06-14 2025-03-14 珠海格力电器股份有限公司 自定义模式的操作方法、装置、设备及存储介质
CN115479358B (zh) * 2022-09-14 2024-07-02 小米科技(武汉)有限公司 空调控制方法及装置、电子设备及存储介质
CN117906249B (zh) * 2022-10-10 2025-11-21 广州联动万物科技有限公司 一种风格可编程空调的控制方法及装置
CN116045440B (zh) * 2023-01-03 2024-09-27 四川长虹空调有限公司 空调个性化参数的设定方法
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CN117419444A (zh) * 2023-11-02 2024-01-19 小米科技(武汉)有限公司 空调控制方法、装置、空调、电子设备及存储介质
CN119309298A (zh) * 2024-11-07 2025-01-14 广东力迅信息技术有限公司 一种基于物联网的环境控制方法及装置

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010159922A (ja) * 2009-01-08 2010-07-22 Denso Wave Inc 空調コントローラ
CN102022803A (zh) * 2010-12-14 2011-04-20 广东美的电器股份有限公司 适应多种场合的空调器自动控制方法
KR20120016752A (ko) * 2010-08-17 2012-02-27 엘지전자 주식회사 공기조화장치
US20120151394A1 (en) * 2010-12-08 2012-06-14 Antony Locke User interface
CN102767884A (zh) * 2012-07-05 2012-11-07 广东美的制冷设备有限公司 空调器的控制装置及其控制方法
CN103032935A (zh) * 2011-09-30 2013-04-10 日立空调·家用电器株式会社 空调控制终端和空调控制的设定操作方法
CN103604197A (zh) * 2013-11-29 2014-02-26 广东美的制冷设备有限公司 空调器触摸控制界面的显示方法和系统

Family Cites Families (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6848104B1 (en) * 1998-12-21 2005-01-25 Koninklijke Philips Electronics N.V. Clustering of task-associated objects for effecting tasks among a system and its environmental devices
US20030046557A1 (en) * 2001-09-06 2003-03-06 Miller Keith F. Multipurpose networked data communications system and distributed user control interface therefor
US7156318B1 (en) 2003-09-03 2007-01-02 Howard Rosen Programmable thermostat incorporating a liquid crystal display selectively presenting adaptable system menus including changeable interactive virtual buttons
US9632665B2 (en) * 2004-09-08 2017-04-25 Universal Electronics Inc. System and method for flexible configuration of a controlling device
TW200707258A (en) * 2005-08-10 2007-02-16 Via Tech Inc Remote controller and related method for controlling multiple devices
KR100943905B1 (ko) 2008-02-05 2010-02-24 엘지전자 주식회사 단말기 및 그 제어 방법
CN101245936A (zh) * 2008-03-21 2008-08-20 珠海格力电器股份有限公司 空调及其控制方法
CA2678827C (en) * 2008-09-15 2017-12-05 Johnson Controls Technology Company Transition temperature adjustment user interfaces
US8406961B2 (en) * 2009-04-16 2013-03-26 Panasonic Corporation Reconfigurable vehicle user interface system
MX342087B (es) * 2009-07-20 2016-09-13 Allure Energy Inc Sistema y metodo de gestion de energia.
US8078359B2 (en) * 2009-10-05 2011-12-13 Tesla Motors, Inc. User configurable vehicle user interface
CN102262818B (zh) * 2011-07-08 2013-03-27 广东美的电器股份有限公司 利用手机控制的空调器及其控制方法
US20130345882A1 (en) * 2011-12-22 2013-12-26 Steven David Dushane Programmable environmental comfort controller
US9594384B2 (en) * 2012-07-26 2017-03-14 Honeywell International Inc. Method of associating an HVAC controller with an external web service
US9823672B2 (en) * 2012-11-30 2017-11-21 Honeywell International Inc. Remote application for controlling an HVAC system
US10564813B2 (en) * 2013-06-18 2020-02-18 Samsung Electronics Co., Ltd. User terminal apparatus and management method of home network thereof
US10344995B2 (en) * 2013-11-05 2019-07-09 Trane International Inc. HVAC system controller configuration
US20150203062A1 (en) * 2014-01-17 2015-07-23 GM Global Technology Operations LLC Methods and systems for custom vehicle personalization via human machine interface

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010159922A (ja) * 2009-01-08 2010-07-22 Denso Wave Inc 空調コントローラ
KR20120016752A (ko) * 2010-08-17 2012-02-27 엘지전자 주식회사 공기조화장치
US20120151394A1 (en) * 2010-12-08 2012-06-14 Antony Locke User interface
CN102022803A (zh) * 2010-12-14 2011-04-20 广东美的电器股份有限公司 适应多种场合的空调器自动控制方法
CN103032935A (zh) * 2011-09-30 2013-04-10 日立空调·家用电器株式会社 空调控制终端和空调控制的设定操作方法
CN102767884A (zh) * 2012-07-05 2012-11-07 广东美的制冷设备有限公司 空调器的控制装置及其控制方法
CN103604197A (zh) * 2013-11-29 2014-02-26 广东美的制冷设备有限公司 空调器触摸控制界面的显示方法和系统

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP3098526A4 *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112612214A (zh) * 2020-12-23 2021-04-06 青岛海尔科技有限公司 用于功能界面生成的方法、系统和电子设备

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