WO2019114565A1 - 空气调节器的调节方法、装置以及存储介质 - Google Patents

空气调节器的调节方法、装置以及存储介质 Download PDF

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Publication number
WO2019114565A1
WO2019114565A1 PCT/CN2018/118391 CN2018118391W WO2019114565A1 WO 2019114565 A1 WO2019114565 A1 WO 2019114565A1 CN 2018118391 W CN2018118391 W CN 2018118391W WO 2019114565 A1 WO2019114565 A1 WO 2019114565A1
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WIPO (PCT)
Prior art keywords
air conditioning
conditioning parameter
target value
variation curve
air conditioner
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PCT/CN2018/118391
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English (en)
French (fr)
Inventor
廖帅
Original Assignee
广东美的制冷设备有限公司
美的集团股份有限公司
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Application filed by 广东美的制冷设备有限公司, 美的集团股份有限公司 filed Critical 广东美的制冷设备有限公司
Priority to EP18887613.0A priority Critical patent/EP3553400B1/en
Publication of WO2019114565A1 publication Critical patent/WO2019114565A1/zh

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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
    • 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
    • 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
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/56Remote control
    • F24F11/59Remote control for presetting
    • 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

Definitions

  • the present application relates to the field of air conditioners, and in particular, to an air conditioner adjustment method, an air conditioner adjustment device, and a computer readable storage medium.
  • the user sets parameters such as target temperature and target humidity through the remote controller.
  • parameters such as target temperature and target humidity
  • the remote controller the user sets parameters such as target temperature and target humidity through the remote controller.
  • an adjustment method makes it difficult for the user to intuitively compare the setting trend of the parameters, and when the parameter is raised or lowered, the user is required to constantly press the adjustment button, and the adjustment is troublesome.
  • the main object of the present application is to provide an air conditioner adjustment method, an air conditioner adjustment device, and a computer readable storage medium, which are intended to achieve quicker and more accurate adjustment of the adjustment parameters of the air conditioning device.
  • the present application provides an adjustment method of an air conditioner, and the method for adjusting the air conditioner includes the following steps:
  • the method further includes:
  • the step of correlating the second air conditioning parameter variation curve with the second air conditioning parameter variation curve associated with the time point and the first target value update ,Also includes:
  • the method before the updating the associated second air conditioning parameter variation curve according to the time point and the first target value, the method further includes:
  • the step of updating the associated second air conditioning parameter variation curve according to the time point and the target value is performed.
  • the method further includes:
  • the updated first air conditioning parameter change curve is stored to control the air conditioner operation according to the stored first air conditioning parameter variation curve when the power is turned on next time.
  • the method before the detecting the triggering command triggered by the first air conditioning parameter change curve, the method further includes:
  • the adjustment instruction is generated according to the trajectory information.
  • the step of detecting the touch operation for the first air conditioning parameter change curve and the step of acquiring the track information corresponding to the touch operation further includes:
  • the step of acquiring the track information corresponding to the touch operation is performed.
  • the step of detecting a touch operation for the first air conditioning parameter variation curve includes:
  • the time point corresponding to the touch operation and the target value are output when the touch operation is detected.
  • the step of generating the adjustment instruction according to the track information includes:
  • the adjustment instruction is generated according to the time point and the target value.
  • the present application further provides an adjusting device for an air conditioner, and the adjusting device of the air conditioner includes:
  • a memory a processor
  • an adjustment program of an air conditioner stored on the memory and operable on the processor, the adjustment program of the air conditioner being implemented by the processor to implement adjustment of the air conditioner
  • the present application further provides a computer readable storage medium having an adjustment program of an air conditioner stored thereon, the air conditioner adjusting program being implemented by a processor to implement the air The steps of the adjustment method of the regulator.
  • the adjustment method of the air conditioner, the adjusting device of the air conditioner, and the computer readable storage medium provided by the present application when detecting the adjustment instruction triggered by the first air conditioning parameter variation curve, acquire the time point corresponding to the adjustment instruction and the The first target value corresponding to the adjustment command is updated, and the first air conditioning parameter variation curve is updated according to the time point and the first target value to control the air conditioner operation according to the updated first air conditioning parameter variation curve.
  • the present application achieves a faster and more accurate adjustment of the adjustment parameters of the air conditioning device.
  • FIG. 1 is a schematic diagram of a hardware operating environment of a terminal involved in a solution according to an embodiment of the present application
  • FIG. 2 is a schematic flow chart of a first embodiment of a method for adjusting an air conditioner according to the present application
  • FIG. 3 is a schematic flow chart of a second embodiment of a method for adjusting an air conditioner according to the present application
  • FIG. 4 is a schematic flow chart of a third embodiment of a method for adjusting an air conditioner according to the present application.
  • FIG. 5 is a schematic flow chart of a fourth embodiment of a method for adjusting an air conditioner according to the present application.
  • FIG. 6 is a schematic flow chart of a fifth embodiment of a method for adjusting an air conditioner according to the present application.
  • FIG. 7 is a schematic flow chart of a sixth embodiment of a method for adjusting an air conditioner according to the present application.
  • FIG. 8 is a schematic flow chart of a seventh embodiment of a method for adjusting an air conditioner according to the present application.
  • FIG. 9 is a schematic diagram of a refinement process of detecting a touch operation for a first air conditioning parameter variation curve in the present application.
  • FIG. 10 is a schematic diagram showing the refinement flow of generating an adjustment instruction according to the trajectory information in the present application.
  • the application provides an adjustment method of an air conditioner, which can adjust the adjustment parameters of the air conditioner more quickly and accurately.
  • FIG. 1 is a schematic diagram of a hardware operating environment of a terminal involved in an embodiment of the present application.
  • the terminal of the embodiment of the present application may be an air conditioner such as an air conditioner, an air conditioner, or an air cleaner.
  • the terminal may include a processor 1001, such as a CPU, a network interface 1004, a user interface 1003, a memory 1005, and a communication bus 1002.
  • the communication bus 1002 is used to implement connection communication between these components.
  • the user interface 1003 can include a display, an input unit such as a keyboard, and the optional user interface 1003 can also include a standard wired interface, a wireless interface.
  • the network interface 1004 can optionally include a standard wired interface, a wireless interface (such as a memory (non-volatile) Memory), such as disk storage.
  • the memory 1005 can also optionally be a storage device independent of the aforementioned processor 1001.
  • FIG. 1 does not constitute a limitation to the terminal, and may include more or less components than those illustrated, or a combination of certain components, or different component arrangements.
  • an operating system may be included in the memory 1005 as a computer storage medium.
  • a network communication module may be included in the memory 1005 as a computer storage medium.
  • a user interface module may be included in the memory 1005 as a computer storage medium.
  • an air conditioner adjustment program may be included in the memory 1005 as a computer storage medium.
  • the network interface 1004 is mainly used to connect to the background server and perform data communication with the background server;
  • the user interface 1003 is mainly used to connect the client (user end), and perform data communication with the client;
  • the processor The 1001 can be used to call an adjustment procedure of the air conditioner stored in the memory 1005 and perform the following operations:
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • the step of updating the associated second air conditioning parameter variation curve according to the time point and the target value is performed.
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • the updated first air conditioning parameter change curve is stored to control the air conditioner operation according to the stored first air conditioning parameter variation curve when the power is turned on next time.
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • the adjustment instruction is generated according to the trajectory information.
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • the step of acquiring the track information corresponding to the touch operation is performed.
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • the time point corresponding to the touch operation and the target value are output when the touch operation is detected.
  • processor 1001 may call an adjustment program of the air conditioner stored in the memory 1005, and also perform the following operations:
  • the adjustment instruction is generated according to the time point and the target value.
  • the method for adjusting the air conditioner includes:
  • Step S10 when detecting an adjustment instruction triggered by the first air conditioning parameter change curve, acquiring a time point corresponding to the adjustment instruction and a first target value corresponding to the adjustment instruction;
  • the adjustment command includes an adjustment function selected by the user and a specific adjustment parameter under the adjustment function.
  • the air conditioner has five adjustment functions of temperature, humidity, wind speed, cleanliness and freshness.
  • Each adjustment function has a corresponding air conditioning parameter variation curve, and the user performs a trigger operation on the air conditioning parameter variation curve to generate an adjustment instruction.
  • the air conditioning parameter change curve of each adjustment function is displayed on the display screen of the air conditioner or the display interface of the mobile terminal APP connected to the air conditioner, and the user can send the adjustment instruction through the display screen of the air conditioner, or The adjustment command is sent by the mobile terminal connected to the air conditioner.
  • the cleanliness is mainly judged based on the content of volatile organic compounds and PM2.5, and the freshness is mainly determined based on the content of indoor oxygen and carbon dioxide.
  • the user can turn on all adjustment functions or only open several of them.
  • the air conditioner automatically outputs the air conditioning parameter variation curve that matches the environmental parameters according to the current temperature, humidity, cleanliness and freshness of the environment.
  • the air conditioner automatically outputs a cleanliness curve according to the current cleanliness of the environment to control the operation of the air conditioner.
  • the prompt information is output together, wherein the prompt information may be an effect brought by running the air conditioning parameter variation curve.
  • the abscissa of the air conditioning parameter variation curve is time
  • the ordinate is a specific parameter of the corresponding adjustment function of the curve.
  • the user increases or decreases the specific parameters of the adjustment function by lifting the curve or the pull-down curve. For example, at the temperature curve interface, the user raises the curve by 2 ° C at 2 h, that is, during the second hour of operation of the air conditioner, the target temperature is increased by 2 ° C based on the target temperature of the air conditioner output.
  • Step S20 Update the first air conditioning parameter variation curve according to the time point and the first target value to control the air conditioner operation according to the updated first air conditioning parameter variation curve.
  • the temperature, the humidity, and the wind speed are related to each other, in general, the user feels different temperatures at different humidity levels. For example, the winter in the north is relatively dry, and the winter in the south is relatively humid. At the same temperature, the cold feeling in the south is more intense. Similarly, under different wind speeds, users feel differently about temperature. For example, a warm wind with a higher wind speed is more intense than a warm wind with a lower wind speed. Therefore, when the first air-conditioning parameter change curve is a temperature, humidity or wind speed adjustment parameter change curve, the temperature, humidity or wind speed adjustment parameter change curve is not only adjusted according to the adjustment command, but also whether the temperature and humidity are comprehensively adjusted. And the curve of the adjustment parameter of the wind speed.
  • the adjustment instruction triggered for the first air conditioning parameter change curve when the adjustment instruction triggered for the first air conditioning parameter change curve is detected, the time point corresponding to the adjustment instruction and the first target value corresponding to the adjustment instruction are acquired, and according to the time point and the first target value The first air conditioning parameter variation curve is updated to control the air conditioner operation according to the updated first air conditioning parameter variation curve. In this way, it is possible to adjust the adjustment parameters of the air conditioning device more quickly and accurately.
  • Step S30 determining whether the first air conditioning parameter change curve has an associated second air conditioning parameter variation curve, the air conditioning parameter is multiple, and the air conditioning parameter variation curve between each air conditioning parameter is associated;
  • Step S40 Update the associated second air conditioning parameter change curve according to the time point and the first target value when there is an associated second air conditioning parameter change curve.
  • the temperature, humidity, and wind speed are correlated.
  • the user feels different temperature.
  • the winter in the north is relatively dry, and the winter in the south is relatively humid.
  • the cold in the south feels stronger; the same, different
  • the wind speed the user's feeling of temperature is also different.
  • the warm wind with higher wind speed is more intense than the warm wind with lower wind speed. Therefore, when the first air conditioning parameter change curve is the adjustment curve of temperature, humidity or wind speed, the first air conditioning parameter is adjusted not only according to the first air conditioning parameter variation curve, but also according to the change of the first air conditioning parameter variation curve. See if the second air conditioning parameter associated with the first air conditioning parameter is adjusted.
  • the temperature, humidity or wind speed adjustment parameter change curve is not only adjusted according to the adjustment command, but also whether the temperature is comprehensively adjusted. , humidity and wind speed adjustment parameters change curve.
  • the second air conditioning parameter should be in an open state, that is, when the first air conditioning parameter change curve has a second air conditioning parameter change curve, but the second air conditioning parameter is not in the open state, then The second air conditioning parameter variation curve is updated.
  • determining whether the first air conditioning parameter change curve has an associated second air conditioning parameter change curve and updating the association according to the time point and the first target value when there is an associated second air conditioning parameter change curve
  • the second air conditioning parameter variation curve In this way, the adjustment curve of the adjustment parameters of temperature, humidity and wind speed is comprehensively adjusted to provide users with a more comprehensive and comfortable experience.
  • the associated second air conditioning parameter variation curve and the basis are associated
  • the step of updating the associated second air conditioning parameter variation curve with the first target value further includes:
  • Step S41 determining whether the air conditioning parameter corresponding to the second air conditioning parameter change curve is set as a parameter to be adjusted
  • Step S42 when the air conditioning parameter corresponding to the second air conditioning parameter change curve is the parameter to be adjusted, performing the second air conditioning associated with updating according to the time point and the first target value The steps of the parameter change curve.
  • the second air conditioning parameter is in an open state, and when the second air conditioning parameter is in an open state, it is determined as a parameter to be adjusted.
  • the air conditioning parameter corresponding to the second air conditioning parameter variation curve is set as the parameter to be adjusted, and when the air conditioning parameter corresponding to the second air conditioning parameter variation curve is the parameter to be adjusted, according to the time point and The first target value updates the associated second air conditioning parameter profile.
  • the adjustment curve of the adjustment parameters of temperature, humidity and wind speed is comprehensively adjusted to provide users with a more comprehensive and comfortable experience.
  • the updating the associated according to the time point and the first target value Before the second air conditioning parameter change curve it also includes:
  • Step S43 acquiring a second target value corresponding to the time point in the second air conditioning parameter change curve
  • Step S44 calculating a comfort parameter according to the first target value and the second target value
  • Step S45 if the comfort parameter is not within the preset comfort range, outputting prompt information for adjusting the second air conditioning parameter variation curve;
  • Step S46 determining whether a confirmation instruction is received
  • Step S47 when receiving the confirmation instruction, performing the step of updating the associated second air conditioning parameter variation curve according to the time point and the target value.
  • the temperature, the humidity, and the wind speed are related to each other.
  • the first air conditioning parameter change curve is a temperature, humidity, or wind speed adjustment parameter change curve
  • the temperature, humidity, or wind speed adjustment is not only adjusted according to the adjustment command.
  • the parameter variation curve also determines whether the adjustment parameter of temperature, humidity and wind speed is comprehensively adjusted.
  • the first air conditioning parameter change curve has an associated second air conditioning parameter change curve, and the second air conditioning parameter change curve is on In the state, the second target value at the same time point in the second air conditioning parameter variation curve is acquired, and the comfort parameter is calculated according to the first target value and the second target value.
  • Whether or not to adjust the second air conditioning parameter variation curve is determined by determining whether the comfort parameter is within a preset comfort range.
  • the preset comfort range is a preset comfort range, which is a range obtained by a large number of test statistics. If the comfort parameter is not within the preset comfort range, the prompt information is output to ask the user whether to adjust the prompt information of the second air conditioning parameter change curve.
  • the air conditioner automatically adjusts the second air-conditioning parameter change curve according to the comfort parameter; when the confirmation command is not received within the preset time period, the second air-conditioning parameter change curve is not adjusted, and the preset The duration can be one minute. It should be noted that the second air conditioning parameter variation curve can also be manually adjusted by the user.
  • the first air conditioning parameter variation curve is temperature and the second air conditioning parameter variation curve is humidity. It should be noted that the embodiment is not limited to this embodiment, and is only for convenience of description, so that temperature and humidity are selected for illustration.
  • the air conditioner acquires the target humidity for the third hour, and calculates the comfort parameter for the third hour according to the target temperature and the target humidity.
  • the comfort parameter exceeds the preset comfort range
  • the prompt information is output to ask the user whether to adjust the prompt information of the humidity change curve.
  • the air conditioner automatically adjusts the target humidity for the third hour in the humidity change curve according to the comfort parameter; when the confirmation command is not received within the preset time period, the humidity change curve is not adjusted.
  • the second target value corresponding to the time point in the second air conditioning parameter variation curve is acquired, and the comfort parameter is calculated according to the first target value and the second target value. If the comfort parameter is not within the preset comfort range, the output adjusts the prompt information of the second air-conditioning parameter change curve, and when receiving the confirmation command, updates the associated second air-conditioning parameter change curve according to the time point and the target value. In this way, when the user adjusts the temperature, humidity or wind speed, the user is provided with a more comprehensive and comfortable experience by calculating the comfort parameter.
  • the air is controlled according to the updated first air conditioning parameter variation curve.
  • the regulator After the regulator is running, it also includes:
  • Step S50 When the shutdown command is detected, storing the updated first air conditioning parameter change curve to control the air conditioner operation according to the stored first air conditioning parameter change curve when the power is turned on next time.
  • the adjustment parameter change curve of each air conditioning parameter is stored to be operated according to the user-adjusted adjustment parameter change curve during the next startup operation, to prevent the user from making adjustment again.
  • the updated first air conditioning parameter variation curve is stored to control the air conditioner operation according to the stored first air conditioning parameter variation curve at the next power-on.
  • the user-adjusted adjustment parameter change curve is memorized, and is operated with the user-adjusted adjustment parameter change curve at the next power-on.
  • Step S60 Acquire trajectory information corresponding to the touch operation when detecting a touch operation for the first air conditioning parameter change curve
  • Step S70 Generate the adjustment instruction according to the track information.
  • the air conditioning parameter change curve of each adjustment function is displayed on the display screen of the air conditioner or the display interface of the mobile terminal APP connected to the air conditioner, and the user can send an adjustment instruction through the display screen of the air conditioner.
  • the adjustment command can also be sent via a mobile terminal connected to the air conditioner.
  • the abscissa of the air conditioning parameter variation curve is time
  • the ordinate is a specific parameter of the corresponding adjustment function of the curve.
  • the user forms the trajectory information by lifting the curve or the pull-down curve, and generates an adjustment instruction according to the end point of the trajectory information.
  • the preset time can be 5 seconds.
  • An adjustment command is generated based on the time and target value of the end point of the trajectory information.
  • the adjustment command can be: increase the target temperature of the third hour by three degrees.
  • the trajectory information corresponding to the touch operation is acquired, and an adjustment instruction is generated according to the trajectory information.
  • an adjustment command can be generated, so that the user can adjust the adjustment parameter of the air conditioning device more quickly and accurately.
  • the detecting a touch operation for the first air conditioning parameter variation curve and the between the steps of acquiring the trajectory information corresponding to the touch operation further includes:
  • Step S80 determining whether the touch operation is performed on an adjustable node on the first air conditioning parameter change curve
  • Step S90 When the touch operation is an operation performed on the adjustable node on the first air conditioning parameter change curve, the step of acquiring the track information corresponding to the touch operation is performed.
  • the air conditioning parameter change curve there is an adjustable node on the air conditioning parameter change curve.
  • the purpose of determining the touch operation is to generate an adjustment instruction, so the corresponding touch operation is acquired.
  • Track information to generate an adjustment command based on the track information.
  • the touch operation is an operation performed on the adjustable node on the first air conditioning parameter variation curve
  • the step of acquiring the trajectory information corresponding to the touch operation is performed. In this way, the user's false triggering is avoided.
  • the step of detecting a touch operation for the first air conditioning parameter variation curve includes :
  • Step S61 When the touch operation is detected, output the time point corresponding to the touch operation and the target value.
  • the coordinate value corresponding to the touch operation that is, the time point corresponding to the touch operation and the target value are displayed in real time as the touch operation moves. This facilitates the user to set the adjustment parameters to avoid misuse.
  • the step of generating the adjustment instruction according to the trajectory information includes:
  • Step S71 Obtain a starting point and an ending point of the track information.
  • Step S72 Determine the time point according to a starting point of the track information.
  • Step S73 Determine the target value according to an end point of the trajectory information
  • Step S74 Generate the adjustment instruction according to the time point and the target value.
  • the time point is determined according to the starting point of the trajectory information
  • the target value is determined according to the ending point of the trajectory information.
  • the time point and the target value can also be determined based on the end point of the trajectory information.
  • the start point and the end point of the trajectory information are acquired, the time point is determined according to the start point of the trajectory information, the target value is determined according to the end point of the trajectory information, and the adjustment command is generated according to the time point and the target value.
  • the user can adjust the adjustment parameters of the air conditioning device more quickly and accurately.
  • the present application also provides an air conditioning apparatus including an adjustment program of an air conditioner, the adjustment program of the air conditioner being configured to implement the air conditioner as described above for performing the air conditioner The steps of the adjustment method.
  • the embodiment of the present application further provides a computer readable storage medium, where the adjustment program of the air conditioner is stored, and the adjustment program of the air conditioner is executed by the processor to implement the air conditioner as described above.
  • the step of adjusting the air conditioner under the main body is performed.
  • the technical solution of the present application which is essential or contributes to the prior art, may be embodied in the form of a software product stored in a storage medium (such as ROM/RAM as described above). , a disk, an optical disk, including a number of instructions for causing a terminal device (which may be a television, a mobile phone, a computer, a server, an air conditioner, or a network device, etc.) to perform the methods described in the various embodiments of the present application.
  • a terminal device which may be a television, a mobile phone, a computer, a server, an air conditioner, or a network device, etc.

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Abstract

一种空气调节器的调节方法、调节装置以及计算机可读存储介质,该调节方法包括:在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值(S10);根据所述时间点以及所述第一目标值更新所述第一空气调节参数变化曲线,以根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行(S20)。

Description

空气调节器的调节方法、装置以及存储介质
本申请要求于2017年12月13日提交中国专利局、申请号为201711347759.7、发明名称为“空气调节器的调节方法、装置以及存储介质”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及空气调节器技术领域,尤其涉及一种空气调节器的调节方法、空气调节器的调节装置以及计算机可读存储介质。
背景技术
现有的空气调节装置中,用户通过遥控器实现对目标温度、目标湿度等参数的设定。但是,这样的调节方式使用户很难直观地比较参数的设定趋势,并且在升高或者降低参数时,需要用户不停地按压调节键,调节起来也比较麻烦。
发明内容
本申请的主要目的在于提供一种空气调节器的调节方法、空气调节器的调节装置以及计算机可读存储介质,旨在实现更加快捷、准确地对空气调节装置的调节参数进行调节。
为实现上述目的,本申请提供一种空气调节器的调节方法,所述空气调节器的调节方法包括以下步骤:
在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值;
根据所述时间点以及所述第一目标值更新所述第一空气调节参数变化曲线,以根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行。
可选地,所述根据所述时间点以及所述目标值更新所述第一空气调节参数变化曲线之后,还包括:
判断所述第一空气调节参数变化曲线是否有关联的第二空气调节参数变化曲线,所述空气调节参数为多个,各个空气调节参数之间的空气调节参数变化曲线关联;
在有关联的所述第二空气调节参数变化曲线时,根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线。
可选地,所述在有关联的所述第二空气调节参数变化曲线与所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤之间,还包括:
判断所述第二空气调节参数变化曲线对应的空气调节参数是否设置为待调节参数;
在所述第二空气调节参数变化曲线对应的空气调节参数为所述待调节参数时,执行所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤。
可选地,所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线之前,还包括:
获取所述第二空气调节参数变化曲线中所述时间点对应的第二目标值;
根据所述第一目标值以及所述第二目标值计算舒适度参数;
若所述舒适度参数不在预设舒适范围内,输出是否调节所述第二空气调节参数变化曲线的提示信息;
在接收到确认指令时,执行所述根据所述时间点以及所述目标值更新关联的所述第二空气调节参数变化曲线的步骤。
可选地,所述根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行之后,还包括:
在检测到关机指令时,存储更新后的所述第一空气调节参数变化曲线,以在下次开机时,根据存储的所述第一空气调节参数变化曲线控制所述空气调节器运行。
可选地,所述检测到针对第一空气调节参数变化曲线触发的调节指令之前,还包括:
在检测到针对所述第一空气调节参数变化曲线的触摸操作时,获取所述触摸操作对应的轨迹信息;
根据所述轨迹信息,生成所述调节指令。
可选地,所述检测针对所述第一空气调节参数变化曲线的触摸操作与所述获取所述触摸操作对应的轨迹信息的步骤之间,还包括:
判断所述触摸操作是否针对所述第一空气调节参数变化曲线上的可调节点进行的操作;
在所述触摸操作是针对所述第一空气调节参数变化曲线上的可调节点进行的操作时,则执行获取所述触摸操作对应的轨迹信息的步骤。
可选地,所述检测针对所述第一空气调节参数变化曲线的触摸操作的步骤包括:
在检测到所述触摸操作时,输出所述触摸操作对应的所述时间点以及所述目标值。
可选地,所述根据所述轨迹信息,生成所述调节指令的步骤包括:
获取所述轨迹信息的起始点以及结束点;
根据所述轨迹信息的起始点,确定所述时间点;
根据所述轨迹信息的结束点,确定所述目标值;
根据所述时间点以及所述目标值,生成所述调节指令。
为实现上述目的,本申请还提供一种空气调节器的调节装置,所述空气调节器的调节装置包括:
存储器、处理器及存储在所述存储器上并可在所述处理器上运行的空气调节器的调节程序,所述空气调节器的调节程序被所述处理器执行时实现上述空气调节器的调节方法的步骤。
为实现上述目的,本申请还提供一种计算机可读存储介质,所述计算机可读存储介质上存储有空气调节器的调节程序,所述空气调节器的调节程序被处理器执行时实现上述空气调节器的调节方法的步骤。
本申请提供的空气调节器的调节方法、空气调节器的调节装置以及计算机可读存储介质,在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取调节指令对应的时间点以及所述调节指令对应的第一目标值,并根据时间点以及第一目标值更新第一空气调节参数变化曲线,以根据更新后的第一空气调节参数变化曲线控制空气调节器运行。本申请实现更加快捷、准确地对空气调节装置的调节参数进行调节。
附图说明
图1为本申请实施例方案涉及的终端的硬件运行环境示意图;
图2为本申请空气调节器的调节方法第一实施例的流程示意图;
图3为本申请空气调节器的调节方法第二实施例的流程示意图;
图4为本申请空气调节器的调节方法第三实施例的流程示意图;
图5为本申请空气调节器的调节方法第四实施例的流程示意图;
图6为本申请空气调节器的调节方法第五实施例的流程示意图;
图7为本申请空气调节器的调节方法第六实施例的流程示意图;
图8为本申请空气调节器的调节方法第七实施例的流程示意图;
图9为本申请中检测针对第一空气调节参数变化曲线的触摸操作的细化流程示意图;
图10为本申请中根据轨迹信息,生成调节指令的细化流程示意图。
本申请目的的实现、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申请,并不用于限定本申请。
本申请提供一种空气调节器的调节方法,实现更加快捷、准确地对空气调节器的调节参数进行调节。
如图1所示,图1是本申请实施例方案涉及的终端的硬件运行环境示意图。
本申请实施例终端可以是空气调节器、空调器、空气净化器等空气调节装置。
如图1所示,该终端可以包括:处理器1001,例如CPU,网络接口1004,用户接口1003,存储器1005,通信总线1002。其中,通信总线1002用于实现这些组件之间的连接通信。用户接口1003可以包括显示屏(Display)、输入单元比如键盘(Keyboard),可选用户接口1003还可以包括标准的有线接口、无线接口。网络接口1004可选的可以包括标准的有线接口、无线接口(如存储器(non-volatile memory),例如磁盘存储器。存储器1005可选的还可以是独立于前述处理器1001的存储装置。
本领域技术人员可以理解,图1中示出的终端的结构并不构成对终端的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。
如图1所示,作为一种计算机存储介质的存储器1005中可以包括操作系统、网络通信模块、用户接口模块以及空气调节器的调节程序。
在图1所示的终端中,网络接口1004主要用于连接后台服务器,与后台服务器进行数据通信;用户接口1003主要用于连接客户端(用户端),与客户端进行数据通信;而处理器1001可以用于调用存储器1005中存储的空气调节器的调节程序,并执行以下操作:
在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值;
根据所述时间点以及所述第一目标值更新所述第一空气调节参数变化曲线,以根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
判断所述第一空气调节参数变化曲线是否有关联的第二空气调节参数变化曲线,所述空气调节参数为多个,各个空气调节参数之间的空气调节参数变化曲线关联;
在有关联的所述第二空气调节参数变化曲线时,根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
判断所述第二空气调节参数变化曲线对应的空气调节参数是否设置为待调节参数;
在所述第二空气调节参数变化曲线对应的空气调节参数为所述待调节参数时,执行所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
获取所述第二空气调节参数变化曲线中所述时间点对应的第二目标值;
根据所述第一目标值以及所述第二目标值计算舒适度参数;
若所述舒适度参数不在预设舒适范围内,输出是否调节所述第二空气调节参数变化曲线的提示信息;
在接收到确认指令时,执行所述根据所述时间点以及所述目标值更新关联的所述第二空气调节参数变化曲线的步骤。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
在检测到关机指令时,存储更新后的所述第一空气调节参数变化曲线,以在下次开机时,根据存储的所述第一空气调节参数变化曲线控制所述空气调节器运行。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
在检测到针对所述第一空气调节参数变化曲线的触摸操作时,获取所述触摸操作对应的轨迹信息;
根据所述轨迹信息,生成所述调节指令。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
判断所述触摸操作是否针对所述第一空气调节参数变化曲线上的可调节点进行的操作;
在所述触摸操作是针对所述第一空气调节参数变化曲线上的可调节点进行的操作时,则执行获取所述触摸操作对应的轨迹信息的步骤。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
在检测到所述触摸操作时,输出所述触摸操作对应的所述时间点以及所述目标值。
进一步地,处理器1001可以调用存储器1005中存储的空气调节器的调节程序,还执行以下操作:
获取所述轨迹信息的起始点以及结束点;
根据所述轨迹信息的起始点,确定所述时间点;
根据所述轨迹信息的结束点,确定所述目标值;
根据所述时间点以及所述目标值,生成所述调节指令。
参照图2,在第一实施例中,所述空气调节器的调节方法包括:
步骤S10、在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值;
本实施例中,调节指令包括用户选择的调节功能以及该调节功能下的具体调节参数。空气调节器有温度、湿度、风速、洁净度以及新鲜度五种调节功能,每一种调节功能有相应的空气调节参数变化曲线,用户通过空气调节参数变化曲线上进行触发操作,从而生成调节指令。具体地,空气调节器的显示屏上或者与空气调节器连接的移动终端APP的显示界面上显示各个调节功能的空气调节参数变化曲线,用户可以通过空气调节器的显示屏发送调节指令,也可以通过与空气调节器连接的移动终端发送调节指令。
需要说明的是,洁净度主要根据挥发性有机化合物与PM2.5的含量进行判断,而新鲜度主要根据室内氧气与二氧化碳的含量进行判断。用户可以开启全部的调节功能,也可以只开启其中几种调节功能。在用户开启某一调节功能时,空气调节器会根据环境当前的温度、湿度、洁净度以及新鲜度等参数,自动输出与环境参数相匹配的空气调节参数变化曲线。比如,在用户开启洁净度模式时,空气调节器根据环境当前的洁净度,自动输出洁净度变化曲线,以控制空气调节器运行。并且,在空气调节器输出空气调节参数变化曲线时,一并输出提示信息,其中,提示信息可以是运行该空气调节参数变化曲线带来的效果。
具体地,空气调节参数变化曲线的横坐标为时间,纵坐标为曲线相应的调节功能的具体参数。用户通过上提曲线或者下拉曲线,实现调节功能的具体参数的增大或者减小。比如,在温度变化曲线界面,用户在2h处将曲线上提2℃,即在空气调节器运行的第二小时,目标温度为在空气调节器输出的目标温度的基础上升高2℃。
步骤S20、根据所述时间点以及所述第一目标值更新所述第一空气调节参数变化曲线,以根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行。
本实施例中,由于温度、湿度以及风速是相互关联的,一般来说,在不同的湿度下,用户对温度的感受是不一样的。比如北方的冬季较为干燥,南方的冬季较为湿润,在同样的温度下,南方的寒冷感受更加强烈;同样的,不同的风速下,用户对温度的感受也是不一样的。比如风速较高的暖风就比风速较低的暖风带来的温暖感觉更加强烈。因此,在第一空气调节参数变化曲线为温度、湿度或者风速的调节参数变化曲线时,不仅根据调节指令单一地调节温度、湿度或者风速的调节参数变化曲线,还要判断是否综合调节温度、湿度以及风速的调节参数变化曲线。
需要说明的是,由于洁净度与新鲜度不是联动参数,因此可独立进行调节。
在第一实施例中,在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取调节指令对应的时间点以及调节指令对应的第一目标值,并根据时间点以及第一目标值更新第一空气调节参数变化曲线,以根据更新后的第一空气调节参数变化曲线控制空气调节器运行。这样,实现更加快捷、准确地对空气调节装置的调节参数进行调节。
在第二实施例中,如图3所示,在上述图2所示的实施例基础上,所述根据所述时间点以及所述目标值更新所述第一空气调节参数变化曲线之后,还包括:
步骤S30、判断所述第一空气调节参数变化曲线是否有关联的第二空气调节参数变化曲线,所述空气调节参数为多个,各个空气调节参数之间的空气调节参数变化曲线关联;
步骤S40、在有关联的所述第二空气调节参数变化曲线时,根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线。
本实施例中,温度、湿度、风速是相互关联的。一般来说,在不同的湿度下,用户对温度的感受是不一样的,比如北方的冬季较为干燥,南方的冬季较为湿润,在同样的温度下,南方的寒冷感受更加强烈;同样的,不同的风速下,用户对温度的感受也是不一样的,比如风速较高的暖风就比风速较低的暖风带来的温暖感觉更加强烈。因此,在第一空气调节参数变化曲线为温度、湿度或者风速的调节曲线时,不仅根据第一空气调节参数变化曲线调节第一空气调节参数,还要根据第一空气调节参数变化曲线的变化,看是否调节与第一空气调节参数关联的第二空气调节参数。也就是说,在第一空气调节参数变化曲线为温度、湿度或者风速的调节参数变化曲线时,不仅根据调节指令单一地调节温度、湿度或者风速的调节参数变化曲线,还要判断是否综合调节温度、湿度以及风速的调节参数变化曲线。
本实施例中,第二空气调节参数应处于开启状态,即在第一空气调节参数变化曲线有关联的第二空气调节参数变化曲线时,但是第二空气调节参数并未在开启状态,则不更新第二空气调节参数变化曲线。
在第二实施例中,判断第一空气调节参数变化曲线是否有关联的第二空气调节参数变化曲线,在有关联的第二空气调节参数变化曲线时,根据时间点以及第一目标值更新关联的第二空气调节参数变化曲线。这样,综合调节温度、湿度以及风速的调节参数变化曲线,为用户带来更加全面、舒适的体验。
在第三实施例中,如图4所示,在上述图2至图3任一项所示的实施例基础上,所述在有关联的所述第二空气调节参数变化曲线与所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤之间,还包括:
步骤S41、判断所述第二空气调节参数变化曲线对应的空气调节参数是否设置为待调节参数;
步骤S42、在所述第二空气调节参数变化曲线对应的空气调节参数为所述待调节参数时,执行所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤。
本实施例中,判断第二空气调节参数是否处于开启状态,在第二空气调节参数处于开启状态时,则判定为待调节参数。
比如,在用户调节温度变化曲线时,若用户没有开启湿度功能,那么只相应调节与温度相关联的风速变化曲线。
在第三实施例中,判断第二空气调节参数变化曲线对应的空气调节参数是否设置为待调节参数,在第二空气调节参数变化曲线对应的空气调节参数为待调节参数时,根据时间点以及第一目标值更新关联的第二空气调节参数变化曲线。这样,综合调节温度、湿度以及风速的调节参数变化曲线,为用户带来更加全面、舒适的体验。
在第四实施例中,如图5所示,在上述图2至图4任一项所示的实施例基础上,所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线之前,还包括:
步骤S43、获取所述第二空气调节参数变化曲线中所述时间点对应的第二目标值;
步骤S44、根据所述第一目标值以及所述第二目标值计算舒适度参数;
步骤S45、若所述舒适度参数不在预设舒适范围内,输出是否调节所述第二空气调节参数变化曲线的提示信息;
步骤S46、判断是否接收到确认指令;
步骤S47、在接收到所述确认指令时,执行所述根据所述时间点以及所述目标值更新关联的所述第二空气调节参数变化曲线的步骤。
本实施例中,温度、湿度、风速是相互关联的,在第一空气调节参数变化曲线为温度、湿度或者风速的调节参数变化曲线时,不仅根据调节指令单一地调节温度、湿度或者风速的调节参数变化曲线,还要判断是否综合调节温度、湿度以及风速的调节参数变化曲线。
用户调节第一空气调节参数变化曲线中某一时间点的第一目标值时,若第一空气调节参数变化曲线有关联的第二空气调节参数变化曲线,且第二空气调节参数变化曲线处于开启状态时,获取第二空气调节参数变化曲线中相同时间点的第二目标值,并根据第一目标值以及第二目标值计算舒适度参数。
通过判断舒适度参数是否在预设舒适范围内,从而确定是否调节第二空气调节参数变化曲线。其中,预设舒适范围是预先设置的舒适范围,其是由大量试验统计得到的范围。若舒适度参数不在预设舒适范围内,则输出提示信息询问用户是否调节第二空气调节参数变化曲线的提示信息。在接收到确认指令时,则空气调节器根据舒适度参数自动调节第二空气调节参数变化曲线;在预设时长内未接收到确认指令时,则不调节第二空气调节参数变化曲线,预设时长可以是一分钟。需要说明的是,第二空气调节参数变化曲线也可由用户手动调节。
下面以第一空气调节参数变化曲线为温度,第二空气调节参数变化曲线为湿度进行举例说明。需要说明的是,本实施例不限于这一种实施方式,仅为了方便描述,从而选取温度、湿度进行举例说明。
比如,用户通过温度变化曲线调节第三小时的目标温度时,空气调节器获取第三小时的目标湿度,根据目标温度以及目标湿度计算得到第三小时的舒适度参数。在舒适度参数超出预设舒适范围时,则输出提示信息询问用户是否调节湿度变化曲线的提示信息。在接收到确认指令时,则空气调节器根据舒适度参数自动调节湿度变化曲线中第三小时的目标湿度;在预设时长内未接收到确认指令时,则不调节湿度变化曲线。
在第四实施例中,获取第二空气调节参数变化曲线中时间点对应的第二目标值,并根据第一目标值以及第二目标值计算舒适度参数。若舒适度参数不在预设舒适范围内,输出是否调节第二空气调节参数变化曲线的提示信息,并在接收到确认指令时,根据时间点以及目标值更新关联的第二空气调节参数变化曲线。这样,在用户调节温度、湿度或者风速时,通过计算舒适度参数,从而为用户带来更加全面、舒适的体验。
在第五实施例中,如图6所示,在上述图2至图5任一项所示的实施例基础上,所述根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行之后,还包括:
步骤S50、在检测到关机指令时,存储更新后的所述第一空气调节参数变化曲线,以在下次开机时,根据存储的所述第一空气调节参数变化曲线控制所述空气调节器运行。
本实施例中,存储各个空气调节参数的调节参数变化曲线,以在下次开机运行时,根据用户偏好的调节参数变化曲线运行,避免用户再一次进行调节。
在第五实施例中,在检测到关机指令时,存储更新后的第一空气调节参数变化曲线,以在下次开机时,根据存储的第一空气调节参数变化曲线控制空气调节器运行。这样,记忆用户偏好的调节参数变化曲线,并在下次开机时,以用户偏好的调节参数变化曲线运行。
在第六实施例中,如图7所示,在上述图2至图6任一项所示的实施例基础上,所述检测到针对第一空气调节参数变化曲线触发的调节指令之前,还包括:
步骤S60、在检测到针对所述第一空气调节参数变化曲线的触摸操作时,获取所述触摸操作对应的轨迹信息;
步骤S70、根据所述轨迹信息,生成所述调节指令。
本实施例中,空气调节器的显示屏上或者与空气调节器连接的移动终端APP的显示界面上显示各个调节功能的空气调节参数变化曲线,用户可以通过空气调节器的显示屏发送调节指令,也可以通过与空气调节器连接的移动终端发送调节指令。
具体地,空气调节参数变化曲线的横坐标为时间,纵坐标为曲线相应的调节功能的具体参数。用户通过上提曲线或者下拉曲线,形成轨迹信息,根据轨迹信息的终点生成调节指令。其中,在检测到触摸操作停止,且静止时间大于预设时间时,则判定为轨迹信息的终点。其中,预设时间可以是5秒。
根据轨迹信息的终点的时间和目标值生成调节指令。比如,调节指令可以是:将第三小时的目标温度提高三度。
在第六实施例中,在检测到针对第一空气调节参数变化曲线的触摸操作时,获取触摸操作对应的轨迹信息,并根据轨迹信息,生成调节指令。这样,根据用户在空气调节参数变化曲线的触摸操作,即可生成调节指令,使用户更加快捷、准确地调节空气调节装置的调节参数。
在第七实施例中,如图8所示,在上述图2至图7任一项所示的实施例基础上,所述检测针对所述第一空气调节参数变化曲线的触摸操作与所述获取所述触摸操作对应的轨迹信息的步骤之间,还包括:
步骤S80、判断所述触摸操作是否针对所述第一空气调节参数变化曲线上的可调节点进行的操作;
步骤S90、在所述触摸操作是针对所述第一空气调节参数变化曲线上的可调节点进行的操作时,则执行获取所述触摸操作对应的轨迹信息的步骤。
本实施例中,空气调节参数变化曲线上存在可调节点,在检测到用户的触摸操作是针对可调节点进行的操作时,判定触摸操作的目的是生成调节指令,故获取该触摸操作对应的轨迹信息,以根据轨迹信息生成调节指令。
在第七实施例中,在触摸操作是针对第一空气调节参数变化曲线上的可调节点进行的操作时,则执行获取触摸操作对应的轨迹信息的步骤。这样,避免了用户的误触发。
在第八实施例中,如图9所示,在上述图2至图8任一项所示的实施例基础上,所述检测针对所述第一空气调节参数变化曲线的触摸操作的步骤包括:
步骤S61、在检测到所述触摸操作时,输出所述触摸操作对应的所述时间点以及所述目标值。
本实施例中,在空气调节参数变化曲线界面检测到触摸操作时,随着触摸操作的移动,实时显示触摸操作对应的坐标值,即触摸操作对应的时间点以及目标值。这方便了用户对调节参数进行设定,避免误操作。
在第八实施例中,在检测到触摸操作时,输出触摸操作对应的时间点以及目标值。这样,提高了用户对调节参数进行调节的精准度。
在第九实施例中,如图10所示,在上述图2至图9任一项所示的实施例基础上,所述根据所述轨迹信息,生成所述调节指令的步骤包括:
步骤S71、获取所述轨迹信息的起始点以及结束点;
步骤S72、根据所述轨迹信息的起始点,确定所述时间点;
步骤S73、根据所述轨迹信息的结束点,确定所述目标值;
步骤S74、根据所述时间点以及所述目标值,生成所述调节指令。
本实施例中,根据轨迹信息的起始点确定时间点,根据轨迹信息的结束点确定目标值。当然,也可以根据轨迹信息的结束点确定时间点和目标值。
在第九实施例中,获取轨迹信息的起始点以及结束点,根据轨迹信息的起始点确定时间点,根据轨迹信息的结束点确定目标值,根据时间点以及目标值,生成调节指令。这样,使用户更加快捷、准确地调节空气调节装置的调节参数。
本申请还提供一种空气调节装置,所述空气调节装置包括空气调节器的调节程序,所述空气调节器的调节程序配置为实现如上述空气调节器为执行主体下的所述空气调节器的调节方法的步骤。
本申请实施例还提供一种计算机可读存储介质,所述计算机可读存储介质上存储有空气调节器的调节程序,所述空气调节器的调节程序被处理器执行实现如上述空气调节器为执行主体下的所述空气调节器的调节方法的步骤。
上述本申请实施例序号仅仅为了描述,不代表实施例的优劣。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在如上所述的一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是电视机,手机,计算机,服务器,空调器,或者网络设备等)执行本申请各个实施例所述的方法。
以上仅为本申请的优选实施例,并非因此限制本申请的专利范围,凡是利用本申请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,均同理包括在本申请的专利保护范围内。

Claims (11)

  1. 一种空气调节器的调节方法,其中,所述空气调节器的调节方法包括以下步骤:
    检测针对第一空气调节参数变化曲线触发的调节指令,获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值;以及,
    根据所述时间点以及所述第一目标值更新所述第一空气调节参数变化曲线,以根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行。
  2. 如权利要求1所述的空气调节器的调节方法,其中,所述根据所述时间点以及所述目标值更新所述第一空气调节参数变化曲线之后,还包括:
    判断所述第一空气调节参数变化曲线是否有关联的第二空气调节参数变化曲线,所述空气调节参数为多个,各个空气调节参数之间的空气调节参数变化曲线关联;以及,
    在有关联的所述第二空气调节参数变化曲线时,根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线。
  3. 如权利要求2所述的空气调节器的调节方法,其中,所述在有关联的所述第二空气调节参数变化曲线与所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤之间,还包括:
    判断所述第二空气调节参数变化曲线对应的空气调节参数是否设置为待调节参数;以及,
    在所述第二空气调节参数变化曲线对应的空气调节参数为所述待调节参数时,执行所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线的步骤。
  4. 如权利要求3所述的空气调节器的调节方法,其中,所述根据所述时间点以及所述第一目标值更新关联的所述第二空气调节参数变化曲线之前,还包括:
    获取所述第二空气调节参数变化曲线中所述时间点对应的第二目标值;
    根据所述第一目标值以及所述第二目标值计算舒适度参数;
    若所述舒适度参数不在预设舒适范围内,输出是否调节所述第二空气调节参数变化曲线的提示信息;以及,
    在接收到确认指令时,执行所述根据所述时间点以及所述目标值更新关联的所述第二空气调节参数变化曲线的步骤。
  5. 如权利要求1所述的空气调节器的调节方法,其中,所述根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行之后,还包括:
    检测到关机指令,存储更新后的所述第一空气调节参数变化曲线,以在下次开机时,根据存储的所述第一空气调节参数变化曲线控制所述空气调节器运行。
  6. 如权利要求1所述的空气调节器的调节方法,其中,所述检测到针对第一空气调节参数变化曲线触发的调节指令之前,还包括:
    检测针对所述第一空气调节参数变化曲线的触摸操作,获取所述触摸操作对应的轨迹信息;以及,
    根据所述轨迹信息,生成所述调节指令。
  7. 如权利要求6所述的空气调节器的调节方法,其中,所述检测针对所述第一空气调节参数变化曲线的触摸操作与所述获取所述触摸操作对应的轨迹信息的步骤之间,还包括:
    判断所述触摸操作是否针对所述第一空气调节参数变化曲线上的可调节点进行的操作;以及,
    在所述触摸操作是针对所述第一空气调节参数变化曲线上的可调节点进行的操作时,则执行获取所述触摸操作对应的轨迹信息的步骤。
  8. 如权利要求6所述的空气调节器的调节方法,其中,所述检测针对所述第一空气调节参数变化曲线的触摸操作的步骤包括:
    检测到所述触摸操作,输出所述触摸操作对应的所述时间点以及所述目标值。
  9. 如权利要求6所述的空气调节器的调节方法,其中,所述根据所述轨迹信息,生成所述调节指令的步骤包括:
    获取所述轨迹信息的起始点以及结束点;
    根据所述轨迹信息的起始点,确定所述时间点;
    根据所述轨迹信息的结束点,确定所述目标值;以及,
    根据所述时间点以及所述目标值,生成所述调节指令。
  10. 一种空气调节装置,其中,所述空气调节装置包括换热系统、存储器、处理器以及与所述处理器连接的显示屏,其中:
    所述存储器,设置为存储所述调节指令对应的第一目标值;
    所述处理器,设置为获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值;
    所述显示屏,设置为显示所述第一空气调节参数变化曲线;
    所述处理器,还设置为根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行。
  11. 一种计算机可读存储介质,其中,所述计算机可读存储介质上存储有空气调节器的调节程序,所述空气调节器的调节程序被处理器执行时实现以下所述的空气调节器的调节方法的步骤:
    在检测到针对第一空气调节参数变化曲线触发的调节指令时,获取所述调节指令对应的时间点以及所述调节指令对应的第一目标值;以及,
    根据所述时间点以及所述第一目标值更新所述第一空气调节参数变化曲线,以根据更新后的所述第一空气调节参数变化曲线控制所述空气调节器运行。
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