Control method and device of air conditioner wire controller, equipment and storage medium

By adjusting brightness and linkage control in real time through a concealed air conditioner wired controller, the difficulty of viewing controller parameters at night is solved, enabling convenient operation in low-light environments and improving the user experience.

CN120926560APending Publication Date: 2025-11-11GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202511236290.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-01
Publication Date
2025-11-11

AI Technical Summary

Technical Problem

Existing concealed air conditioner/ductless air conditioner wired controllers require additional lighting for nighttime use, resulting in a poor user experience.

Method used

By acquiring the ambient light intensity of the wired controller, the controller is controlled to display lights at an appropriate brightness. The brightness is adjusted according to the light intensity, and multiple wired controllers are linked to display air conditioning operating parameters, thus avoiding the use of additional lighting equipment.

Benefits of technology

The controller automatically adjusts its brightness in low-light environments, providing a convenient operating experience, reducing reliance on additional lighting, and enhancing user convenience at night.

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Abstract

The invention relates to a control method and device for an air conditioner wire controller, equipment and a storage medium, and the method comprises the steps that the first light intensity of the environment where a first wire controller is located at the current moment is obtained, and under the condition that the first light intensity is lower than a first preset threshold value, the first wire controller is controlled to present a first display state at first brightness; continuously acquiring second light intensity of the environment where the first wire controller is located, and determining a preset intensity range in which the second light intensity falls; the first brightness is adjusted so that the brightness of the first wire controller can be matched with the brightness corresponding to the preset intensity range, the brightness of the first wire controller is continuously adjusted to the preset maximum value, and the brightness required to be displayed by the first wire controller corresponding to different preset intensity ranges is different; and under the condition that the movement track of the target object is detected, performing linkage control on one or more second wire controllers associated with the movement track, so that the one or more second wire controllers are in a second display state.
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Description

Technical Field

[0001] This application relates to the field of wired controller control, and more particularly to a control method, apparatus, device and storage medium for an air conditioner wired controller. Background Technology

[0002] Existing concealed air conditioner / ductless air conditioner wired controllers typically only have basic temperature adjustment and mode switching functions, lacking user-friendly design. Especially when used at night, users often need additional lighting to view the information displayed on the wired controller or for illumination, which may cause inconvenience during nighttime use.

[0003] There is currently no effective solution to the aforementioned technical problems in the existing technology. Summary of the Invention

[0004] This application provides a control method, apparatus, device, and storage medium for an air conditioner wired controller, to solve the problem in the prior art that the wired controller requires additional lighting equipment to be viewed when used at night, resulting in a poor user experience.

[0005] In a first aspect, this application provides a control method for an air conditioner wired controller, comprising: acquiring a first light intensity of the environment in which the first wired controller is located at a current moment; when the first light intensity is lower than a first preset threshold, controlling the first wired controller to present a first display state with a first brightness; wherein, the first display state is that the first wired controller only displays a light; continuously acquiring a second light intensity of the environment in which the first wired controller is located, and determining a preset intensity range into which the second light intensity falls; adjusting the first brightness to match the brightness of the first wired controller with the brightness corresponding to the preset intensity range, and continuously adjusting the brightness of the first wired controller to a preset maximum value, wherein the required brightness of the first wired controller is different for different preset intensity ranges; and, when the movement trajectory of a target object is detected, performing linkage control on one or more second wired controllers associated with the movement trajectory to make the one or more second wired controllers present a second display state, wherein, the second display state is that the one or more second wired controllers are lit up and display the corresponding air conditioner operating parameters.

[0006] Optionally, adjusting the first brightness to match the brightness of the first wired controller with the brightness corresponding to the preset intensity range includes: determining a corresponding calculation formula based on the preset intensity range; substituting the maximum brightness value, minimum brightness value of the first wired controller, and the maximum and minimum values ​​of the preset intensity range into the calculation formula to obtain a second brightness; and adjusting the current first brightness of the first wired controller to the second brightness.

[0007] Optionally, continuously adjusting the brightness of the first wired controller to a preset maximum value includes: determining the photosensitivity adaptation time of the target object; gradually increasing the brightness of the first wired controller from the current moment until the duration used is the photosensitivity adaptation time, and then adjusting the brightness of the first wired controller to the preset maximum value.

[0008] Optionally, the one or more second wired controllers associated with the activity trajectory are linked for control so that the one or more second wired controllers present a second display state, including: from the start position to the end position of the activity trajectory, sequentially controlling the second wired controllers that are less than a preset distance from the activity trajectory to present a second display state; determining the display duration of the one or more second wired controllers based on a first parameter associated with the activity trajectory, the height of the target object, the dwell time of the target object, and a preset delay timeout.

[0009] Optionally, the display duration of the one or more second wire controllers is determined based on a first parameter associated with the activity trajectory, the height coefficient of the target object, the dwell time of the target object, and a preset delay timeout, including: determining the distance between the first and last activated second wire controllers from the first parameter, determining the product between the driving speed of the target object and the height coefficient, and determining the walking time of the target object by the distance and the product result; and determining the display duration of the one or more second wire controllers as the sum of twice the walking time, the dwell time, and the preset delay timeout.

[0010] Optionally, after determining the display duration of the one or more second wired controllers, the method further includes: turning off the display after a first duration of the operating parameters displayed by the one or more second wired controllers; or displaying the operating parameters for a second duration before the end of the display duration on the one or more second wired controllers.

[0011] Optionally, the method further includes: when the target object is detected to have an activity trajectory, controlling a plurality of pre-associated third wired controllers to present a third display state, wherein the third display state is that the screens of the one or more second wired controllers are lit up and the corresponding air conditioner's operating parameters are displayed.

[0012] Secondly, this application provides a control device for an air conditioner remote controller, comprising: a first processing module, configured to acquire a first light intensity of the environment in which the first remote controller is located at a current moment, and control the first remote controller to present a first display state with a first brightness when the first light intensity is lower than a first preset threshold; wherein, the first display state is that the first remote controller only displays a light; a second processing module, configured to continuously acquire a second light intensity of the environment in which the first remote controller is located, and determine a preset intensity range into which the second light intensity falls; a third processing module, configured to adjust the first brightness so that the brightness of the first remote controller matches the brightness corresponding to the preset intensity range, and continuously adjust the brightness of the first remote controller to a preset maximum value, wherein, the brightness required for the first remote controller to display is different for different preset intensity ranges; and a first control module, configured to, when detecting the activity trajectory of a target object, perform linkage control on one or more second remote controllers associated with the activity trajectory so that the one or more second remote controllers present a second display state, wherein, the second display state is that the one or more second remote controllers are lit up and display the corresponding air conditioner operating parameters.

[0013] Thirdly, this application provides a device comprising: at least one communication interface; at least one bus connected to the at least one communication interface; at least one processor connected to the at least one bus; and at least one memory connected to the at least one bus, wherein the processor is configured to execute the control method of the air conditioner wired controller described in the first aspect of this application.

[0014] Fourthly, this application also provides a computer storage medium storing computer-executable instructions for executing the control method of the air conditioner wired controller described in the first aspect of this application.

[0015] Compared with the prior art, the technical solution provided in this application has the following advantages: In this application embodiment, when the light intensity of the environment in which the first wired controller is located is low, the first wired controller can be controlled to present a first display state with a first brightness. Subsequently, the display brightness of the first wired controller can be continuously adjusted in real time according to changes in the current light intensity to avoid the first wired controller being too dim or too bright. Furthermore, one or more second wired controllers can be linked and controlled according to the movement trajectory of the target object. This is because when a user is active, they may need to control multiple wired controllers, or multiple wired controllers may be needed to assist the target object's movement. Therefore, in this application embodiment, the brightness of the wired controller can be adjusted in real time according to the current light intensity, without the need for additional lighting equipment to assist in viewing. In addition, multiple wired controllers can be linked and controlled according to the movement trajectory of the target object, making it convenient for the user to control these multiple wired controllers, or for these multiple wired controllers to assist the user's movement in low-light conditions. Attached Figure Description

[0016] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with the invention and, together with the description, serve to explain the principles of the invention.

[0017] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.

[0019] Figure 1 A flowchart illustrating a control method for an air conditioner wired controller provided in this application embodiment;

[0020] Figure 2 A flowchart illustrating a control method for a wired controller with a night light mode, provided as an embodiment of this application;

[0021] Figure 3 This is a schematic diagram showing the location of the wired controller in a home environment according to an embodiment of this application;

[0022] Figure 4 This application provides a schematic diagram of the structure of a control device for an air conditioner wired controller.

[0023] Figure 5This is a schematic diagram of the structure of a device provided in an embodiment of this application. Detailed Implementation

[0024] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0025] The following disclosure provides numerous different embodiments or examples for implementing various structures of the invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.

[0026] To address the issue that existing wired controllers require additional lighting for nighttime use, resulting in a poor user experience, this application provides a control method for an air conditioner wired controller, such as... Figure 1 As shown, the steps of this method include:

[0027] Step 101: Obtain the first light intensity of the environment where the first wired controller is located at the current moment. If the first light intensity is lower than the first preset threshold, control the first wired controller to present a first display state with a first brightness. The first display state is that the first wired controller only displays the light.

[0028] In this embodiment, the first wired controller is any one of multiple wired controllers in the current environment. That is, the wired controller can determine its own display brightness based on the ambient light intensity. The first display state is when the first wired controller only displays a light, indicating that at this time, the first wired controller merely adjusts the brightness according to the environment and does not involve controlling the wired controller. Therefore, displaying only a light without showing the corresponding air conditioner's operating parameters not only saves energy but also illuminates the surrounding environment in low light conditions and helps determine the location of the wired controller.

[0029] Step 102: Continuously acquire the second light intensity of the environment where the first wired controller is located, and determine the preset intensity range into which the second light intensity falls;

[0030] Step 103: Adjust the first brightness to match the brightness of the first wired controller with the brightness corresponding to the preset intensity range, and continuously adjust the brightness of the first wired controller to the preset maximum value. The required brightness of the first wired controller is different for different preset intensity ranges.

[0031] As can be seen, in this embodiment, after the first wired controller presents itself in the first display state with a first brightness, the brightness can be continuously adjusted according to the current light intensity. This is because the light intensity may change over time, so the brightness of the first wired controller must adapt to the current light intensity to avoid the light being too strong or too dim. Furthermore, the preset maximum value refers to the maximum value under the current light intensity; that is, this maximum value is also adapted to the current light intensity. Because humans have an adaptation process to light, the adaptation time varies under different light intensities. The brightness of the wired controller can be gradually adjusted based on this adaptation time to ensure that the brightness of the wired controller is optimal under the current light intensity.

[0032] Step 104: Upon detecting the activity trajectory of the target object, the system performs linkage control on one or more second wired controllers associated with the activity trajectory to cause one or more second wired controllers to present a second display state, wherein the second display state is that one or more second wired controllers are lit up and display the corresponding air conditioner's operating parameters.

[0033] It should be noted that the one or more second wired controllers may or may not include the first wired controller. The activity trajectory allows for real-time monitoring of the target object's status. Therefore, in low-light conditions, such as at night, after the user wakes up, the brightness of the nearest second wired controller can be controlled via the activity trajectory. In this case, not only does the second wired controller need to be illuminated, but it also needs to display the corresponding operating parameters. This is because the target object is typically active at night and is likely to need to adjust the air conditioning. Therefore, displaying the air conditioning's operating parameters while the screen is illuminated allows the target object to easily adjust the air conditioning via the wired controller.

[0034] Through steps 101 to 104 above, when the ambient light intensity of the first wired controller is low, it can be controlled to display at a first brightness level. Subsequently, the brightness of the first wired controller can be continuously adjusted in real time according to changes in the current light intensity to avoid it being too dim or too bright. Furthermore, one or more second wired controllers can be linked and controlled based on the movement trajectory of the target object. This is because a user may need to control multiple wired controllers or have multiple wired controllers assist the target object's movement. Therefore, in this embodiment, the wired controllers can adjust their brightness in real time according to the current light intensity, eliminating the need for additional lighting equipment for viewing. Moreover, multiple wired controllers can be linked and controlled based on the movement trajectory of the target object, facilitating user control of these multiple controllers or allowing them to assist the user's movement in low-light conditions.

[0035] In this application embodiment, the method of adjusting the first brightness in step 103 to match the brightness of the first wired controller with the brightness corresponding to the preset intensity range can further include:

[0036] Step 11: Determine the corresponding calculation formula based on the preset strength range;

[0037] Step 12: Substitute the maximum brightness value, minimum brightness value, and the maximum and minimum values ​​of the preset intensity range of the first wired controller into the calculation formula to obtain the second brightness;

[0038] Step 13: Adjust the current first brightness of the first wired controller to the second brightness.

[0039] For steps 11 to 13, in a specific example, the brightness range of the night light on the wired controller screen can be from Lmin (minimum brightness value) to Lmax (maximum brightness value); a linear correspondence is obtained by combining the brightness of the night light screen on the wired controller and the room brightness detection into three regions, which is used to adjust the brightness of the night light and avoid the problem of glare at night: complete darkness (I < I1), semi-dark area (I1 ≤ I ≤ I2) and bright area (I2 < I < preset value (I3));

[0040] L(I)=Lmin+(Lmax-Lmin) / I1*II<I1 (Formula 1)

[0041] L(I)=Lmax-(Lmax-lmin) / (I2-I1)*(I-I1) (Formula 2)

[0042] L(I)=Lmin-(Lmax-lmin) / (I3-I1)*(I-I2) (Formula 3)

[0043] Wherein, L(I) represents the second brightness; furthermore, the preset intensity range corresponding to Formula 1 is: I < I1, the preset intensity range corresponding to Formula 2 is: I1 ≤ I ≤ I2, and the preset intensity range corresponding to Formula 3 is: I2 ≤ I ≤ I3. It can be seen that in this embodiment, the calculation formulas include Formula 1, Formula 2, and Formula 3. Different preset intensity ranges are matched with different formulas to calculate the corresponding second brightness, and finally, the first brightness is adjusted to the second brightness, thereby enabling the first wired controller to adjust according to changes in light intensity to adapt to the needs of different environments.

[0044] In this embodiment of the application, the method of continuously adjusting the brightness of the first wired controller to a preset maximum value in step 103 above may further include:

[0045] Step 21: Determine the photosensitivity adaptation time of the target object;

[0046] Step 22: Gradually increase the brightness of the first wired controller from the current moment until the duration of the photosensitive adaptation time is reached, then adjust the brightness of the first wired controller to the preset maximum value.

[0047] In a specific example, the sensor adaptation time can be set according to different age, gender, and occupation requirements. For example, the sensor adaptation time for object A is 5 seconds, and the sensor adaptation time for object B is 6 seconds. In other words, the preset maximum value refers to the optimal display brightness of the first wired controller under the current light intensity. This brightness is neither too dim nor too glaring, nor will it affect the user's rest.

[0048] In this embodiment of the application, the method of linking and controlling one or more second wire controllers associated with the activity trajectory in step 104 above, so that one or more second wire controllers present a second display state, may further include:

[0049] Step 31: From the starting position to the ending position of the activity trajectory, the second wire controller, which is less than a preset distance from the activity trajectory, is sequentially controlled to display the second display state.

[0050] Step 32: Determine the display duration of one or more second wired controllers based on the first parameter associated with the activity trajectory, the height coefficient of the target object, the dwell time of the target object, and the preset delay extinguishing time.

[0051] As can be seen, in this embodiment, the wired controllers are controlled sequentially according to the target object's activity trajectory. For example, if the target object walks from the bedroom to the kitchen, it will pass through three wired controllers in sequence: the bedroom controller, the living room controller, and the kitchen controller. These three controllers are controlled sequentially to present the second display state. Other wired controllers not involved do not need to be controlled to present the second display state. Furthermore, the display duration of the second wired controller can be determined based on a first parameter associated with the activity trajectory, the target object's height, the target object's dwell time, and a preset delay timeout period. This display duration refers to the duration of the second display state. After the user's activity ends, the wired controller can automatically adjust its brightness according to the current light intensity and present the first display state.

[0052] The method of determining the display duration of one or more second wired controllers based on the first parameter associated with the activity trajectory, the height of the target object, the dwell time of the target object, and the preset delay time in step 32 above can further include:

[0053] Step 41: Determine the distance between the first and last activated second drive controllers from the first parameters, determine the product between the target object's driving speed and height coefficient, and determine the target object's walking time by combining the distance and the product result.

[0054] Step 42: The sum of twice the walking time, the dwell time, and the preset delay time is determined as the display duration of one or more second wired controllers.

[0055] In a specific example, the display duration for steps 41 and 42 can be determined using the following formula:

[0056] walk = D / (V * H)

[0057] Tc = 2 * Twalk + Ta + Tb

[0058] Where Twalk is the user's walking time, D is the distance between the first and last night light modes on the user's home remote controller, V is the user's walking speed, such as 1m / s, H is the user's set value (height coefficient), and people of different heights have different walking speeds, Tc is the display duration, Ta is the dwell time, and Tb is the delay time to turn off (the minimum extension time after turning on).

[0059] Specifically, in a specific example, the height coefficient can be 0.8 for those under 1m, 0.9 for those between 1m and 1.3m, 1 for those between 1.3m and 1.7m, and 1.1 for those over 1.7m.

[0060] Furthermore, after determining the display duration of one or more second wired controllers, to save power, after one or more second wired controllers present the second display state, it is not necessary to display the air conditioner's operating parameters for the entire duration of the display. Since the target object is active, it is only necessary to display them for a certain period, such as when the second display state is first presented, or during the last period of the display duration. These two times are when users may need to check the air conditioner's operating parameters most frequently. Therefore, displaying the air conditioner's operating parameters on the wired controller during these two periods not only meets the user's needs but also saves power.

[0061] Based on this, the method in this application embodiment further includes: turning off the display of the operating parameters displayed by one or more second wired controllers after a first duration; or, displaying the operating parameters displayed by one or more second wired controllers for a second duration before the end of the display duration.

[0062] In this specific example, if the display duration is 30 seconds, the air conditioner's operating parameters can be displayed on the controller for the first 10 seconds (first duration), or for the last 10 seconds (second duration) of the actual duration.

[0063] In this embodiment, wire controllers with associated relationships can also be pre-associated. That is, as long as one of them detects the movement trajectory of the target object, the multiple pre-associated third wire controllers can simultaneously present the same state. Based on this, the method in this embodiment further includes:

[0064] Step 51: When the target object is detected to have an activity trajectory, control multiple pre-associated third wired controllers to present a third display state, wherein one or more second wired controllers are lit up and display the corresponding air conditioner's operating parameters.

[0065] In a specific example, if the currently associated wired controllers are located in both the child's bedroom and the adult's bedroom, when an adult in the adult's bedroom hears a sound from the child's bedroom while sleeping, the user in the adult's bedroom gets up. This is detected by the third wired controller, which then activates the third wired controller mode based on the light and displays it in the third display state. At this time, the third wired controller in the adult's bedroom synchronizes the information to the third wired controller in the child's bedroom, which also displays in the third display state, thus facilitating the adult's viewing of the child's bedroom.

[0066] The present application will be explained and described below with reference to specific embodiments of the present application. These specific embodiments provide a control method for a wired remote control with a night light mode, such as... Figure 2 As shown, the steps of this method include:

[0067] Step 201: Determine if the night light on the wired controller meets the conditions for turning on. If yes, proceed to step 202; otherwise, the process ends.

[0068] Step 202: The room's wired controller turns on the night light, and the night light brightness automatically adjusts;

[0069] Step 203: Link other room wired controllers / centralized controllers to turn on the night lights;

[0070] Step 204: Determine the duration for which the night light will remain on;

[0071] Step 205: Based on the continuous lighting time, turn off the night light function of the wired controller / central controller.

[0072] For steps 201 to 205 above, combined with Figure 3 Further explanation is required, such as Figure 3 As shown, the installation location of the wired controller and the central controller can be flexibly set according to the user's room or space. Generally, they are set at the door of the room or in a location that can be clearly detected within the user's activity range, and are not installed in areas with obstructions or poor light sensitivity.

[0073] Specifically, the night light mode of the wired controller in this embodiment has two options: a constant display mode and a smart control mode. When the user selects the constant display mode, the wired controller can determine whether to turn on the night light based on the brightness detection in the room. When the detected brightness is less than a preset value, the wired controller turns on the constant display night light mode, and its brightness is displayed in a semi-dark area. This can also be set according to the user's sleep time. For example, if the user sleeps between 10 PM and 7 AM the next day, the wired controller clock can be set to default to the constant display night light mode during this period. That is, when the detected brightness is lower than the preset value, the night light is turned on. At this time, the wired controller night light only displays the light (brightness) and does not display values ​​such as air conditioner operation / temperature. The air conditioner operation parameters are only displayed in the night light mode when the wired controller detects human activity. The display time can be set by the user or the system default of 5 seconds.

[0074] When the user sets the smart control night light status, and the air conditioner is in standby mode, if the brightness sensor in the room detects that the brightness in the room is less than the preset value, the wired controller will be in wake-up mode by default. If the human body sensing device (such as a PIR sensor) in the wired controller detects human activity, the wired controller will turn on the night light and the screen of the wired controller will display the current air conditioner operating parameters.

[0075] In addition, when the night light of the room controller is turned on, it can联动走廊位置的集中控制器夜灯模式同步开启、信息共享(开启亮度等)。集中控制器中人体感应装置检测到用户活动后、在设定时间内其余线控器人体感应装置无反馈到用户活动则认为用户去卫生间了,集中控制器显示夜灯的延长时间则根据用户习惯设定停留时间,确保用户还在卫生间时不会使集中控制器的夜灯模式关闭,(此时间设定可以在房间线控器内根据用户是使用情况设定卫生间夜灯显示时间)。如在设定时间内有其他线控器反馈检测到用户活动、则以最后显示的线控器记录夜灯延迟时间为准。结合 Figure 3 , if the user moves from Room 2 to the kitchen at night, the night light modes of Controller 2, the central controller, and Controller 5 will all light up at this time, and the stay time and the time to turn off the night light will be recorded and calculated based on the human activity detected by Controller 5 last. Another example is that if the user moves from Room 1 to the living room at night, Controller 1 first determines that the night light is on and selects the most appropriate night light brightness according to the brightness inside the house, and synchronously turns on the night light of the central controller with its brightness parameter synchronized with Controller 1; when the user walks to the central controller, the human detection device records the information, and within the set time, when it detects that the user moves to Controller 4 again, the night light of Controller 4 turns on with its data synchronized with the previous two controllers, and at the same time, it starts to calculate the distance from Controller 1 to Controller 4 and the H set by the Controller 1 in Room 1, and calculates the duration of the night light.

[0076] Thus, through the method of the embodiment of the present application, the automatic adjustment of the night light brightness of the controller is realized, that is, the brightness can be automatically adjusted according to the ambient light to avoid glare. In addition, the linkage control of the controller is also realized, that is, the night light modes of the in-room controller and the central controller in the corridor are linked and adjusted, improving the user experience. In addition, the controller can also be dynamically adjusted, that is, the time and brightness of the night light of the controller can be dynamically adjusted according to different user activity situations.

[0077] Corresponding to the above Figure 1 , the embodiment of the present application provides a control device for an air conditioner controller, as Figure 4 shown, the device includes:

[0078] A first processing module 402, configured to obtain the first light intensity of the environment where the first controller is located at the current moment, and control the first controller to present a first display state with a first brightness when the first light intensity is lower than a first preset threshold; wherein, the first display state is that the first controller only makes a light display;

[0079] A second processing module 404, configured to continuously obtain the second light intensity of the environment where the first controller is located, and determine the preset intensity range into which the second light intensity falls; It should be noted that the part "联动走廊位置的集中控制器夜灯模式同步开启、信息共享(开启亮度等)" in the original text seems to be incomplete or incorrect in expression. I have tried my best to translate it according to the context, but it may need further clarification in the actual situation.

[0080] The third processing module 406 is used to adjust the first brightness so that the brightness of the first wired controller matches the brightness corresponding to the preset intensity range, and continuously adjust the brightness of the first wired controller to the preset maximum value, wherein the brightness required to be displayed by the first wired controller is different for different preset intensity ranges.

[0081] The first control module 408 is used to control one or more second wired controllers associated with the activity trajectory when the activity trajectory of the target object is detected, so that the one or more second wired controllers present a second display state, wherein the second display state is that the one or more second wired controllers are lit up and display the corresponding air conditioner's operating parameters.

[0082] In an optional embodiment of this application, the third processing module in this application embodiment may further include: a first determining unit, used to determine a corresponding calculation formula based on a preset intensity range; a first processing unit, used to substitute the maximum brightness value, minimum brightness value, and the maximum and minimum values ​​of the preset intensity range of the first wired controller into the calculation formula to obtain a second brightness; and an adjusting unit, used to adjust the current first brightness of the first wired controller to the second brightness.

[0083] In an optional embodiment of this application, the third processing module in this application embodiment may further include: a second determining unit, used to determine the photosensitivity adaptation time of the target object; and a second processing unit, used to gradually increase the brightness of the first wired controller from the current moment until the used time is the photosensitivity adaptation time, and then adjust the brightness of the first wired controller to a preset maximum value.

[0084] In an optional embodiment of this application, the first control module in this application embodiment may further include: a first control unit, used to sequentially control a second wired controller that is less than a preset distance from the start position to the end position of the activity trajectory to present a second display state; and a second control unit, used to determine the display duration of one or more second wired controllers based on a first parameter associated with the activity trajectory, the height of the target object, the dwell time of the target object, and a preset delay extinguishing time.

[0085] In an optional embodiment of this application, the second control unit in this application embodiment may further include: a first processing subunit, configured to determine the distance between the first activated and the last activated second wire controller from the first parameters, and to determine the product between the target object's driving speed and height coefficient, and to determine the target object's walking time by combining the distance and the product result; and a second processing subunit, configured to determine the sum of twice the walking time, the dwell time, and the preset delay extinguishing time as the display duration of one or more second wire controllers.

[0086] In an optional embodiment of this application, the apparatus may further include: a second control module, configured to, after determining the display duration of one or more second wired controllers, shut down after the operating parameters displayed by the one or more second wired controllers have been displayed for a first duration; or, configured to display the operating parameters displayed by the one or more second wired controllers for a second duration before the end of the display duration.

[0087] In an optional embodiment of this application, the device further includes: a third control module, configured to control a plurality of pre-associated third wired controllers to present a third display state when a target object is detected to have an activity trajectory, wherein the third display state is that one or more second wired controllers are lit up and display the corresponding air conditioner's operating parameters.

[0088] like Figure 5 As shown in the figure, this application provides an air conditioner control device, including a processor 511, a communication interface 512, a memory 513, and a communication bus 514, wherein the processor 511, the communication interface 512, and the memory 513 communicate with each other through the communication bus 514.

[0089] Memory 513 is used to store computer programs;

[0090] In one embodiment of this application, when the processor 511 executes the program stored in the memory 513, it implements the control method of the air conditioner wired controller provided in any of the aforementioned method embodiments, and its function is similar, so it will not be described again here.

[0091] This application also provides a computer-readable storage medium storing a computer program thereon, which, when executed by a processor, implements the steps of the control method for an air conditioner wired controller as provided in any of the foregoing method embodiments.

[0092] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs.

[0093] Through the above description of the embodiments, those skilled in the art can clearly understand that each embodiment can be implemented using software plus a general-purpose hardware platform, or of course, using hardware. Based on this understanding, the above technical solutions, in essence or the parts that contribute to the related technology, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disk, etc., and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods described in the various embodiments or some parts of the embodiments.

[0094] It should be understood that the terminology used herein is for the purpose of describing particular exemplary embodiments only and is not intended to be limiting. Unless the context clearly indicates otherwise, the singular forms “a,” “an,” and “described” as used herein may also include the plural forms. The terms “comprising,” “including,” “containing,” and “having” are inclusive and therefore indicate the presence of the stated features, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, elements, components, and / or combinations thereof. The method steps, processes, and operations described herein are not construed as requiring them to be performed in a particular order described or illustrated unless the order of performance is explicitly indicated. It should also be understood that additional or alternative steps may be used.

[0095] The above description is merely a specific embodiment of the present invention, enabling those skilled in the art to understand or implement the invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features claimed herein.

Claims

1. A control method for an air conditioner wired controller, characterized in that, include: The system obtains the first light intensity of the environment in which the first wired controller is located at the current moment. If the first light intensity is lower than a first preset threshold, the system controls the first wired controller to present a first display state with a first brightness. The first display state is that the first wired controller only displays the light. The second light intensity of the environment in which the first wired controller is located is continuously acquired, and the preset intensity range in which the second light intensity falls is determined; The first brightness is adjusted to match the brightness of the first wired controller with the brightness corresponding to the preset intensity range, and the brightness of the first wired controller is continuously adjusted to the preset maximum value, wherein the required brightness of the first wired controller is different for different preset intensity ranges; Upon detecting the activity trajectory of the target object, one or more second wired controllers associated with the activity trajectory are linked and controlled to cause the one or more second wired controllers to present a second display state, wherein the second display state is that the one or more second wired controllers are lit up and display the corresponding air conditioner's operating parameters.

2. The method according to claim 1, characterized in that, Adjusting the first brightness to match the brightness of the first wired controller with the brightness corresponding to the preset intensity range includes: The corresponding calculation formula is determined based on the preset strength range; The second brightness is obtained by substituting the maximum and minimum brightness values ​​of the first wired controller and the maximum and minimum values ​​of the preset intensity range into the calculation formula; Adjust the current first brightness of the first wired controller to the second brightness.

3. The method according to claim 2, characterized in that, Continuously adjust the brightness of the first wired controller to a preset maximum value, including: Determine the photosensitivity adaptation time of the target object; From the current moment, gradually increase the brightness of the first wired controller until the duration is the photosensitivity adaptation time, then adjust the brightness of the first wired controller to the preset maximum value.

4. The method according to claim 1, characterized in that, Linkage control is performed on one or more second wired controllers associated with the activity trajectory to cause the one or more second wired controllers to display a second display state, including: From the starting position to the ending position of the activity trajectory, the second wired controller, which is less than a preset distance from the activity trajectory, is sequentially controlled to present a second display state; The display duration of the one or more second wired controllers is determined based on a first parameter associated with the activity trajectory, the height of the target object, the dwell time of the target object, and a preset delay time.

5. The method according to claim 4, characterized in that, The display duration of the one or more second wired controllers is determined based on a first parameter associated with the activity trajectory, the height coefficient of the target object, the dwell time of the target object, and a preset delay timeout, including: The distance between the first and last activated second drive-by controllers is determined from the first parameter, and the product between the target object's driving speed and the height coefficient is determined, and the walking time of the target object is determined by the distance and the product result. The sum of twice the walking time, the dwell time, and the preset delay time is determined as the display duration of the one or more second wired controllers.

6. The method according to claim 4, characterized in that, After determining the display duration of the one or more second wired controllers, the method further includes: The device shuts off after the operating parameters displayed on the one or more second wired controllers have been shown for a first duration; or, The operating parameters displayed on the one or more second wired controllers are displayed for a second duration before the end of the display duration.

7. The method according to claim 1, characterized in that, The method further includes: When the target object is detected to have an activity trajectory, multiple pre-associated third wired controllers are controlled to present a third display state, wherein the third display state is that the screens of one or more second wired controllers are lit up and the corresponding air conditioner's operating parameters are displayed.

8. A control device for an air conditioner wired controller, characterized in that, include: The first processing module is used to obtain the first light intensity of the environment where the first wired controller is located at the current moment, and when the first light intensity is lower than a first preset threshold, control the first wired controller to present a first display state with a first brightness; wherein, the first display state is that the first wired controller only displays light. The second processing module is used to continuously acquire the second light intensity of the environment in which the first wire controller is located, and determine the preset intensity range into which the second light intensity falls; The third processing module is used to adjust the first brightness so that the brightness of the first wired controller matches the brightness corresponding to the preset intensity range, and continuously adjust the brightness of the first wired controller to the preset maximum value, wherein the brightness required to be displayed by the first wired controller is different for different preset intensity ranges; The first control module is used to control one or more second wired controllers associated with the activity trajectory when the activity trajectory of the target object is detected, so that the one or more second wired controllers present a second display state, wherein the second display state is that the one or more second wired controllers are lit up and display the corresponding air conditioner's operating parameters.

9. A device, characterized in that, include: At least one communication interface; At least one bus connected to the at least one communication interface; At least one processor connected to the at least one bus; At least one memory connected to the at least one bus, wherein the processor is configured to execute the control method of the air conditioner remote controller according to any one of claims 1 to 7.

10. A computer storage medium, characterized in that, The device stores computer-executable instructions for performing the control method of the air conditioner wired controller according to any one of claims 1 to 7.