A method and related apparatus for controlling equipment operation

By setting up a light source component on the globe and dynamically adjusting the lighting according to geographical location, time of day, and weather parameters, the problem of the globe's monotonous display is solved, achieving realistic celestial phenomenon simulation and improving teaching effectiveness.

CN116027783BActive Publication Date: 2026-04-21BEIJING TIANYU COMPASS BOOK
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
BEIJING TIANYU COMPASS BOOK
Filing Date
2022-12-28
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing globe displays are relatively simple, lack intelligence, and cannot realistically simulate celestial phenomena changes in different geographical locations.

Method used

By setting up a light source component on a globe, the operating parameters of the light source component are dynamically adjusted according to the selected geographical location, time point, weather parameters, and lighting parameters to simulate the real celestial phenomena of various regions.

Benefits of technology

It enhances the intelligence of globe display and the effectiveness of geography teaching, increases user interest, and can realistically simulate celestial phenomena changes in various regions.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application discloses a device operation control method and related apparatus applied to a globe, the globe including a light source component. The method includes: selecting a target area of ​​the globe, the target area indicating a target geographical location; obtaining a specified time point; determining a local time point corresponding to the target geographical location based on the specified time point; obtaining target weather parameters for the target area; determining target illumination parameters corresponding to the target weather parameters and the local time point; determining target operating parameters for the light source component corresponding to the target illumination parameters; and controlling the light source component to illuminate the target area using the target operating parameters. This application embodiment enhances the intelligence of the globe display.
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Description

Technical Field

[0001] This application relates to the field of electronic technology, specifically to a device operation control method and related apparatus. Background Technology

[0002] In daily life, to facilitate understanding of the Earth, people have created models of the Earth by scaling them down to a certain proportion, which are called globes. Because globes have distortions in length, area, direction, and shape, the relationships between various objects observed on a globe are holistic and approximately accurate.

[0003] Currently, the way globes are displayed is relatively simple. For example, users can only view the information on the globe. Therefore, the question of how to improve the intelligence of globe displays urgently needs to be addressed. Summary of the Invention

[0004] This application provides a device operation control method and related apparatus, which can improve the intelligence of globe display.

[0005] In a first aspect, embodiments of this application provide a device operation control method applied to a globe, the globe including a light source assembly, the method comprising:

[0006] Select a target area on the globe, the target area being used to indicate the geographical location of the target;

[0007] Get a specified time point;

[0008] Based on the specified time point, determine the local time point corresponding to the target geographical location;

[0009] Obtain the target weather parameters for the target area;

[0010] Determine the target illumination parameters corresponding to the target weather parameters and the local time point;

[0011] Determine the target operating parameters of the light source component corresponding to the target illumination parameters;

[0012] The light source assembly is controlled to illuminate the target area with the target operating parameters.

[0013] Secondly, embodiments of this application provide a device operation control apparatus applied to a globe, the globe including a light source assembly, the apparatus comprising: a selection unit, an acquisition unit, a determination unit, and a control unit, wherein...

[0014] The selection unit is used to select a target area of ​​the globe, and the target area is used to indicate the geographical location of the target.

[0015] The acquisition unit is used to acquire a specified time point;

[0016] The determining unit is used to determine the local time point corresponding to the target geographical location based on the specified time point;

[0017] The acquisition unit is also used to acquire target weather parameters for the target area;

[0018] The determining unit is further configured to determine the target illumination parameters corresponding to the target weather parameters and the local time point; and to determine the target operating parameters of the light source component corresponding to the target illumination parameters;

[0019] The control unit is used to control the light source assembly to illuminate the target area with the target operating parameters.

[0020] Thirdly, embodiments of this application provide a globe, including a processor, a memory, a communication interface, and one or more programs, wherein the one or more programs are stored in the memory and configured to be executed by the processor, and the programs include instructions for performing the steps in the first aspect of embodiments of this application.

[0021] Fourthly, embodiments of this application provide a computer-readable storage medium storing a computer program for electronic data interchange, wherein the computer program causes a computer to perform some or all of the steps described in the first aspect of embodiments of this application.

[0022] Fifthly, embodiments of this application provide a computer program product, wherein the computer program product includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps described in the first aspect of embodiments of this application. The computer program product may be a software installation package.

[0023] Implementing the embodiments of this application has the following beneficial effects:

[0024] As can be seen, the device operation control method and related apparatus described in the embodiments of this application are applied to a globe. The globe includes a light source component. A target area of ​​the globe is selected, which is used to indicate the target geographical location. A specified time point is obtained. Based on the specified time point, the local time point corresponding to the target geographical location is determined. Target weather parameters of the target area are obtained. Target illumination parameters corresponding to the target weather parameters and local time point are determined. Target operating parameters of the light source component corresponding to the target illumination parameters are determined. The light source component is controlled to illuminate the target area according to the target operating parameters. Based on the target area selected by the user and the set time point, the local time point corresponding to the target area and the illumination parameters corresponding to the weather and time point are determined. Then, the operating parameters of the light source component corresponding to the illumination parameters are determined. Thus, it is possible to realistically simulate the real celestial phenomena of various regions, which not only helps to improve the effect of geography teaching and user interest, but also enhances the intelligence of the globe display. Attached Figure Description

[0025] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0026] Figure 1 This is a flowchart illustrating a device operation control method provided in an embodiment of this application;

[0027] Figure 2 This is a flowchart illustrating another device operation control method provided in an embodiment of this application;

[0028] Figure 3 This is a schematic diagram of the structure of a globe provided in an embodiment of this application;

[0029] Figure 4 This is a block diagram of the functional units of a device operation control device provided in an embodiment of this application. Detailed Implementation

[0030] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present application.

[0031] The terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.

[0032] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0033] The embodiments of this application will be described in detail below.

[0034] Please see Figure 1 , Figure 1 This is a flowchart illustrating a device operation control method provided in an embodiment of this application. As shown in the figure, it is applied to a globe, which includes a light source assembly. The device operation control method includes:

[0035] 101. Select the target area of ​​the globe, the target area being used to indicate the geographical location of the target.

[0036] In this embodiment, the light source assembly may consist of multiple light source modules, which may include at least one of the following: LED lights, display screens, projection light sources, etc., without limitation. The light source assembly may be embedded in the surface of the globe, or it may be disposed inside the globe.

[0037] In practice, the target area of ​​the globe can be selected by the user. This target area is used to indicate the target's geographical location. Different geographical locations will have different celestial phenomena.

[0038] Optionally, step 101 above, selecting the target area of ​​the globe, may include the following steps:

[0039] 11. Obtain specified keywords, including one of the following: total solar eclipse, partial solar eclipse, total lunar eclipse, partial lunar eclipse, sunrise, sunset;

[0040] 12. Determine at least one region corresponding to the specified keyword within a preset time period;

[0041] 13. Determine one of the at least one regions as the target region.

[0042] The preset time period can be a specific duration, which can be pre-set or set by the system default. The preset time period can be a past period, the current period, or a future period.

[0043] In this embodiment of the application, the specified keywords can be preset or defaulted by the system, and the specified keywords can be manually entered by the user or input by voice.

[0044] In practical implementation, specified keywords can be obtained, including one of the following: total solar eclipse, partial solar eclipse, total lunar eclipse, partial lunar eclipse, sunrise, and sunset. At least one region corresponding to the specified keyword within a preset time period can also be identified. Then, one of these regions can be designated as the target region. That is, based on user needs, a region where the astronomical phenomenon described by the specified keyword occurs within a certain time period can be identified as the target region. Of course, the specified keywords are not limited to total solar eclipse, partial solar eclipse, total lunar eclipse, partial lunar eclipse, sunrise, and sunset; they can also include at least one of the following: polar day, polar night, desert, ocean, etc., without limitation. In practical applications, sunrise and sunset times can be displayed on the screen. Furthermore, if a total solar eclipse, partial solar eclipse, or total lunar eclipse occurs, the lighting effects parameters can be dynamically adjusted.

[0045] 102. Obtain a specified time point.

[0046] In this embodiment of the application, the specified time point can be the time point of the region where the globe is located. The specified time point can be preset or set by system default, and can be the current time point, a past time point, or a future time point. For example, the specified time point can be the current time.

[0047] In practice, the specified time point can be manually entered by the user, or it can be entered by the user's voice.

[0048] 103. Determine the local time point corresponding to the target geographical location based on the specified time point.

[0049] In practice, different geographical locations have different time zones, i.e. time difference. Therefore, the time difference relationship between the geographical location of the globe and the target geographical location of the target area can be obtained. Based on this time difference relationship, the current time point of the target geographical location corresponding to the specified time point can be determined.

[0050] 104. Obtain the target weather parameters for the target area.

[0051] In this embodiment of the application, different regions have different weather changes. Therefore, the target weather parameters of the target region can be obtained through meteorological applications.

[0052] The target weather parameters are used to describe the weather changes in the target area. The target weather parameters may include at least one of the following: sunny, rainy, cloudy, snowy, foggy, etc., without limitation.

[0053] 105. Determine the target illumination parameters corresponding to the target weather parameters and the local time point.

[0054] In practice, the lighting parameters will vary depending on the weather and time of day. The lighting parameters are used to describe the actual lighting conditions in the scene. The lighting parameters may include at least one of the following: light intensity, light angle, light color, etc., which are not limited here.

[0055] In practical applications, the mapping relationship between preset weather parameters, time points and illumination parameters can be stored in advance. Then, the target weather parameters and the target illumination parameters corresponding to the current time point can be determined based on the mapping relationship.

[0056] 106. Determine the target operating parameters of the light source component corresponding to the target illumination parameters.

[0057] In this embodiment, a pre-stored mapping relationship between preset illumination parameters and operating parameters of the light source component can be stored. Then, the target operating parameters of the light source component corresponding to the target illumination parameters can be determined based on the mapping relationship.

[0058] The operating parameters of the light source component may include at least one of the following: operating current, operating voltage, operating power, operating frequency, brightness parameters, color parameters, etc., which are not limited here.

[0059] In practical applications, the lighting display effect can be determined based on the weather and the sun's trajectory. Specifically, the target area specified by the user can be obtained, the weather conditions of the target area can be determined, the lighting conditions of the area can be determined based on the weather conditions, the lighting effect parameters can be adjusted based on the lighting conditions, and then the lighting function can be realized based on the lighting effect parameters.

[0060] Optionally, step 106 above, determining the target operating parameters of the light source component corresponding to the target illumination parameters, may include the following steps:

[0061] 61. Obtain the target air quality parameters for the target geographical location;

[0062] 62. Determine the target influencing factor corresponding to the target air quality parameter;

[0063] 63. Adjust the target illumination parameters according to the target influence factor to obtain reference illumination parameters;

[0064] 64. Determine the target operating parameters of the light source component corresponding to the reference illumination parameters.

[0065] In this embodiment of the application, in the actual environment, different air quality parameters may also have a certain impact on the illumination. Therefore, the target air quality parameters of the target geographical location can be obtained. The target air quality parameters of the target geographical location may include at least one of the following: PM2.5, air quality evaluation parameters, air temperature, air humidity, etc., which are not limited here.

[0066] In practice, a pre-stored mapping relationship between air quality parameters and influencing factors can be used. In actual applications, this mapping relationship can be used to adjust one or more of the target illumination parameters. Of course, the target illumination parameters can include adjustable illumination parameters and non-adjustable illumination parameters, meaning that only the adjustable illumination parameters can be adjusted.

[0067] Furthermore, the target influence factor corresponding to the target air quality parameter can be determined based on this mapping relationship. The target illumination parameter can also be adjusted based on the target influence factor to obtain the reference illumination parameter. In practical applications, one or more of the target illumination parameters can be adjusted to achieve precise adjustment of the illumination parameter.

[0068] Next, the target operating parameters of the light source component can be determined according to the preset mapping relationship between the lighting parameters and the operating parameters of the light source component. In this way, the local air quality of the target area can be taken into account to achieve precise lighting parameter optimization, which helps to ensure accurate display of celestial changes in the target area through the globe, that is, to dynamically adjust the lighting effect parameters based on the air quality parameters.

[0069] 107. Control the light source assembly to illuminate the target area with the target operating parameters.

[0070] In this embodiment, the light source component can be controlled to illuminate the target area with the target operating parameters, thereby enabling the target area to display celestial phenomena changes in the actual scene, which helps to improve teaching quality and user interest, and also helps to enhance the intelligence of the globe display.

[0071] In practice, the light source component can be controlled to illuminate the surface of the globe, or it can be controlled to illuminate the globe by projection.

[0072] In practical applications, you can also press the real-time illumination button on any interface: the sunlight / Earth will move to the corresponding position according to the real-time time. You can press the return button on the real-time illumination interface to return to the main interface, or it will automatically return to the main interface after 3 minutes of inactivity, while the device's sunlight / sphere remains stationary.

[0073] Optionally, step 107 above, controlling the light source assembly to illuminate the target area with the target operating parameters, may include the following steps:

[0074] 71. Obtain current environmental parameters;

[0075] 72. Determine the target fine-tuning coefficient corresponding to the current environmental parameters;

[0076] 73. Adjust the target operating parameters according to the target fine-tuning coefficient to obtain reference operating parameters;

[0077] 74. Control the light source assembly to illuminate the target area using the reference operating parameters.

[0078] In this embodiment of the application, the environmental parameters may include physical environmental parameters and / or hardware environmental parameters. The physical environmental parameters may include at least one of the following: ambient temperature, ambient humidity, ambient light intensity, ambient color temperature, etc., which are not limited here. The hardware environmental parameters may include at least one of the following: the globe's operating current, the globe's operating voltage, the globe's operating power, the globe's load, etc., which are not limited here.

[0079] In this embodiment of the application, a pre-set mapping relationship between preset environmental parameters and fine-tuning coefficients can be established. Then, the current environmental parameters can be obtained, and the target fine-tuning coefficient corresponding to the current environmental parameters can be determined according to the mapping relationship.

[0080] Furthermore, the target working parameters can be adjusted according to the target fine-tuning coefficient to obtain reference working parameters. Then, the light source component can be controlled to illuminate the target area according to the reference working parameters. That is, the actual physical environment of the globe and / or the hardware conditions of the globe can be taken into account, and the globe's lighting can be dynamically adjusted. This helps to ensure that the globe's lighting effect is closer to the actual local conditions of the target area, which helps to improve the user experience. In other words, the lighting effect parameters can be dynamically adjusted based on environmental parameters.

[0081] Furthermore, step 72 above, determining the target fine-tuning coefficient corresponding to the current environmental parameters, may include the following steps:

[0082] 721. Using big data technology, obtain m fine-tuning coefficients corresponding to the current environmental parameters. Each of the m fine-tuning coefficients corresponds to an associated globe and an evaluation value, where m is an integer greater than 1.

[0083] 722. Obtain the geographical location of each associated globe, resulting in m geographical locations;

[0084] 723. Obtain the current physical location of the globe;

[0085] 724. Based on the current geographical location, obtain n geographical locations within a preset range, where n is a positive integer less than or equal to m;

[0086] 725. Determine the n fine-tuning coefficients and n evaluation values ​​corresponding to the n geographical locations;

[0087] 726. Select the evaluation values ​​that are greater than the set threshold from the n evaluation values ​​to obtain k evaluation values, where k is a positive integer less than or equal to n;

[0088] 727. Determine the target mean of the k evaluation values;

[0089] 728. Obtain at least one fine-tuning coefficient corresponding to the target mean, and determine the target fine-tuning coefficient based on the at least one fine-tuning coefficient.

[0090] In this embodiment of the application, different environmental parameters and different globes can correspond to different fine-tuning coefficients. Furthermore, big data technology can be used to obtain m fine-tuning coefficients corresponding to the current environmental parameters. Each of the m fine-tuning coefficients corresponds to an associated globe and an evaluation value, where m is an integer greater than 1. The evaluation value can be evaluated by the system itself or by the user.

[0091] Furthermore, the geographical location of each associated globe can be obtained, resulting in m geographical locations. Then, the current physical location of the globe can be obtained, and n geographical locations within a preset range can be obtained based on the current geographical location, where n is a positive integer less than or equal to m. The preset range can be preset or defaulted to by the system. For example, the preset range can be the range of the current geographical location and the preset radius. The preset radius can also be preset or defaulted to by the system.

[0092] Next, we can determine n fine-tuning coefficients and n evaluation values ​​corresponding to n geographical locations. Then, we select evaluation values ​​from the n evaluation values ​​that are greater than a set threshold to obtain k evaluation values, where k is a positive integer less than or equal to n. The preset threshold can be pre-set or the system default. Then, we determine the target mean of the k evaluation values ​​and obtain at least one fine-tuning coefficient corresponding to the target mean. Based on at least one fine-tuning coefficient, we determine the target fine-tuning coefficient. In this way, based on big data technology and historical operational experience, we can quickly determine feasible fine-tuning coefficients, which helps to improve the intelligence and adjustment efficiency of the globe.

[0093] Optionally, after step 107 above, which controls the light source assembly to illuminate the target area with the target operating parameters, the following steps may also be included:

[0094] A1. Determine the target holiday identifier corresponding to the local time point;

[0095] A2. Determine the target background parameters corresponding to the target holiday identifier;

[0096] A3. Determine the target display parameters corresponding to the target holiday identifier;

[0097] A4. Display the festive atmosphere according to the target display parameters and the target background parameters.

[0098] In this embodiment of the application, different time points can correspond to different festival identifiers. The festival identifier can be used to indicate whether it is a festival and the type of festival. The mapping relationship between preset time points and festival identifiers can be stored in advance. Then, the target festival identifier corresponding to the local time point can be determined based on the mapping relationship.

[0099] In practice, different holiday icons can correspond to different background parameters. Background parameters can include at least one of the following: background image, background effects, background sound effects, etc., without limitation. For example, a background image can be a Christmas tree, fireworks, flowers, etc., without limitation. A pre-stored mapping relationship between preset holiday icons and background parameters can be used to determine the target background parameters corresponding to the target holiday icon.

[0100] Furthermore, different festival symbols can correspond to different display parameters. These parameters can include at least one of the following: display device identifier, display mode, display frequency, display duration, etc., without limitation. The display mode can include at least one of the following: display screen display, light source component display, projection display, etc., without limitation. Moreover, a pre-stored mapping relationship between festival symbols and display parameters can be established. Based on this mapping relationship, the target display parameters corresponding to the target festival symbol can be determined. Finally, a festive atmosphere can be displayed based on the target display parameters and target background parameters. Background effects can also be used to render and showcase local festival culture, thus enhancing the globe's display intelligence.

[0101] As can be seen, the device operation control method described in this application embodiment is applied to a globe. The globe includes a light source component. A target area of ​​the globe is selected, which is used to indicate the target geographical location. A specified time point is obtained. Based on the specified time point, the local time point corresponding to the target geographical location is determined. Target weather parameters of the target area are obtained. Target illumination parameters corresponding to the target weather parameters and local time point are determined. Target operating parameters of the light source component corresponding to the target illumination parameters are determined. The light source component is controlled to illuminate the target area according to the target operating parameters. Based on the target area selected by the user and the set time point, the local time point corresponding to the target area and the illumination parameters corresponding to the weather and time point can be determined. Then, the operating parameters of the light source component corresponding to the illumination parameters can be determined. Thus, it is possible to realistically simulate the real celestial phenomena of various regions, which not only helps to improve the effect of geography teaching and user interest, but also enhances the intelligence of the globe display.

[0102] With the above Figure 1 The illustrated embodiments are consistent with those shown in the example. Please refer to [link / reference]. Figure 2 , Figure 2 This is a flowchart illustrating another device operation control method provided in this application embodiment, applied to a globe. The globe includes a light source assembly. As shown in the figure, the device operation control method includes:

[0103] 201. Select the target area of ​​the globe, the target area being used to indicate the geographical location of the target.

[0104] 202. Detect whether the target area is a set area, wherein the set area is determined based on user permissions.

[0105] Different user permissions correspond to different setting areas. In other words, a preset mapping relationship between user permissions and setting areas can be set in advance. Based on this mapping relationship, the setting permissions corresponding to the user permissions of the globe can be determined.

[0106] If the target area is a set area, it means that the user has the authority to display the celestial phenomena in the target area using light effects, and therefore, step 203 can be executed; otherwise, the subsequent steps can be skipped.

[0107] 203. When the target area is the set area, obtain the specified time point.

[0108] 204. Determine the local time point corresponding to the target geographical location based on the specified time point.

[0109] 205. Obtain the target weather parameters for the target area.

[0110] 206. Determine the target illumination parameters corresponding to the target weather parameters and the local time point.

[0111] 207. Determine the target operating parameters of the light source component corresponding to the target illumination parameters.

[0112] 208. Control the light source assembly to illuminate the target area with the target operating parameters.

[0113] The specific descriptions of steps 201-208 above can be found in the above descriptions. Figure 1 The corresponding steps of the described equipment operation control method will not be repeated here.

[0114] As can be seen, the device operation control method described in this application embodiment is applied to a globe, which includes a light source component. A target area of ​​the globe is selected, indicating the target geographical location. The method detects whether the target area is a set area, which is determined based on user permissions. When the target area is a set area, a specified time point is obtained. Based on the specified time point, the local time point corresponding to the target geographical location is determined. Target weather parameters for the target area are obtained. Target illumination parameters corresponding to the target weather parameters and local time point are determined. Target operating parameters of the light source component corresponding to the target illumination parameters are determined. The light source component is controlled to illuminate the target area using the target operating parameters. Based on the user-selected target area and the set time point, the method determines the local time point of the target area, as well as the illumination parameters corresponding to its weather and time point. Then, the operating parameters of the light source component corresponding to these illumination parameters are determined. This allows for the realistic simulation of real celestial phenomena in various regions, which not only helps improve the effectiveness of geography teaching and user engagement but also enhances the intelligence of the globe display.

[0115] Consistent with the above embodiments, please refer to Figure 3 , Figure 3This is a schematic diagram of the structure of a globe provided in an embodiment of this application. As shown in the figure, the globe includes a processor, a memory, a communication interface, and one or more programs applied to the globe. The one or more programs are stored in the memory and configured to be executed by the processor. The globe also includes a light source assembly. In this embodiment, the programs include instructions for performing the following steps:

[0116] Select a target area on the globe, the target area being used to indicate the geographical location of the target;

[0117] Get a specified time point;

[0118] Based on the specified time point, determine the local time point corresponding to the target geographical location;

[0119] Obtain the target weather parameters for the target area;

[0120] Determine the target illumination parameters corresponding to the target weather parameters and the local time point;

[0121] Determine the target operating parameters of the light source component corresponding to the target illumination parameters;

[0122] The light source assembly is controlled to illuminate the target area with the target operating parameters.

[0123] Optionally, in determining the target operating parameters of the light source assembly corresponding to the target illumination parameters, the above procedure includes instructions for performing the following steps:

[0124] Obtain the target air quality parameters for the target geographical location;

[0125] Determine the target influencing factor corresponding to the target air quality parameter;

[0126] The target illumination parameters are adjusted according to the target influence factor to obtain reference illumination parameters;

[0127] Determine the target operating parameters of the light source component corresponding to the reference illumination parameters.

[0128] Furthermore, optionally, in controlling the light source assembly to illuminate the target area with the target operating parameters, the above procedure includes instructions for performing the following steps:

[0129] Get the current environment parameters;

[0130] Determine the target fine-tuning coefficient corresponding to the current environmental parameters;

[0131] The target operating parameters are adjusted according to the target fine-tuning coefficient to obtain reference operating parameters;

[0132] The light source assembly is controlled to illuminate the target area using the reference operating parameters.

[0133] Optionally, in determining the target fine-tuning coefficient corresponding to the current environmental parameters, the above procedure includes instructions for performing the following steps:

[0134] Using big data technology, m fine-tuning coefficients corresponding to the current environmental parameters are obtained. Each of the m fine-tuning coefficients corresponds to an associated globe and an evaluation value, where m is an integer greater than 1.

[0135] Obtain the geographical location of each associated globe, resulting in m geographical locations;

[0136] Obtain the current physical location of the globe;

[0137] Based on the current geographical location, obtain n geographical locations within a preset range, where n is a positive integer less than or equal to m;

[0138] Determine the n fine-tuning coefficients and n evaluation values ​​corresponding to the n geographical locations;

[0139] Select the evaluation values ​​that are greater than a set threshold from the n evaluation values ​​to obtain k evaluation values, where k is a positive integer less than or equal to n;

[0140] Determine the target mean of the k evaluation values;

[0141] Obtain at least one fine-tuning coefficient corresponding to the target mean, and determine the target fine-tuning coefficient based on the at least one fine-tuning coefficient.

[0142] Optionally, regarding the selection of the target area of ​​the globe, the above procedure includes instructions for performing the following steps:

[0143] Obtain specified keywords, including one of the following: total solar eclipse, partial solar eclipse, total lunar eclipse, partial lunar eclipse, sunrise, sunset;

[0144] Determine at least one region within a preset time period that corresponds to the specified keyword;

[0145] One of the at least one regions is identified as the target region.

[0146] As can be seen, the globe described in this application embodiment includes a light source component. A target area of ​​the globe is selected, indicating the target geographical location. A specified time point is obtained. Based on the specified time point, the local time point corresponding to the target geographical location is determined. Target weather parameters for the target area are obtained. Target illumination parameters corresponding to the target weather parameters and local time point are determined. Target operating parameters of the light source component corresponding to the target illumination parameters are determined. The light source component is controlled to illuminate the target area using the target operating parameters. Based on the user-selected target area and the set time point, the local time point corresponding to the target area and the illumination parameters corresponding to its weather and time point are determined. Then, the operating parameters of the light source component corresponding to the illumination parameters are determined. This allows for the realistic simulation of real celestial phenomena in various regions, which not only helps improve the effectiveness of geography teaching and user engagement but also enhances the intelligence of the globe display.

[0147] Figure 4 This is a functional unit block diagram of a device operation control device 400 involved in the embodiments of this application. The device operation control device 400 is applied to a globe, the globe including a light source assembly. The device 400 includes: a selection unit 401, an acquisition unit 402, a determination unit 403, and a control unit 404, wherein...

[0148] The selection unit 401 is used to select a target area of ​​the globe, and the target area is used to indicate the geographical location of the target.

[0149] The acquisition unit 402 is used to acquire a specified time point;

[0150] The determining unit 403 is used to determine the local time point corresponding to the target geographical location based on the specified time point;

[0151] The acquisition unit 402 is also used to acquire target weather parameters of the target area;

[0152] The determining unit 403 is further configured to determine the target illumination parameters corresponding to the target weather parameters and the local time point; and to determine the target operating parameters of the light source component corresponding to the target illumination parameters;

[0153] The control unit 404 is used to control the light source assembly to illuminate the target area with the target operating parameters.

[0154] Optionally, in determining the target operating parameters of the light source assembly corresponding to the target illumination parameters, the determining unit 403 is specifically used for:

[0155] Obtain the target air quality parameters for the target geographical location;

[0156] Determine the target influencing factor corresponding to the target air quality parameter;

[0157] The target illumination parameters are adjusted according to the target influence factor to obtain reference illumination parameters;

[0158] Determine the target operating parameters of the light source component corresponding to the reference illumination parameters.

[0159] Optionally, in controlling the light source assembly to illuminate the target area with the target operating parameters, the control unit 404 is specifically configured to:

[0160] Get the current environment parameters;

[0161] Determine the target fine-tuning coefficient corresponding to the current environmental parameters;

[0162] The target operating parameters are adjusted according to the target fine-tuning coefficient to obtain reference operating parameters;

[0163] The light source assembly is controlled to illuminate the target area using the reference operating parameters.

[0164] Optionally, in determining the target fine-tuning coefficient corresponding to the current environmental parameters, the determining unit 403 is specifically used for:

[0165] Using big data technology, m fine-tuning coefficients corresponding to the current environmental parameters are obtained. Each of the m fine-tuning coefficients corresponds to an associated globe and an evaluation value, where m is an integer greater than 1.

[0166] Obtain the geographical location of each associated globe, resulting in m geographical locations;

[0167] Obtain the current physical location of the globe;

[0168] Based on the current geographical location, obtain n geographical locations within a preset range, where n is a positive integer less than or equal to m;

[0169] Determine the n fine-tuning coefficients and n evaluation values ​​corresponding to the n geographical locations;

[0170] Select the evaluation values ​​that are greater than a set threshold from the n evaluation values ​​to obtain k evaluation values, where k is a positive integer less than or equal to n;

[0171] Determine the target mean of the k evaluation values;

[0172] Obtain at least one fine-tuning coefficient corresponding to the target mean, and determine the target fine-tuning coefficient based on the at least one fine-tuning coefficient.

[0173] Optionally, in selecting the target area of ​​the globe, the selection unit 401 is specifically used for:

[0174] Obtain specified keywords, including one of the following: total solar eclipse, partial solar eclipse, total lunar eclipse, partial lunar eclipse, sunrise, sunset;

[0175] Determine at least one region within a preset time period that corresponds to the specified keyword;

[0176] One of the at least one regions is identified as the target region.

[0177] As can be seen, the device operation control device described in this application embodiment is applied to a globe. The globe includes a light source component. The device selects a target area of ​​the globe, which indicates the target geographical location. It obtains a specified time point, determines the local time point corresponding to the target geographical location based on the specified time point, obtains target weather parameters for the target area, determines target illumination parameters corresponding to the target weather parameters and local time point, determines target operating parameters for the light source component corresponding to the target illumination parameters, and controls the light source component to illuminate the target area using the target operating parameters. Based on the user-selected target area and the set time point, it determines the local time point corresponding to the target area, as well as the illumination parameters corresponding to the weather and time point, and then determines the operating parameters of the light source component corresponding to the illumination parameters. This allows for the realistic simulation of real celestial phenomena in various regions, which not only helps improve the effectiveness of geography teaching and user engagement but also enhances the intelligence of the globe display.

[0178] It is understood that the functions of each program module of the device operation control device in this embodiment can be specifically implemented according to the methods in the above method embodiments. The specific implementation process can be referred to the relevant descriptions in the above method embodiments, and will not be repeated here.

[0179] This application also provides a computer storage medium storing a computer program for electronic data interchange, which causes a computer to perform some or all of the steps of any of the methods described in the above method embodiments, wherein the computer includes a globe.

[0180] This application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps of any of the methods described in the above method embodiments. The computer program product may be a software installation package, and the computer may include a globe.

[0181] It should be noted that, for the sake of simplicity, the foregoing method embodiments are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, as some steps may be performed in other orders or simultaneously according to this application. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions and modules involved are not necessarily essential to this application.

[0182] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0183] In the several embodiments provided in this application, it should be understood that the disclosed apparatus can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of the units described above is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between devices or units may be electrical or other forms.

[0184] The units described above as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0185] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.

[0186] If the integrated units described above are implemented as software functional units and sold or used as independent products, they can be stored in a computer-readable storage device (CMD). Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a memory and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned memory includes various media capable of storing program code, such as USB flash drives, read-only memory (ROM), random access memory (RAM), portable hard drives, magnetic disks, or optical disks.

[0187] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be implemented by a program instructing related hardware. The program can be stored in a computer-readable storage medium, which may include: flash drive, read-only memory (ROM), random access memory (RAM), disk or optical disk, etc.

[0188] The embodiments of this application have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.

Claims

1. A method for controlling equipment operation, characterized in that, Applied to a globe, the globe including a light source assembly, the method includes: Select a target area on the globe, the target area being used to indicate the geographical location of the target; Get the specified time point; Based on the specified time point, determine the local time point corresponding to the target geographical location; Obtain the target weather parameters for the target area; Determine the target illumination parameters corresponding to the target weather parameters and the local time point; Determine the target operating parameters of the light source component corresponding to the target illumination parameters; Control the light source assembly to illuminate the target area with the target operating parameters; The step of controlling the light source assembly to illuminate the target area with the target operating parameters includes: Get the current environment parameters; Determine the target fine-tuning coefficient corresponding to the current environmental parameters; The target operating parameters are adjusted according to the target fine-tuning coefficient to obtain reference operating parameters; The light source assembly is controlled to illuminate the target area using the reference operating parameters. The determination of the target fine-tuning coefficient corresponding to the current environmental parameters includes: Using big data technology, m fine-tuning coefficients corresponding to the current environmental parameters are obtained. Each of the m fine-tuning coefficients corresponds to an associated globe and an evaluation value, where m is an integer greater than 1. Obtain the geographical location of each associated globe, resulting in m geographical locations; Obtain the current geographical location of the globe; Based on the current geographical location, obtain n geographical locations within a preset range, where n is a positive integer less than or equal to m; Determine the n fine-tuning coefficients and n evaluation values ​​corresponding to the n geographical locations; Select the evaluation values ​​that are greater than a set threshold from the n evaluation values ​​to obtain k evaluation values, where k is a positive integer less than or equal to n; Determine the target mean of the k evaluation values; Obtain at least one fine-tuning coefficient corresponding to the target mean, and determine the target fine-tuning coefficient based on the at least one fine-tuning coefficient.

2. The method according to claim 1, characterized in that, Determining the target operating parameters of the light source component corresponding to the target illumination parameters includes: Obtain the target air quality parameters for the target geographical location; Determine the target influencing factor corresponding to the target air quality parameter; The target illumination parameters are adjusted according to the target influence factor to obtain reference illumination parameters; Determine the target operating parameters of the light source component corresponding to the reference illumination parameters.

3. The method according to claim 1 or 2, characterized in that, Selecting the target area of ​​the globe includes: Obtain specified keywords, including one of the following: total solar eclipse, partial solar eclipse, total lunar eclipse, partial lunar eclipse, sunrise, sunset; Determine at least one region within a preset time period that corresponds to the specified keyword; One of the at least one regions is identified as the target region.

4. A device for controlling the operation of equipment, characterized in that, Applied to a globe, the globe including a light source assembly, the device includes: a selection unit, an acquisition unit, a determination unit, and a control unit, wherein, The selection unit is used to select a target area of ​​the globe, and the target area is used to indicate the geographical location of the target. The acquisition unit is used to acquire a specified time point; The determining unit is used to determine the local time point corresponding to the target geographical location based on the specified time point; The acquisition unit is also used to acquire target weather parameters for the target area; The determining unit is further configured to determine the target illumination parameters corresponding to the target weather parameters and the local time point; and to determine the target operating parameters of the light source component corresponding to the target illumination parameters; The control unit is used to control the light source assembly to illuminate the target area with the target operating parameters; Specifically, in controlling the light source assembly to illuminate the target area with the target operating parameters, the control unit is used for: Get the current environment parameters; Determine the target fine-tuning coefficient corresponding to the current environmental parameters; The target operating parameters are adjusted according to the target fine-tuning coefficient to obtain reference operating parameters; The light source assembly is controlled to illuminate the target area using the reference operating parameters. The determination of the target fine-tuning coefficient corresponding to the current environmental parameters includes: Using big data technology, m fine-tuning coefficients corresponding to the current environmental parameters are obtained. Each of the m fine-tuning coefficients corresponds to an associated globe and an evaluation value, where m is an integer greater than 1. Obtain the geographical location of each associated globe, resulting in m geographical locations; Obtain the current geographical location of the globe; Based on the current geographical location, obtain n geographical locations within a preset range, where n is a positive integer less than or equal to m; Determine the n fine-tuning coefficients and n evaluation values ​​corresponding to the n geographical locations; Select the evaluation values ​​that are greater than a set threshold from the n evaluation values ​​to obtain k evaluation values, where k is a positive integer less than or equal to n; Determine the target mean of the k evaluation values; Obtain at least one fine-tuning coefficient corresponding to the target mean, and determine the target fine-tuning coefficient based on the at least one fine-tuning coefficient.

5. The apparatus according to claim 4, characterized in that, In determining the target operating parameters of the light source component corresponding to the target illumination parameters, the determining unit is specifically used for: Obtain the target air quality parameters for the target geographical location; Determine the target influencing factor corresponding to the target air quality parameter; The target illumination parameters are adjusted according to the target influence factor to obtain reference illumination parameters; Determine the target operating parameters of the light source component corresponding to the reference illumination parameters.

6. A globe, characterized in that, It includes a processor and a memory, the memory being used to store one or more programs and configured to be executed by the processor, the programs including instructions for performing the steps of the method as described in any one of claims 1-3.

7. A computer-readable storage medium, characterized in that, A computer program for storing electronic data interchange is provided, wherein the computer program causes a computer to perform the method as described in any one of claims 1-3.

Citation Information

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    CN102165848A