Control method and device of lighting system, vehicle and electronic equipment
Through the communication between the vehicle and the cloud server, the lighting effects of the vehicle ambient lights are updated using cloud configuration, which solves the problem that users cannot personalize the settings and lighting effects updates rely on the manufacturer's OTA, and realizes flexible control and dynamic updates, improving the user experience.
Patent Information
- Application Number
- CN202510470933.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2025-06-13
AI Technical Summary
The lighting effects of existing vehicle ambient lights are usually preset by the manufacturer, and users cannot make personalized settings. The lighting effects updates rely on the manufacturer's OTA upgrade, which has poor flexibility and reduces the user experience.
Through the communication connection between the vehicle and the cloud server, the lighting effect display effect of the vehicle ambient light is updated using the cloud configuration, so that the vehicle can realize remote flexible control and dynamic update of the lighting system. Users or manufacturers can define the configuration files of the lighting system to improve the user experience.
It realizes flexible control and dynamic updates of vehicle ambient lights, improves user experience, and reduces the dependence on OTA upgrades of manufacturers.
Smart Images

Figure CN120152124A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of intelligent vehicles, and particularly to a control method and device for a lighting system, a vehicle, and an electronic device. Background Art
[0002] As a device for decorating a vehicle and enhancing the atmosphere, a vehicle ambient light can display the environmental status of different temperature zones of the vehicle, that is, the ambient lights in different areas of the vehicle display different lighting effects according to the temperature and air volume in their sitting areas.
[0003] In the current display mode, the lighting effects of each ambient light are usually preset in the vehicle by the vehicle manufacturer, and users cannot perform personalized settings on them or the range that can be customized by users is small; the update of the lighting effects can only rely on the over-the-air (OTA) upgrade of the vehicle manufacturer, resulting in poor flexibility and reduced user experience. Summary of the Invention
[0004] This application mainly provides a control method and device for a lighting system, a vehicle, and an electronic device. The technical solution of this application is implemented as follows:
[0005] In a first aspect, a control method for a lighting system is provided. The lighting system includes a plurality of light-emitting devices distributed in multiple areas of a vehicle. The method is applied to the vehicle and includes: receiving a configuration script sent by a cloud server; updating the configuration information of the lighting system according to the configuration script; controlling the lighting system to work according to the configuration information; where the configuration information is used to indicate the correspondence between the lighting effect of a first light-emitting device in a first area among the multiple areas and the environmental information of the first area. The first area is one of the multiple areas, and the environmental information includes temperature information and / or air volume information of the first area; the lighting effect of the first light-emitting device includes at least one of the following: the light color, brightness, flowing mode, and flashing mode of the first light-emitting device.
[0006] According to the above technical means, based on the communication connection between the vehicle and the cloud server, the display effect of the vehicle ambient light changing with the vehicle environmental status is updated in a cloud configuration manner, enabling the vehicle to achieve remote flexible control and dynamic update of the presentation mode of the lighting system. The configuration file of the lighting system can be defined by the user or provided by the vehicle manufacturer, improving the user experience.
[0007] In some embodiments, before receiving the configuration script sent by the cloud server, the method further includes: in response to unlocking of the vehicle, sending a first request to the cloud server; the first request is used to instruct the cloud server to send the configuration script to the vehicle when there is an update to the configuration script.
[0008] According to the above technical means, the query process is actively triggered after the vehicle is unlocked, and the vehicle terminal refreshes the vehicle configuration according to whether the configuration is updated. By means of active query, the vehicle can respond in a timely manner to the update of the lighting configuration file, improving the user experience.
[0009] In some embodiments, before receiving the configuration script sent by the cloud server, the method further includes: receiving a first prompt message sent by the cloud server, where the first prompt message is sent by the cloud server when the vehicle is in the powered-on state and the configuration script has an update, and the first prompt message is used to indicate that the configuration script has an update; sending a first confirmation message to the cloud server so that the cloud server sends the configuration script.
[0010] According to the above technical means, when the lighting system configuration file is modified in the cloud and the vehicle is powered on, the cloud server pushes the configuration file, enabling the vehicle to perform seamless update, improving the user experience; only pushing to the powered-on vehicles reduces the pressure on the cloud server.
[0011] In some embodiments, after updating the configuration information of the lighting system according to the configuration script, the method further includes: sending an interface update request to the intelligent cockpit domain controller of the vehicle according to the configuration script, so that the intelligent cockpit domain controller refreshes the display interface of the vehicle console according to the interface update request.
[0012] According to the above technical means, the display interface of the vehicle console of the intelligent cockpit is refreshed based on the updated configuration script, enabling the user to configure the display effect of the lighting system on the vehicle console, improving the interactivity between the lighting system and the user.
[0013] In a second aspect, a control method for a lighting system is provided. The lighting system includes a plurality of lighting devices distributed in multiple areas of the vehicle. The method is applied to a cloud server and includes: sending the configuration script to the vehicle so that the vehicle updates the configuration information of the lighting system according to the configuration script, and controlling the lighting system to work according to the configuration information; where the configuration information is used to indicate the correspondence between the lighting effect of the first lighting device in the first area of the multiple areas and the environmental information of the first area, the first area is one of the multiple areas, and the environmental information includes the temperature information and / or air volume information of the first area; the lighting effect of the first lighting device includes at least one of the following: the lighting color, brightness, flowing water mode, and flashing mode of the first lighting device.
[0014] In some embodiments, before sending the configuration script to the vehicle, the method further includes: receiving a first request message, which is sent by the vehicle in response to the vehicle being unlocked; when there is an update to the configuration script, sending the configuration script in response to the first request message; or, when the vehicle is in a powered-on state and there is an update to the configuration script, sending a first prompt message to the vehicle, the first prompt message being used to indicate that there is an update to the configuration script; receiving a first confirmation message sent by the vehicle; and sending the configuration script in response to the first confirmation message.
[0015] In a third aspect, a control device for a lighting system is provided, wherein the lighting system includes a plurality of lighting devices distributed in multiple areas of a vehicle, the control device is applied to the vehicle, and the control device includes: a receiving unit, configured to receive a configuration script sent by a cloud server; an updating unit, configured to update configuration information of the lighting system according to the configuration script; and a control unit, configured to control the lighting system to operate according to the configuration information; wherein the configuration information is used to indicate the correspondence between the lighting effect of a first lighting device in a first area among the multiple areas and the environmental information of the first area, the first area being one of the multiple areas, and the environmental information includes temperature information and / or air volume information of the first area; the lighting effect of the first lighting device includes at least one of the following: the lighting color, brightness, flowing water mode, and flashing mode of the first lighting device.
[0016] In a fourth aspect, a control device for a lighting system is provided, the lighting system includes a plurality of lighting devices distributed in multiple areas of a vehicle, the device is applied to a cloud server, and the device includes: a first sending unit, configured to send the configuration script to the vehicle, so that the vehicle updates the configuration information of the lighting system according to the configuration script, and controls the lighting system to operate according to the configuration information; wherein the configuration information is used to indicate the correspondence between the lighting effect of a first lighting device in a first area among the multiple areas and the environmental information of the first area, the first area being one of the multiple areas, and the environmental information includes temperature information and / or air volume information of the first area; the lighting effect of the first lighting device includes at least one of the following: the lighting color, brightness, flowing water mode, and flashing mode of the first lighting device.
[0017] In a fifth aspect, a vehicle is provided, including: a lighting system, including a plurality of lighting devices distributed in multiple areas of the vehicle, and the control device as described in the third aspect.
[0018] In a sixth aspect, an electronic device is provided, including a memory and a processor. The memory is used to store a computer program, and the processor is used to execute the computer program to implement the method described in the first aspect. Description of the Drawings
[0019] Figure 1 is a functional block diagram of a vehicle in the related art;
[0020] Figure 2 is a schematic diagram of the distribution of an exemplary in-vehicle light;
[0021] Figure 3 is another schematic diagram of the distribution of an exemplary in-vehicle light;
[0022] Figure 4 is a schematic flowchart of the control method provided by an embodiment of the present application Figure 1 ;
[0023] Figure 5 is a schematic flowchart of the control method provided by an embodiment of the present application Figure 2 ;
[0024] Figure 6 is a schematic flowchart of the control method provided by an embodiment of the present application Figure 3 ;
[0025] Figure 7 is a schematic flowchart of the control method provided by an embodiment of the present application Figure 4 ;
[0026] Figure 8 is a schematic flowchart of the control method provided by an embodiment of the present application Figure 5 ;
[0027] Figure 9 is a schematic flowchart of the control method provided by an embodiment of the present application Figure 6 ;
[0028] Figure 10 is a schematic flowchart of the control method of an exemplary lighting system;
[0029] Figure 11 is a schematic flowchart of the control method of another exemplary lighting system;
[0030] Figure 12 is a schematic flowchart of the control method of yet another exemplary lighting system;
[0031] Figure 13 is a schematic flowchart of the control method of still another exemplary lighting system;
[0032] Figure 14Schematic structural diagram of the control device for the lighting system provided by an embodiment of the present application;
[0033] Figure 15 Schematic structural diagram of the control device for the lighting system provided by another embodiment of the present application;
[0034] Figure 16 Schematic structural diagram of the vehicle provided by an embodiment of the present application;
[0035] Figure 17 Schematic structural diagram of the electronic device provided by an embodiment of the present application. Detailed implementation manners
[0036] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the following will further describe the specific technical solutions of the application in detail with reference to the accompanying drawings in the embodiments of the present application. The following embodiments are used to illustrate the present application but are not intended to limit the scope of the present application.
[0037] In the following description, reference is made to "some embodiments", which describe a subset of all possible embodiments. However, it can be understood that "some embodiments" can be the same subset or different subsets of all possible embodiments, and can be combined with each other without conflict.
[0038] In the following description, the terms "first / second / third" are only used to distinguish different objects, and do not represent a specific order for the objects, and do not have the limitation of the order of precedence. It can be understood that "first / second / third" can be interchanged with a specific order or sequence when permitted, so that the embodiments of the present application described herein can be implemented in an order other than that illustrated or described herein.
[0039] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs. The terms used herein are only for the purpose of describing the embodiments of the present application and are not intended to limit the present application.
[0040] The embodiments of the present application provide a control method and device for a lighting system, a vehicle, and an electronic device. The control method and the control device are used to control the lighting system in the vehicle.
[0041] Therefore, before introducing the embodiments of the present application, the vehicle and the lighting system in the vehicle, and the problems thereof will be described in detail.
[0042] Figure 1 It is a functional block diagram of a vehicle 100 in the related art. The vehicle 100 may include various subsystems, such as a travel system 110, a control system 120, an interface device 130, a computer system 140, and a user interface 150, etc.
[0043] The propulsion system 110 provides power for the movement of the vehicle 100. The propulsion system 110 may include an engine 111 and a transmission mechanism 112. The engine 111 can be an internal combustion engine, an electric motor, or a combination of other types of engines, such as a hybrid engine composed of a gasoline engine and an electric motor.
[0044] The control system 120 controls the operation of the vehicle 100 and its components. For example, it includes a steering system, an accelerator, a braking unit, a sensor fusion algorithm, a computer vision system, a route control system, and an obstacle avoidance system, etc.
[0045] The vehicle 100 interacts with external sensors, other vehicles, other computer systems, or users through an interface device 130. The interface device 130 may include a wireless communication system 131, an on-vehicle computer 132, a microphone 133, and a speaker 134.
[0046] In some embodiments, the interface device 130 provides a means for the user of the vehicle 100 to interact with the user interface 150. For example, the on-vehicle computer 132 can provide information to the user of the vehicle 100. The user interface 150 can also operate the on-vehicle computer 132 to receive user input. The on-vehicle computer 132 can be operated through a touch screen. In other cases, the interface device 130 can provide a means for the vehicle 100 to communicate with other devices located inside the vehicle. For example, the microphone 133 can receive audio from the user of the vehicle 100 (e.g., voice commands or other audio inputs). Similarly, the speaker 134 can output audio to the user of the vehicle 100.
[0047] The wireless communication system 131 can communicate wirelessly with one or more devices directly or via a communication network. Alternatively, the wireless communication system 131 can also support data and signaling interaction between the vehicle and a cloud server.
[0048] The wireless communication system 131 can achieve wireless communication through an on-vehicle antenna. The wireless communication methods can be, for example, 4G cellular communication (such as long term evolution (LTE) communication technology), 5G cellular communication, etc. The wireless communication system 131 can also communicate with a wireless local area network (WLAN) using Wi-Fi through the on-vehicle antenna.
[0049] Some or all functions of the vehicle 100 are controlled by a computer system 140. The computer system 140 may include at least one processor 141, and the processor 141 executes instructions stored in a non-transitory computer-readable medium such as a data storage device. The computer system 140 can also be multiple computing devices that control individual components or subsystems of the vehicle 100 in a distributed manner.
[0050] A user interface 150 for providing information to or receiving information from a user of the vehicle 100. In one embodiment, the user interface 150 may include one or more input / output devices within the set of interface devices 130, such as a wireless communication system 131, an in-vehicle computer 132, a microphone 133, and a speaker 134.
[0051] It can be understood that the above components are only examples. In actual applications, the components in each of the above modules may be added or deleted according to actual needs. Figure 1 It should not be construed as a limitation to the embodiments of the present application.
[0052] It can also be understood that the above vehicle 100 can be a sedan, a truck, a bus, a ship, an airplane, a helicopter, a lawn mower, a recreational vehicle, a playground vehicle, a construction device, a tram, a golf cart, a train, or a trolley, etc. The embodiments of the present application do not make special limitations.
[0053] The lighting system may include an external lighting system and an internal lighting system. Among them, the external lighting system may include, for example, vehicle headlights, turn signals, brake lights, outline lights, fog lights, roof lights, license plate lights, and various decorative lights; the internal lighting system may include ambient lighting devices provided at positions such as the steering wheel, the center console, the roof, the welcome pedals, the seat backs, the doors, and the trunk of the vehicle. The manifestation forms of the internal lighting can be various, for example, it can be monochromatic, multiple, breathing rhythm, music rhythm, etc.
[0054] Figure 2 Shown is a schematic diagram of the distribution of an exemplary internal lighting. Figure 2 It is described with a vehicle having three rows of seats. As Figure 2 shown, the 16 ambient lights inside the vehicle are respectively ambient lights 201 - 216.
[0055] As Figure 2 shown, the ambient light 201 is located on the instrument panel in front of the driver's seat, the ambient light 202 is located on the instrument panel in front of the co-driver's seat, the ambient light 203 is located under the driver's seat, the ambient light 204 is located under the co-driver's seat, the ambient light 205 is located on the driver's door panel, the ambient light 206 is located on the co-driver's door panel, the ambient light 207 is located in front of the left seat in the second row, the ambient light 208 is located in front of the right seat in the second row, the ambient light 209 is located on the left door panel of the second row, the ambient light 210 is located on the right door panel of the second row, the ambient light 211 is located on one side of the middle armrest box close to the second row seats, the ambient light 212 is located in the middle of the left and right seats in the second row, the ambient light 213 is located in front of the left seat in the third row, the ambient light 214 is located in front of the right seat in the third row, the ambient light 315 is located on the left door panel of the third row, and the ambient light 316 is located on the right door panel of the third row.
[0056] The above-mentioned ambient lights can present different effects under the control of the vehicle's control system.
[0057] As an example, the lighting effects of multiple ambient lights can be associated with the audio currently playing in the vehicle. For example, the color of the ambient lights can be related to the loudness of the currently playing music. The higher the volume, the higher the brightness of the ambient lights. For another example, the ambient lights can also be partitioned and displayed according to the channel information of the playing music. When the left channel is playing, multiple ambient lights on the left side of the vehicle are lit. When the right channel is playing, multiple ambient lights on the right side of the vehicle are lit. For yet another example, the lighting effects of the ambient lights can also be related to the rhythm of the music. Multiple ambient lights can flash according to the rhythm of the music or present a flowing light effect.
[0058] As another example, the lighting effects of multiple ambient lights can also be related to the current state information of the vehicle. For example, the lighting effects of the ambient lights can be related to the current driving speed of the vehicle. It can display red when the vehicle speed is high and blue when the vehicle speed is low. Or, when the vehicle speed is high, the speed of the flowing light effect can be increased. For another example, the lighting effects of the ambient lights are related to the current gear of the vehicle. When the vehicle is in the parking gear, the ambient lights are displayed in red, and when in the driving gear, they are displayed in green.
[0059] As yet another example, multiple ambient lights can also be related to the external environmental information of the vehicle. For example, the lighting effects of the ambient lights can be controlled according to the temperature change outside the vehicle. When the outside temperature is high, the ambient lights display red. When the outside temperature is low, they display green. Or, when the weather is clear, they display blue. When it snows, they display white. When it rains, they present a flowing effect, etc.
[0060] In some embodiments, the lighting effects of the above-mentioned multiple ambient lights are related to the internal environmental information of the vehicle, which will be described in detail below.
[0061] Continue to refer to Figure 2 , in the vehicle 200, there are also provided multiple air vents 217 - 221, as well as a temperature sensor 222 and a temperature sensor 223.
[0062] The air vents 217 - 220 are respectively arranged in front of the driver's seat, the co-driver's seat, the left seat in the second row, and the right seat in the second row. The air vent 221 is arranged between the left seat and the right seat in the second row, and the air outlet direction is towards the third row seats.
[0063] The temperature sensor 222 is arranged on the vehicle instrument panel, and the temperature sensor 223 is arranged on the driver's seat.
[0064] By setting multiple air outlets in the vehicle, multi-zone control of the vehicle interior environment can be achieved. In order to more prominently display the differences between multiple zones and increase the entertainment in the vehicle at the same time, the equivalent setting of the ambient lights can be related to the environmental information in the vehicle, that is, the vehicle ambient lights change with the temperature zone.
[0065] In this technical solution, each ambient light is set to change according to the temperature and air volume of each temperature zone. More specifically, the ambient light changes color within the range of -10°C to 40°C. Define the ambient light colors corresponding to the highest temperature and the lowest temperature, and perform a smooth transition of colors according to the temperature change between the highest temperature and the lowest temperature; at the same time, the ambient light can present different effects according to different wind speeds. For example, different flowing water speeds are presented at different wind speeds.
[0066] Table 1 below shows Figure 2 the data sources of the temperature information and wind speed information corresponding to different ambient lights in, and each ambient light presents different lighting effects according to the corresponding temperature and wind speed.
[0067] Table 1
[0068] Ambient light number Temperature information acquisition source Air volume information acquisition source 201 Temperature sensor 222 Air outlet 217 202 Temperature sensor 222 Air outlet 218 203 Temperature sensor 223 Air outlet 217 204 Air outlet 218 Air outlet 218 205 Temperature sensor 223 Air outlet 217 206 Air outlet 218 Air outlet 218 207 Air outlet 3 Air outlet 219 208 Air outlet 220 Air outlet 220 209 Air outlet 219 Air outlet 219 210 Air outlet 220 Air outlet 220 211 Air outlet 219 Air outlet 219 212 Air outlet 219 Air outlet 219 213 Air outlet 221 Air outlet 221 214 Air outlet 221 Air outlet 221 215 Air outlet 221 Air outlet 221 216 Air outlet 221 Air outlet 221
[0069] When applied to a vehicle, the air conditioning system reports the temperature and air direction of each air outlet to the intelligent cockpit domain controller of the vehicle, and each temperature sensor reports the temperature information it collects to the intelligent cockpit domain controller. The intelligent cockpit domain controller determines relevant parameters such as the color and flowing water effect of each ambient light according to the received environmental information of different temperature zones, and controls each ambient light to be displayed.
[0070] In some scenarios, such as Figure 3 shown, a child safety seat 230 is also provided in the vehicle 200, Figure 3 and it is illustrated by taking the case where the safety seat is located at the left seat in the third row as an example. In this scenario, a temperature sensor 224 is also provided in the vehicle, which is located above the child safety seat 230 and is used to detect the temperature of the area where the child is located.
[0071] In Figure 3 the scenario shown, the lighting effect of the driver's seat temperature zone is linked to display for the rear row child safety seat, that is, the lighting effect of the ambient lights in the driver's area is determined by the temperature information of the area where the child is located. The driver's area includes ambient lights 201, 203, and 205, and the sources of their temperature information and air volume information are shown in Table 2 below.
[0072] Table 2
[0073] Ambient light number Temperature information acquisition source Air volume information acquisition source 201 Temperature sensor 224 Air outlet 221 203 Temperature sensor 224 Air outlet 221 205 Temperature sensor 224 Air outlet 221
[0074] In this scenario, the color of the ambient light can be adjusted. For example, different colors can be displayed when the temperature is too high, too low, or normal.
[0075] In some scenarios, according to the differences among the people in each area, the ambient light can also be displayed with different lighting effects. For example, when there are children sitting in the back row, the colors corresponding to different temperatures can be set to be relatively bright and beautiful colors, and the presentation mode of the ambient light can also change from flowing water to flashing. When the air volume is large, the flashing speed can be increased.
[0076] The above technical solution of controlling the ambient light to display different lighting effects according to the temperature zone difference in various scenarios can increase the interest and the sense of atmosphere inside the vehicle, enhancing the user experience. However, there are still some problems with the above technical solution, which will be described in detail below.
[0077] In the above control scheme of the ambient light, the lighting effects of each ambient light are usually preset in the vehicle by the vehicle manufacturer, and users cannot perform personalized settings on them or the scope for users to customize settings is small; the update of the lighting effects can only rely on the over-the-air (OTA) upgrade of the vehicle manufacturer, resulting in poor flexibility and reducing the user experience.
[0078] In view of the above problems, the embodiments of the present application provide a control method and device for a lighting system, a vehicle, and an electronic device. The technical solution of the present application will be described in detail with reference to the accompanying drawings below.
[0079] The embodiments of the present application first provide a control method for a lighting system, which can be executed by a vehicle or a cloud server. Figure 4 It is a schematic flowchart of the control method provided by the embodiments of the present application. It should be noted that, for the sake of easy understanding, the following description is from the perspective of the interaction between the vehicle 410 and the cloud server 420.
[0080] The vehicle 410 includes a lighting system 411, and the lighting system 411 includes a plurality of light-emitting devices distributed in multiple areas of the vehicle.
[0081] It should also be noted that the steps executed by the vehicle 410 can be executed by a controller in the vehicle 410, and this controller can be executed by, for example, the vehicle domain controller 412. Figure 4 The method in includes steps S401 - S403.
[0082] In step S401, the cloud server sends a configuration script to the vehicle.
[0083] This configuration script can be actively sent by the cloud server, or this configuration script can be sent by the cloud server in response to the update request of the vehicle. These two methods will be described in detail later.
[0084] In the embodiments of the present application, the configuration script can be custom - set by the user on a mobile terminal device such as a mobile phone and then uploaded to the cloud server; alternatively, the configuration script can be uploaded to the cloud server by the vehicle manufacturer or a third - party service provider; or, the configuration script can be a configuration file of the light effect subscribed by the user in an application store (or service store).
[0085] The vehicle can interact with the configuration script in real - time or timely through the communication connection with the cloud server.
[0086] In step S402, the vehicle updates the configuration information of the lighting system according to the received configuration script.
[0087] The configuration information is used to indicate the correspondence between the light effect of the first lighting device in the first area among multiple areas and the environmental information of the first area, and defines the parameters and operation rules of the lighting system.
[0088] The above - mentioned first area can be any one of multiple areas in the vehicle, and the first lighting device is the lighting device corresponding to this area; for example, in the Figure 2 scenario shown, the first lighting device can be any one of the ambient lights 201 - 216. The above - mentioned environmental information includes temperature information and / or air volume information.
[0089] The mapping relationship between each lighting device and the corresponding environmental information can be seen in Table 1 and Table 2 above, which will not be elaborated here.
[0090] The light effect of the first lighting device can include any one or more of the light color, brightness, flowing water mode, and flashing mode.
[0091] Taking the light color as an example, the correspondence between the light effect of the first lighting device and the environmental information can be that the first lighting device presents different colors at different temperatures, and this correspondence can be defined by the user or provided by the vehicle manufacturer or a third - party service provider.
[0092] For example, in the aforementioned related technology, the correspondence between the color of the ambient light and the temperature is: showing red when the temperature is high and showing blue when the temperature is low, and this correspondence is relatively fixed. In the embodiments of the present application, this correspondence can be defined by the user himself. As an example, different color temperatures can be shown in different seasons, for example, showing cold colors in summer and warm colors in winter; different temperature ranges respectively correspond to different colors.
[0093] For another example, in the related art, the ambient light can display a flowing water effect at different speeds according to different air volumes, and this way is relatively monotonous. In the technical solution of the embodiment of the present application, the user can define various parameters of the flowing water effect of the ambient light, for example, can control the flowing water lamp to change in different directions, etc.
[0094] The controller of the vehicle obtains the configuration information of the lighting system according to the received configuration script, and updates the configuration information stored in the storage unit of the controller. This storage unit can be, for example, an electrically erasable programmable read-only memory (EEPROM).
[0095] In step S403, according to the configuration information, control the lighting system to work.
[0096] After the vehicle updates the configuration information stored in itself, control a plurality of light-emitting devices to display in the manner indicated by the configuration information.
[0097] In the above technical solution provided by the embodiment of the present application, based on the communication connection between the vehicle and the cloud server, the display effect of the vehicle ambient light changing with the vehicle environment state is updated through cloud configuration, so that the vehicle can realize remote flexible control and dynamic update of the presentation mode of the lighting system. The configuration file of the lighting system can be defined by the user or provided by the vehicle manufacturer, improving the user experience.
[0098] In some embodiments, as Figure 5 shown, before receiving the configuration script sent by the cloud server in step S401, the method further includes steps S501 and S502.
[0099] In step S501, after the vehicle is unlocked, send a first request message to the cloud server.
[0100] After the vehicle is unlocked, the control unit and communication-related unit in the vehicle are powered on, establish a communication connection with the cloud server, and send a first request message based on this communication connection. This first request message is used to instruct the cloud server to send a configuration script to the vehicle when there is an update to the configuration script.
[0101] In step S502, the cloud server receives the first request message, queries whether there is an update to the configuration script according to the first request message, and if so, executes step S401.
[0102] The above first request message may carry the identity identification information of the vehicle and / or the vehicle owner, as well as the version of the configuration information of the existing lighting system in the vehicle. The cloud server can determine relevant information such as the model of the vehicle that sent the first request message based on this first request message; the cloud server retrieves the latest version of the configuration script from the database according to the model of the vehicle and the version of the configuration information currently present in the vehicle. After retrieving the configuration script, subsequent steps are executed and it is sent to the vehicle.
[0103] According to the above technical means, the query process is actively triggered after the vehicle is unlocked, and the vehicle terminal refreshes the vehicle configuration according to whether the configuration is updated. Through the active query method, the vehicle can respond in a timely manner to the update of the lighting configuration file, improving the user experience.
[0104] In some embodiments, as Figure 6 shown, before receiving the configuration script sent by the cloud server in step S401, the method further includes steps S601 - S602.
[0105] In step S601, the cloud server sends a first prompt message to the vehicle. This first prompt message is sent by the cloud server when the vehicle is in the powered - on state and there is an update to the configuration script, and is used to indicate that there is an update to the configuration script.
[0106] The method of this embodiment is applied to the scenario where the cloud server pushes an update to the configuration script to the vehicle. When the vehicle is in the powered - on state, it will establish a network connection with the cloud server. There is signaling interaction between the vehicle and the cloud server during the process of establishing the network connection, and the cloud server can determine that the vehicle is in the powered - on state based on the received signaling sent by the vehicle. The cloud server can send the above - mentioned first prompt message in the form of a PUSH message.
[0107] In step S602, the vehicle sends a first confirmation message to the cloud server so that the cloud server sends the updated configuration script.
[0108] It can be understood that after the vehicle receives the aforementioned first prompt message, the vehicle can send the first confirmation message to the vehicle itself, or can send the first confirmation message after the user confirms. For example, the user can set the automatic update function to be turned on or off in the in - vehicle computer. When the automatic update function is turned on, the vehicle performs automatic update after receiving the first prompt message and immediately sends a confirmation message; when the automatic update function is turned off, the vehicle sends a reminder to the user after receiving the first prompt message. The way of this reminder can be, for example, voice broadcast in the vehicle or a prompt message popping up on the in - vehicle computer or dashboard, or, as a possible implementation, a prompt message can be sent to the user's mobile terminal device. When the user agrees to the update, the vehicle sends a first confirmation message.
[0109] After receiving the above first confirmation message, the cloud server sends an updated configuration script to the vehicle.
[0110] According to the above technical means, when the lighting system configuration file is modified in the cloud and the vehicle is powered on, the cloud server pushes the configuration file, enabling the vehicle to perform seamless updates and enhancing the user experience; only pushing to the powered-on vehicles reduces the pressure on the cloud server.
[0111] In some embodiments, as Figure 7 shown, after updating the configuration information of the lighting system according to the above configuration script in step S402, the method further includes steps S701 - S702.
[0112] In step S701, according to the configuration script, an interface update request is sent to the intelligent cockpit domain controller of the vehicle.
[0113] It can be understood that the lighting system of the vehicle can be set not only on mobile terminal devices such as mobile phones but also on the in-vehicle computer. For example, users can adjust the parameters of each lighting device in the lighting system through operations such as tapping and swiping on the in-vehicle computer screen.
[0114] In step S702, the intelligent cockpit domain controller refreshes the display interface of the in-vehicle computer according to the interface request.
[0115] According to the above technical means, refreshing the in-vehicle computer interface of the intelligent cockpit based on the updated configuration script enables users to configure the display effect of the lighting system on the in-vehicle computer, enhancing the interactivity between the lighting system and users.
[0116] Figure 8 is a schematic flowchart of a control method for a lighting system provided by an embodiment of the present application. The lighting system includes multiple lighting devices distributed in multiple areas of the vehicle. Figure 8 The method in is applied to the vehicle and includes steps S810 - S830.
[0117] In step S810, a configuration script sent by the cloud server is received.
[0118] In step S820, according to the configuration script, the configuration information of the lighting system is updated;
[0119] In step S830, according to the configuration information, the lighting system is controlled to operate.
[0120] Among them, the configuration information is used to indicate the correspondence between the lighting effect of the first lighting device in the first area among the multiple areas and the environmental information of the first area. The first area is one of the multiple areas, and the environmental information includes temperature information and / or air volume information of the first area.
[0121] The lighting effects of the first lighting device include at least one of the following: the lighting color, brightness, flowing water mode, and flashing mode of the first lighting device.
[0122] In some embodiments, before receiving the configuration script sent by the cloud server in step S810, the method further includes:
[0123] In response to unlocking the vehicle, sending a first request to the cloud server; the first request is used to instruct the cloud server to send the configuration script to the vehicle when there is an update to the configuration script.
[0124] In some embodiments, before receiving the configuration script sent by the cloud server in step S810, the method further includes:
[0125] Receiving a first prompt message sent by the cloud server, where the first prompt is sent by the cloud server when the vehicle is in the powered-on state and there is an update to the configuration script, and the first prompt message is used to indicate that there is an update to the configuration script.
[0126] Sending a first confirmation message to the cloud server to cause the cloud server to send the configuration script.
[0127] In some embodiments, after updating the configuration information of the lighting system according to the configuration script in step S820, the method further includes:
[0128] Sending an interface update request to the intelligent cockpit domain controller of the vehicle according to the configuration script, so that the intelligent cockpit domain controller refreshes the display interface of the vehicle according to the interface update request.
[0129] Figure 9 is a schematic flowchart of a control method for a lighting system provided in another embodiment of the present application. The lighting system includes a plurality of lighting devices distributed in multiple areas of the vehicle. Figure 9 The method in is applied to a cloud server, and the method includes:
[0130] Step S910, sending the configuration script to the vehicle. The configuration script is used to cause the vehicle to update the configuration information of the lighting system according to the configuration script, and to control the operation of the lighting system according to the configuration information;
[0131] Wherein, the configuration information is used to indicate the correspondence between the lighting effects of the first lighting device in the first area of the multiple areas and the environmental information of the first area. The first area is one of the multiple areas, and the environmental information includes the temperature information and / or air volume information of the first area;
[0132] The lighting effects of the first lighting device include at least one of the following: the lighting color, brightness, flowing water mode, and flashing mode of the first lighting device.
[0133] In some embodiments, before sending the configuration script to the vehicle, the method further includes: receiving a first request message, which is sent by the vehicle in response to vehicle unlocking; and sending the configuration script in response to the first request message when there is an update to the configuration script.
[0134] In some embodiments, before sending the configuration script to the vehicle, the method further includes: when the vehicle is in a powered-on state and there is an update to the configuration script, sending a first prompt message to the vehicle, where the first prompt message is used to indicate that there is an update to the configuration script; receiving a first confirmation message sent by the vehicle; and sending the configuration script in response to the first confirmation message.
[0135] The following Figures 10 - 13 further describes the technical solution of the present application.
[0136] Figure 10 is a schematic flowchart of a control method for an exemplary lighting system, Figure 10 and the method in
[0137] In step S1001, the air conditioner reports the temperatures and air volumes of different temperature zones to the intelligent cockpit domain controller.
[0138] In step S1002, the temperature sensor reports the temperature detection value to the intelligent cockpit domain controller.
[0139] In step S1003, the intelligent cockpit domain controller makes a logical judgment to determine whether it is necessary to adjust the ambient light colors of each temperature zone.
[0140] In steps S1004 and S1005, the intelligent cockpit domain controller sends color settings and flowing water effect settings for different temperature zones to the ambient light.
[0141] In step S1006, the ambient light responds to the received setting effects.
[0142] Figure 11 is a schematic flowchart of a control method for an exemplary lighting system, Figure 11 and the method in
[0143] In step S1101, the user configures a new associated scenario and sends the associated scenario to the cloud server.
[0144] In step S1102, the cloud server stores the associated scenario and generates a configuration script.
[0145] In step S1103, the cloud server sends the configuration script to the intelligent cockpit domain controller.
[0146] In step S1104, the intelligent cockpit domain controller performs script storage and verification.
[0147] In step S1105, the intelligent cockpit and the controller send a response message to the cloud server.
[0148] In step S1106, the air conditioner reports the temperature and air volume of different temperature zones to the intelligent cockpit domain controller.
[0149] In step S1107, the temperature sensor reports the temperature detection value to the intelligent cockpit domain controller.
[0150] In step S1108, the intelligent cockpit domain controller makes a logical judgment to determine whether it is necessary to adjust the ambient light color of each temperature zone.
[0151] In steps S1109 and S1110, the intelligent cockpit domain controller sends color settings and flowing water effect settings for different temperature zones to the ambient light.
[0152] In step S1111, the ambient light responds to the received setting effect.
[0153] Figure 12 It is a schematic flowchart of a control method for an exemplary lighting system. This method is applied to the scenario of the vehicle actively triggering the query process, and the vehicle end master controller can refresh the vehicle end configuration according to whether the configuration is updated.
[0154] Figure 12 The method in includes steps S1201 - S1209.
[0155] In step S1201, the user unlocks the vehicle.
[0156] In step S1202, the vehicle domain controller reads the temperature - linked ambient light configuration file from the cloud server.
[0157] In step S1203, the cloud server feeds back the configuration file to the vehicle domain controller.
[0158] In step S1204, the vehicle domain controller updates and memorizes the ambient light - related settings.
[0159] In step S1205, the vehicle domain controller sends an interface update request to the intelligent cockpit domain controller.
[0160] In step S1206, the intelligent cockpit domain controller sends a response message to the vehicle domain controller.
[0161] In step S1207, the intelligent cockpit domain controller displays a refresh.
[0162] In step S1208, the vehicle domain controller controls the ambient light according to the updated rules.
[0163] In step S1209, the ambient light gives a status feedback to the vehicle domain controller.
[0164] Figure 13 It is a schematic flowchart of a control method for another exemplary lighting system, and this method is applied to the scenario of cloud push. Figure 13 The method includes steps S1301 - S1309.
[0165] In step S1301, the cloud server sends a prompt message to the vehicle domain controller, prompting that the configuration file has been updated.
[0166] In step S1302, the vehicle domain controller reads the temperature - linked ambient light configuration file from the cloud server.
[0167] In step S1303, the cloud server gives a feedback of the configuration file to the vehicle domain controller.
[0168] In step S1304, the vehicle domain controller updates and memorizes the settings related to the ambient light.
[0169] In step S1305, the vehicle domain controller sends an interface update request to the intelligent cockpit domain controller.
[0170] In step S1306, the intelligent cockpit domain controller sends a response message to the vehicle domain controller.
[0171] In step S1307, the intelligent cockpit domain controller refreshes the display.
[0172] In step S1308, the vehicle domain controller controls the ambient light according to the updated rules.
[0173] In step S1309, the ambient light gives a status feedback to the vehicle domain controller.
[0174] In the embodiments of the present application, cloud configuration provides methods such as point - to - point configuration or batch configuration to meet different requirements. Among them, point - to - point configuration is applicable to scenarios where users customize through the mobile phone or purchase in the mall, etc. Batch push is applicable to vehicle manufacturers to push new overall functions, such as adding ambient light design effects with different effects, etc.
[0175] Through the above - mentioned cloud configuration method, the flexibility of the presentation method is greatly improved, and various different modes can be provided to set off the in - vehicle environment.
[0176] As described above in conjunction with Figures 1 - 13 The method embodiments of the present application have been introduced. Next, the device embodiments of the present application will be described in detail with reference to the accompanying drawings. It should be understood that the description of the device embodiments corresponds to that of the method embodiments. Therefore, for parts not described in detail, reference can be made to the foregoing method embodiments.
[0177] Figure 14 It is a schematic structural diagram of a control device for a lighting system provided by an embodiment of the present application. The lighting system includes a plurality of light-emitting devices distributed in multiple areas of a vehicle. The control device is applied to the vehicle, and the control device may be a domain controller in the vehicle. Figure 14 The control device 1400 in
[0178] A receiving unit 1410, configured to receive a configuration script sent by a cloud server.
[0179] An updating unit 1420, configured to update the configuration information of the lighting system according to the configuration script.
[0180] A control unit 1430, configured to control the lighting system to work according to the configuration information.
[0181] Wherein, the configuration information is used to indicate the correspondence between the lighting effect of the first light-emitting device in the first area among the multiple areas and the environmental information of the first area. The first area is one of the multiple areas, and the environmental information includes the temperature information and / or air volume information of the first area.
[0182] The lighting effect of the first light-emitting device includes at least one of the following: the light color, brightness, flowing water mode, and flashing mode of the first light-emitting device.
[0183] Figure 15 It is a schematic structural diagram of a control device for a lighting system provided by another embodiment of the present application. The lighting system includes a plurality of light-emitting devices distributed in multiple areas of a vehicle. The control device is applied to a cloud server. Figure 15 The control device 1500 in
[0184] A first sending unit 1510, configured to send the configuration script to the vehicle, so that the vehicle updates the configuration information of the lighting system according to the configuration script, and controls the lighting system to work according to the configuration information.
[0185] Wherein, the configuration information is used to indicate the correspondence between the lighting effect of the first light-emitting device in the first area among the multiple areas and the environmental information of the first area. The first area is one of the multiple areas, and the environmental information includes the temperature information and / or air volume information of the first area.
[0186] The lighting effect of the first light-emitting device includes at least one of the following: the light color, brightness, flowing water mode, and flashing mode of the first light-emitting device.
[0187] As Figure 16 shown, an embodiment of the present application also provides a vehicle.Figure 16 The vehicle 1600 therein includes a lighting system 1610 and a control device 1620. Among them, the lighting system 1610 includes a plurality of light-emitting devices distributed in multiple areas of the vehicle. The control device 1620 can be Figure 14 the control device 1400 therein.
[0188] Figure 17 is a schematic structural diagram of an electronic device provided by an embodiment of the present application. As Figure 17 shown, the hardware entities of the electronic device 1700 include: a processor 1710 and a memory 1720. Among them, the memory 1720 stores a computer program that can run on the processor 1710. When the processor 1710 executes the program, it implements the steps in the method of any of the above embodiments.
[0189] The vehicle 1700 may further include a transceiver 1730. The processor 1710 can communicate with other devices or chips through the transceiver 1730. For example, the processor 1710 can perform data transmission and reception with other devices or chips through the transceiver 1730.
[0190] In some embodiments, the processor 1710 can be an in-vehicle controller in the vehicle, or, the processor 1710 can also be Figure 14 the control device 1400 therein.
[0191] The memory 1720 stores a computer program that can run on the processor. The memory 1720 is configured to store instructions and applications executable by the processor 1710, and can also cache data to be processed or already processed by the processor 1710 and each module in the electronic device 1700 (for example, image data, audio data, voice communication data, and video communication data), and can be implemented by flash memory (FLASH) or random access memory.
[0192] In one embodiment, the electronic device 1700 can be a vehicle or a device deployed in a vehicle, such as an in-vehicle controller.
[0193] An embodiment of the present application provides a computer storage medium. The computer storage medium stores one or more programs, and the one or more programs can be executed by one or more processors to implement the steps of the control method of the in-vehicle massage seat in any of the above embodiments.
[0194] It should be noted here that: the descriptions of the above storage medium and device embodiments are similar to the descriptions of the above method embodiments, and have similar beneficial effects to the method embodiments. For the technical details not disclosed in the storage medium and device embodiments of the present application, please refer to the descriptions of the method embodiments of the present application for understanding.
[0195] The above-mentioned processor may be at least one of an application specific integrated circuit (ASIC), a digital signal processor (DSP), a digital signal processing device (DSPD), a programmable logic device (PLD), a field programmable gate array (FPGA), a central processing unit (CPU), a controller, a microcontroller, and a microprocessor. It can be understood that the electronic device implementing the functions of the above-mentioned processor may also be others, and the embodiments of the present application do not make specific limitations.
[0196] The above-mentioned computer storage medium / memory may be a read-only memory, a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a ferromagnetic random access memory (FRAM), a flash memory, a magnetic surface memory, an optical disc, or a compact disc read-only memory (CD ROM), etc.
[0197] The embodiments of the present application provide a computer program, including computer-readable code. When the computer-readable code runs in an electronic device, the processor in the electronic device executes to implement some or all of the steps in the above-mentioned method.
[0198] An embodiment of the present application provides a computer program product. The computer program product includes a non-transitory computer-readable storage medium storing a computer program. When the computer program is read and executed by a computer, some or all of the steps in the above method are implemented. The computer program product can be specifically implemented in the form of hardware, software, or a combination thereof. In some embodiments, the computer program product is specifically embodied as a computer storage medium. In other embodiments, the computer program product is specifically embodied as a software product, such as a software development kit (SDK), etc.
[0199] It should be understood that the "one embodiment" or "an embodiment" mentioned throughout the specification means that a specific feature, structure, or characteristic related to the embodiment is included in at least one embodiment of the present application. Therefore, the "in one embodiment" or "in an embodiment" that appears throughout the specification does not necessarily refer to the same embodiment. In addition, these specific features, structures, or characteristics can be combined in one or more embodiments in any suitable manner. It should be understood that in various embodiments of the present application, the magnitude of the serial numbers of the above steps / processes does not mean the order of execution. The order of execution of each step / process should be determined by its function and internal logic, and should not constitute any limitation to the implementation process of the embodiments of the present application. The serial numbers of the embodiments of the present application above are only for description and do not represent the advantages or disadvantages of the embodiments.
[0200] It should be noted that in this article, the term "comprising", "including" or any other variant thereof is intended to cover a non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the phrase "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the element.
[0201] In several embodiments provided by the present application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are only illustrative. For example, the division of the units is only a logical function division. In actual implementation, there may be other division methods, such as: multiple units or components can be combined, or can be integrated into another system, or some features can be ignored, or not executed. In addition, the coupling, direct coupling, or communication connection between the components shown or discussed with each other can be through some interfaces. The indirect coupling or communication connection of the devices or units can be electrical, mechanical, or other forms.
[0202] The units described above as separate components may or may not be physically separated, and the components shown as units may or may not be physical units; they may be located in one place or distributed across multiple network units; some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0203] In addition, each functional unit in the embodiments of the present application may be all integrated in a processing unit, or each unit may be separately regarded as a unit, or two or more units may be integrated in one unit; the above-mentioned integrated units may be implemented in the form of hardware, or in the form of a combination of hardware and software functional units.
[0204] Those of ordinary skill in the art can understand that all or part of the steps of implementing the above method embodiments can be completed by hardware related to program instructions. The foregoing program can be stored in a computer-readable storage medium. When the program is executed, it performs the steps including the above method embodiments; and the foregoing storage medium includes: removable storage devices, read-only memory (ROM), magnetic disks, or optical disks and other various media that can store program codes.
[0205] Alternatively, if the above-mentioned integrated units of the present application are implemented in the form of software functional modules and sold or used as independent products, they can also be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application, in essence or the part that contributes to the related technology, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to enable a vehicle-mounted terminal (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the methods described in the embodiments of the present application. And the foregoing storage medium includes: removable storage devices, ROM, magnetic disks, or optical disks and other various media that can store program codes.
[0206] The above is only the implementation manner of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present application can easily think of changes or substitutions, which should all be covered by the protection scope of the present application.
Claims
1. A method for controlling a lighting system, characterized in that: The lighting system includes a plurality of light emitting devices distributed in a plurality of areas of a vehicle. The method is applied to the vehicle, and the method includes: Receive the configuration script sent by the cloud server; According to the configuration script, update the configuration information of the lighting system; Controlling the lighting system to work according to the configuration information; The configuration information is used to indicate a correspondence between a lighting effect of a first light-emitting device in a first area of the multiple areas and environmental information of the first area, the first area being one of the multiple areas, and the environmental information including temperature information and / or wind volume information of the first area; The lighting effect of the first light-emitting device includes at least one of the following: light color, brightness, flowing mode and flashing mode of the first light-emitting device.
2. The method according to claim 1, characterized in that Before receiving the configuration script sent by the cloud server, the method further includes: In response to the vehicle being unlocked, sending a first request to the cloud server; The first request is used to instruct the cloud server to send the configuration script to the vehicle when there is an update to the configuration script.
3. The method according to claim 1, characterized in that Before receiving the configuration script sent by the cloud server, the method further includes: receiving a first prompt message sent by the cloud server, wherein the first prompt message is sent by the cloud server when the vehicle is powered on and the configuration script is updated, and the first prompt message is used to indicate that the configuration script is updated; Sending first confirmation information to the cloud server so that the cloud server sends the configuration script.
4. The method according to any one of claims 1 to 3, characterized in that After updating the configuration information of the lighting system according to the configuration script, the method further includes: An interface update request is sent to the smart cockpit domain controller of the vehicle according to the configuration script, so that the smart cockpit domain controller refreshes the display interface of the vehicle computer according to the interface update request.
5. A method for controlling a lighting system, characterized in that: The lighting system includes a plurality of light emitting devices distributed in a plurality of areas of the vehicle. The method is applied to a cloud server, and the method includes: Sending the configuration script to the vehicle, so that the vehicle updates the configuration information of the lighting system according to the configuration script, and controls the operation of the lighting system according to the configuration information; The configuration information is used to indicate a correspondence between a lighting effect of a first light-emitting device in a first area of the multiple areas and environmental information of the first area, the first area being one of the multiple areas, and the environmental information including temperature information and / or wind volume information of the first area; The lighting effect of the first light-emitting device includes at least one of the following: light color, brightness, flowing mode and flashing mode of the first light-emitting device.
6. The method according to claim 5, characterized in that Before sending the configuration script to the vehicle, the method further includes: receiving a first request message, the first request message being sent by the vehicle in response to unlocking the vehicle; When there is an update to the configuration script, sending the configuration script in response to the first request message; or, When the vehicle is powered on and the configuration script is updated, sending a first prompt message to the vehicle, where the first prompt message is used to indicate that the configuration script is updated; receiving a first confirmation message sent by the vehicle; In response to the first confirmation message, the configuration script is sent.
7. A control device for a lighting system, characterized in that: The lighting system includes a plurality of light emitting devices distributed in a plurality of areas of a vehicle, and the control device is applied to the vehicle, and the control device includes: A receiving unit, used for receiving a configuration script sent by a cloud server; An updating unit, configured to update the configuration information of the lighting system according to the configuration script; A control unit, used to control the operation of the lighting system according to the configuration information; The configuration information is used to indicate a correspondence between a lighting effect of a first light-emitting device in a first area of the multiple areas and environmental information of the first area, the first area being one of the multiple areas, and the environmental information including temperature information and / or wind volume information of the first area; The lighting effect of the first light-emitting device includes at least one of the following: light color, brightness, flowing mode and flashing mode of the first light-emitting device.
8. A control device for a lighting system, the lighting system comprising a plurality of light-emitting devices distributed in a plurality of areas of a vehicle, the device being applied to a cloud server, the device comprising: A first sending unit, configured to send the configuration script to the vehicle, so that the vehicle updates the configuration information of the lighting system according to the configuration script, and controls the operation of the lighting system according to the configuration information; The configuration information is used to indicate a correspondence between a lighting effect of a first light-emitting device in a first area of the multiple areas and environmental information of the first area, the first area being one of the multiple areas, and the environmental information including temperature information and / or wind volume information of the first area; The lighting effect of the first light-emitting device includes at least one of the following: light color, brightness, flowing mode and flashing mode of the first light-emitting device.
9. A vehicle, characterized in that: include: a lighting system comprising a plurality of light emitting devices distributed in a plurality of areas of the vehicle; as well as, A control device as claimed in claim 7.
10. An electronic device, characterized in that: The device comprises a memory and a processor, wherein the memory is used to store a computer program, and the processor is used to execute the computer program to implement the method according to any one of claims 1 to 4.