Light emission control method, apparatus, storage medium, and electronic device
By acquiring the vehicle's motion status and controlling the light-emitting mode of the light-emitting device, the problem of motion sickness caused by the mismatch of passenger sensory information was solved, achieving the effect of matching passenger sensory information and reducing motion sickness.
Patent Information
- Application Number
- CN202310250718.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-14
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2043-03-14
AI Technical Summary
Motion sickness in autonomous driving technology causes discomfort to passengers due to a mismatch between sensory information, and existing technologies have difficulty effectively solving this problem.
By acquiring the vehicle's motion state, determining the target light-emitting part and controlling its light-emitting mode, the motion state perceived by the passenger through visual perception is matched with that perceived by the vestibular organs, and the motion state of the vehicle is presented by the light-emitting part of the light-emitting device.
It reduces motion sickness symptoms in passengers, matches passengers' sensory information, and improves the riding experience.
Smart Images

Figure CN116176472B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application belongs to the technical field of electronics, and particularly relates to a light emission control method and device, a computer readable storage medium, and an electronic device. BACKGROUND
[0002] With the increasing maturity of automatic driving technology, motion sickness has gradually become a hot topic in the automotive industry. There are various explanations for the causes of motion sickness, among which the most widely accepted Sensory Conflict Theory believes that motion sickness is caused by the mismatch of various sensory information received by individuals. For example, a passenger sitting in the car perceives that the car is moving through the vestibular organ, while in his vision the car is indeed relatively stationary (especially in the case of being blocked by the front row of seats), and then the mismatch of sensory information causes his motion sickness, therefore, it is necessary to eliminate the mismatch of sensory information of the corresponding organs to alleviate the motion sickness of the passenger. SUMMARY
[0003] The embodiments of the present application provide a light emission control method, device, storage medium and electronic device, which can alleviate the motion sickness of the passenger.
[0004] In a first aspect, the embodiments of the present application provide a light emission control method applied to an electronic device, comprising:
[0005] obtaining a motion state of a vehicle;
[0006] determining a target light emitting part needing light emission from a plurality of light emitting parts included in a light emitting device according to the motion state;
[0007] determining a light emission mode of the target light emitting part;
[0008] controlling the target light emitting part to emit light in the light emission mode.
[0009] In a second aspect, the embodiments of the present application provide a light emission control device applied to an electronic device, comprising:
[0010] a state obtaining module configured to obtain a motion state of a vehicle;
[0011] a light emitting part determining module configured to determine a target light emitting part needing light emission from a plurality of light emitting parts included in a light emitting device according to the motion state;
[0012] a mode determining module configured to determine a light emission mode of the target light emitting part;
[0013] a light emission control module configured to control the target light emitting part to emit light in the light emission mode.
[0014] In a third aspect, an embodiment of the present application provides a computer readable storage medium, having stored thereon a computer program, which, when executed on a computer, causes the computer to perform the light emitting control method provided by an embodiment of the present application.
[0015] In a fourth aspect, an embodiment of the present application further provides an electronic device, comprising a memory and a processor, wherein the processor is configured to perform the light emitting control method provided by an embodiment of the present application by invoking a computer program stored in the memory.
[0016] In an embodiment of the present application, the motion state of the carrier is acquired, the target light emitting part that needs to emit light is determined from a plurality of light emitting parts included in the light emitting device according to the motion state, the light emitting mode of the target light emitting part is determined, and the target light emitting part emits light according to the light emitting mode. Therefore, the passenger on the carrier only needs to observe the light emitted by the target light emitting part to visually perceive the motion state of the carrier, so as to match the motion state of the carrier perceived by the vestibular organ, that is, to match the sensory information of the corresponding organs of the passenger, so as to alleviate the motion sickness of the passenger. BRIEF DESCRIPTION OF DRAWINGS
[0017] The technical solutions of the present application and the beneficial effects thereof will become apparent through the following detailed description of the specific embodiments of the present application in combination with the accompanying drawings.
[0018] Figure 1 FIG. 1 is a first flowchart of a light emitting control method provided by an embodiment of the present application.
[0019] Figure 2 FIG. 2 is a first structural diagram of a light emitting device provided by an embodiment of the present application.
[0020] Figure 3 FIG. 3 is a second structural diagram of a light emitting device provided by an embodiment of the present application.
[0021] Figure 4 FIG. 4 is a third structural diagram of a light emitting device provided by an embodiment of the present application.
[0022] Figure 5 FIG. 5 is a second flowchart of a light emitting control method provided by an embodiment of the present application.
[0023] Figure 6 FIG. 6 is a structural diagram of a light emitting control device provided by an embodiment of the present application.
[0024] Figure 7 FIG. 7 is a structural diagram of an electronic device provided by an embodiment of the present application. DETAILED DESCRIPTION
[0025] It should be noted that the terms "first", "second", and "third" and the like in this application are used to distinguish different objects, and are not used to describe a particular order. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product or device including a series of steps or modules is not limited to the listed steps or modules, but some embodiments also include steps or modules not listed, or some embodiments also include other steps or modules inherent to the process, method, product or device.
[0026] Reference herein to "embodiments" means that a particular feature, structure, or characteristic described in connection with an embodiment can be included in at least one embodiment of the application. The appearance of the phrase in various places in the specification does not necessarily all refer to the same embodiment, nor is it necessarily mutually exclusive of other embodiments. It is explicitly and implicitly understood that the embodiments described herein can be combined with other embodiments.
[0027] Embodiments of the present application provide a light emitting control method, a light emitting control device, a storage medium and an electronic device. The execution subject of the light emitting control method can be the light emitting control device provided by the embodiments of the present application, or an electronic device integrated with the light emitting control device, wherein the light emitting control device can be realized in the form of hardware or software. The electronic device can be a smart phone, a tablet computer, a palm computer, a notebook computer, a device protective shell, etc. configured with a processor and having a light emitting control capability.
[0028] Please refer to Figure 1 , Figure 1 is the first flowchart of the light emitting control method provided by the embodiments of the present application, and the light emitting control method is applied to an electronic device. The flowchart can include:
[0029] In 101, the motion state of the vehicle is obtained.
[0030] The vehicle can include a car, a train, a high-speed rail, a ship, etc. The motion state represents the state of the vehicle when it is moving, including uniform motion state, acceleration motion state, deceleration motion state, left motion state or right motion state, etc. Taking the vehicle as a car for example, if the car drives at a constant speed, the motion state of the car is uniform motion state; if the car accelerates forward, the motion state of the car is acceleration motion state; if the car decelerates forward, the motion state of the car is deceleration motion state; if the car turns left, the motion state of the car is left motion state; if the car turns right, the motion state of the car is right motion state.
[0031] In this embodiment, motion data of the carrier can be acquired; and a motion state of the carrier can be determined according to the motion data. The motion data can include acceleration, rotation speed, etc.
[0032] For example, an Inertial Measurement Unit (IMU) sensor can be arranged in the carrier, and acceleration and rotation speed of the carrier can be acquired through the IMU sensor. After the acceleration and rotation speed of the carrier are acquired, the carrier can transmit the acceleration and rotation speed of the carrier to the electronic device. The electronic device can determine which state of the uniform motion state, the acceleration motion state and the deceleration motion state the carrier is in according to the acceleration of the carrier. The electronic device can determine which motion state of the left motion state and the right motion state the carrier is in according to the rotation speed of the carrier.
[0033] For another example, an Inertial Measurement Unit (IMU) sensor can be arranged in the electronic device, and acceleration and rotation speed of the carrier can be acquired through the IMU sensor. After the acceleration and rotation speed of the carrier are acquired, the electronic device can determine which state of the uniform motion state, the acceleration motion state and the deceleration motion state the carrier is in according to the acceleration of the carrier. The electronic device can determine which motion state of the left motion state and the right motion state the carrier is in according to the rotation speed of the carrier.
[0034] In 102, according to the motion state, a target light-emitting part that needs to emit light is determined from a plurality of light-emitting parts included in the light-emitting device.
[0035] The light-emitting device can be a user device, such as a smart phone or a tablet computer, etc. The light-emitting device can also be a device protective case with a processor built-in, which can be set on the user device, so as to protect the user device. The light-emitting part can emit light under the control of the processor, so as to present a corresponding light-emitting effect, which can include an LED lamp or a certain area of a display screen. For example, if the light-emitting part is an LED lamp, it can flicker, be always on, etc. under the control of the processor. If the light-emitting part is a certain area of a display screen, the area can flicker, be always on, etc. under the control of the processor.
[0036] It should be noted that in this embodiment, the plurality of light-emitting parts are in different areas of the light-emitting device.
[0037] It can be understood that the electronic device is pre-provided with a preset mapping relationship between the motion state and the light emitting part of the light emitting device. After the motion state is acquired, the target light emitting part that needs to emit light can be determined from the plurality of light emitting parts included in the light emitting device according to the motion state and the preset mapping relationship. Wherein, one motion state can correspond to at least one light emitting part, and the light emitting parts corresponding to different motion states can be the same or different.
[0038] For example, as shown in FIG. 1, the light emitting device 10 can include light emitting parts 110, 120, 130 and 140. Wherein, the uniform motion state and the accelerated motion state can correspond to the light emitting parts 110, 120, 130 and 140; the decelerated motion state can correspond to the light emitting parts 130 and 140; the left motion state can correspond to the light emitting parts 110 and 140; and the right motion state can correspond to the light emitting parts 120 and 130. Assuming that the acquired motion state is the accelerated motion state, then the target light emitting part can be determined as the light emitting parts 110, 120, 130 and 140. Assuming that the acquired motion state is the left motion state, then the target light emitting part can be determined as the light emitting parts 110 and 140. Figure 2 It needs to be noted that the position and style of the light emitting part shown in FIG. 1 are only an example provided by the embodiments of the present application, and are not used to limit the present application. In actual application, other styles in other positions can also be used.
[0039] Figure 2 It needs to be noted that the position and style of the light emitting part shown in FIG. 1 are only an example provided by the embodiments of the present application, and are not used to limit the present application. In actual application, other styles in other positions can also be used.
[0040] In 103, the light emitting mode of the target light emitting part is determined.
[0041] For example, the electronic device is pre-provided with a preset mapping relationship between the motion state and the light emitting mode of the light emitting part. After the motion state is acquired, the light emitting mode of the target light emitting part can be determined according to the motion state and the preset mapping relationship. Wherein, one motion state can correspond to one light emitting mode, and the light emitting modes corresponding to different motion states can be the same or different.
[0042] It needs to be noted that the light emitting part and the light emitting mode corresponding to different motion states need to be different. That is to say, the light emitting part corresponding to a certain motion state can be the same compared with another motion state, but the light emitting mode needs to be different, or the light emitting mode is the same but the light emitting part needs to be different; or the light emitting part and the light emitting mode are both different. Taking the LED lamp as an example, the light emitting mode can include flashing, constant lighting after lighting and the like. In some embodiments, the LED lamp includes a plurality of lamp beads, and the light emitting mode can also include a plurality of lamp beads that light up in a certain preset order.
[0043] For example, taking the LED lamp as an example, the light-emitting modes corresponding to the uniform motion state and the accelerated motion state can be that a plurality of lamp beads included in the LED lamp are lit in a preset order, the light-emitting mode corresponding to the decelerated motion state is that the LED lamp is lit, and the light-emitting modes corresponding to the left motion state and the right motion state are that the LED lamp flashes. Assuming that the acquired motion state is the left motion state, and the light-emitting mode corresponding to the left motion state is flashing, it can be determined that the light-emitting mode of the target light-emitting part is flashing.
[0044] In an optional embodiment, the light-emitting parts corresponding to different motion states can also be different, so that the same light-emitting mode can be determined when the light-emitting modes of the light-emitting parts corresponding to different motion states are determined, for example, the light-emitting modes can all be flashing.
[0045] In 104, the target light-emitting part is controlled to emit light according to the light-emitting mode.
[0046] In the embodiment, after the target light-emitting part and the light-emitting mode of the target light-emitting part are determined, the target light-emitting part can be controlled to emit light according to the light-emitting mode.
[0047] For example, continuing to refer to Figure 2 , assuming that the target light-emitting parts are 110 and 140, and the light-emitting mode of the target light-emitting part is flashing, the light-emitting part 110 and the light-emitting part 120 can be controlled to flash.
[0048] In the embodiment, by acquiring the motion state of the carrier, determining the target light-emitting part that needs to emit light from a plurality of light-emitting parts included in the light-emitting device according to the motion state, determining the light-emitting mode of the target light-emitting part, and controlling the target light-emitting part to emit light according to the light-emitting mode, the passenger riding the carrier only needs to observe the light emitted by the target light-emitting part to visually perceive the motion state of the carrier, so as to match the motion state of the carrier perceived by the vestibular organ, that is, to match the sensory information of the corresponding organs of the passenger, so as to alleviate the motion sickness of the passenger.
[0049] In an optional embodiment, the carrier includes a plurality of indicator lights, one indicator light corresponds to one light-emitting part, and determining the target light-emitting part that needs to emit light from a plurality of light-emitting parts included in the light-emitting device according to the motion state includes:
[0050] If the motion state is the first preset motion state, the target indicator light that needs to emit light is determined from the plurality of indicator lights;
[0051] The light-emitting part corresponding to the target indicator light in the plurality of light-emitting parts is determined as the target light-emitting part.
[0052] It can be understood that taking the vehicle as an example of a car, the car usually includes multiple indicator lights, such as the left headlight, the right headlight, the left tail light and the right tail light of the car, and different indicator lights present different light effects, which can represent that the car is in different motion states. For example, when the car is in a left motion state, the left headlight and the left tail light of the car will flash; when the car is in a right motion state, the right headlight and the right tail light of the car will flash; when the car is in a deceleration motion state, the double tail lights of the car will be on. Based on this, in the embodiment, the above motion state can be determined as a first preset motion state, and when the car is in the first preset motion state, the target light emitting part can be determined from the multiple light emitting parts according to the target indicator light that needs to emit light of the car.
[0053] For example, please continue to refer to Figure 2 , it is assumed that the car includes a left headlight L1, a right headlight L2, a left tail light L3 and a right tail light L4, wherein the left headlight L1 can correspond to the light emitting part 110, the right headlight L2 can correspond to the light emitting part 120, the left tail light L3 can correspond to the light emitting part 140, and the right tail light L4 can correspond to the light emitting part 130. If the car is in a left motion state, it can be determined that the target indicator light that needs to emit light of the car in the left motion state is the left headlight L1 and the left tail light L3, and then the target light emitting part can be determined as the light emitting part 110 and the light emitting part 140.
[0054] In an optional embodiment, the light emitting mode of the target light emitting part is determined, including:
[0055] If the first preset motion state is a left motion state or a right motion state, the light emitting mode of the target light emitting part is determined as flashing of the target light emitting part.
[0056] It can be understood that taking the vehicle as an example of a car, the car usually includes multiple indicator lights, such as the left headlight, the right headlight, the left tail light and the right tail light of the car, and different indicator lights present different light effects, which can represent that the car is in different motion states. For example, when the car is in a left motion state, the left headlight and the left tail light of the car will flash; when the car is in a right motion state, the right headlight and the right tail light of the car will flash; when the car is in a deceleration motion state, the double tail lights of the car will be on. Based on this, in the embodiment, the above motion state can be determined as a first preset motion state, and when the car is in the first preset motion state, the target light emitting part can be determined from the multiple light emitting parts according to the target indicator light that needs to emit light of the car in the first preset motion state.
[0057] For example, the light-emitting mode of the target light-emitting part can be the same as the light-emitting effect of the target indicator light. Assuming that the light-emitting effect of the target indicator light is flickering, the light-emitting mode of the target light-emitting part can be flickering. Assuming that the light-emitting effect of the target indicator light is lighting, the light-emitting mode of the target light-emitting part can also be lighting. Then, when the vehicle is in a left-moving state, the target indicator lights of the vehicle that need to emit light, i.e., the left headlight and the left taillight of the vehicle, will flicker. Therefore, it can be determined that the light-emitting mode of the target light-emitting part can be flickering.
[0058] In an optional embodiment, the light-emitting mode of the target light-emitting part is determined to be flickering.
[0059] The light-emitting mode of the target light-emitting part is determined to be flickering in a first preset color.
[0060] It can be understood that, taking the vehicle as an example, the vehicle usually includes multiple indicator lights, such as the left headlight, the right headlight, the left taillight, and the right taillight of the vehicle. Different indicator lights present different light-emitting effects, which can represent different moving states of the vehicle. For example, when the vehicle is in a left-moving state, the left headlight and the left taillight of the vehicle will flicker, and the flickering color is a first preset color, such as yellow. When the vehicle is in a right-moving state, the right headlight and the right taillight of the vehicle will flicker, and the flickering color is the first preset color, such as yellow. When the vehicle is in a deceleration-moving state, the left taillight and the right taillight of the vehicle will light up, and the lighting color is a second preset color, such as red. Based on this, in the present embodiment, the above moving states can be determined as first preset moving states. When the vehicle is in a first preset moving state, the light-emitting mode of the target light-emitting part can be determined according to the light-emitting effect of the target indicator light that needs to emit light when the vehicle is in the first preset moving state.
[0061] For example, the light-emitting mode of the target light-emitting part can be the same as the light-emitting effect of the target indicator light. Assuming that the light-emitting effect of the target indicator light is flickering in a first preset color, such as yellow, the light-emitting mode of the target light-emitting part can be flickering in the first preset color. Assuming that the light-emitting effect of the target indicator light is lighting in a second preset color, such as red, the light-emitting mode of the target light-emitting part can also be lighting in the second preset color. Then, when the vehicle is in a left-moving state, the target indicator lights of the vehicle that need to emit light, i.e., the left headlight and the left taillight of the vehicle, will flicker in the first preset color. Therefore, it can be determined that the light-emitting mode of the target light-emitting part can be flickering in the first preset color.
[0062] In an optional embodiment, the light-emitting mode of the target light-emitting part is determined to be lighting.
[0063] If the first preset moving state is a deceleration-moving state, the light-emitting mode of the target light-emitting part is determined to be lighting.
[0064] It can be understood that taking the vehicle as an automobile as an example, the automobile usually includes a plurality of indicator lights, such as the left front light, the right front light, the left tail light and the right tail light of the automobile, and different indicator lights present different light effects, which can represent that the automobile is in different motion states. For example, when the automobile is in a left motion state, the left front light and the left tail light of the automobile will flash; when the automobile is in a right motion state, the right front light and the right tail light of the automobile will flash; when the automobile is in a deceleration motion state, the left tail light and the right tail light of the automobile will be lit. Based on this, in the embodiment, the above motion state can be determined as a first preset motion state, and when the automobile is in the first preset motion state, the light emitting mode of the target light emitting part can be determined according to the light emitting effect of the target indicator light which needs to emit light when the automobile is in the first preset motion state.
[0065] For example, the light emitting mode of the target light emitting part can be the same as the light emitting effect of the target indicator light. Assuming that the light emitting effect of the target indicator light is flashing, the light emitting mode of the target light emitting part can be flashing; assuming that the light emitting effect of the target indicator light is lighting, the light emitting mode of the target light emitting part can also be lighting; then, when the automobile is in a deceleration motion state, since the automobile is in a deceleration motion state, the target indicator light which needs to emit light of the automobile, i.e. the left tail light and the right tail light of the automobile, will be lit, so it can be determined that the light emitting mode of the target light emitting part can be lighting.
[0066] In an optional embodiment, the light emitting mode of the target light emitting part is determined as controlling the target light emitting part to light, comprising:
[0067] The light emitting mode of the target light emitting part is determined as controlling the target light emitting part to light in a second preset color.
[0068] It can be understood that taking the vehicle as an automobile as an example, the automobile usually includes a plurality of indicator lights, such as the left front light, the right front light, the left tail light and the right tail light of the automobile, and different indicator lights present different light effects, which can represent that the automobile is in different motion states. For example, when the automobile is in a left motion state, the left front light and the left tail light of the automobile will flash, and the color of the flashing is a first preset color, such as yellow; when the automobile is in a right motion state, the right front light and the right tail light of the automobile will flash, and the color of the flashing is the first preset color, such as yellow; when the automobile is in a deceleration motion state, the left tail light and the right tail light of the automobile will be lit, and the color of the lighting is a second preset color, such as red. Based on this, in the embodiment, the above motion state can be determined as a first preset motion state, and when the automobile is in the first preset motion state, the light emitting mode of the target light emitting part can be determined according to the light emitting effect of the target indicator light which needs to emit light when the automobile is in the first preset motion state.
[0069] For example, the light-emitting mode of the target light-emitting part can be the same as the light-emitting effect of the target indicator light. Assuming that the light-emitting effect of the target indicator light is flashing in a first preset color, such as yellow, the light-emitting mode of the target light-emitting part can be flashing in the first preset color. Assuming that the light-emitting effect of the target indicator light is lighting in a second preset color, such as red, the light-emitting mode of the target light-emitting part can also be lighting in the second preset color. When the vehicle is in a deceleration motion state, the target indicator lights of the vehicle, i.e., the left taillight and the right taillight of the vehicle, will light in the second preset color, so it can be determined that the light-emitting mode of the target light-emitting part can be lighting in the second preset color.
[0070] In an optional embodiment, the target light-emitting part that needs to emit light is determined from a plurality of light-emitting parts included in the light-emitting device according to the motion state, comprising:
[0071] If the motion state is a second preset motion state, at least one light-emitting part of the plurality of light-emitting parts is determined as the target light-emitting part that needs to emit light.
[0072] It can be understood that, taking the vehicle as an example, the vehicle usually includes a plurality of indicator lights, such as the left headlight, the right headlight, the left taillight, and the right taillight of the vehicle. Different indicator lights present different light-emitting effects, which can represent different motion states of the vehicle, such as a deceleration motion state, a left motion state, and a right motion state. However, for the uniform motion state and the acceleration motion state, the indicator lights of the vehicle do not correspondingly present different light-emitting effects. In this embodiment, in order to enable the passenger to visually perceive that the vehicle is in the uniform motion state or the acceleration motion state, the acceleration motion state and the uniform motion state can be set as the second preset motion state, and at least one light-emitting part of the plurality of light-emitting parts can be determined as the light-emitting part corresponding to the second preset motion state, so that when the motion state of the vehicle is the second preset motion state, at least one light-emitting part of the plurality of light-emitting parts can be determined as the target light-emitting part that needs to emit light.
[0073] For example, please continue to refer to Figure 2 , assuming that the light-emitting part corresponding to the second preset motion state is the light-emitting part 110, the light-emitting part 120, the light-emitting part 130, and the light-emitting part 140, then if the motion state of the vehicle is the second preset motion state, it can be determined that the target light-emitting part that needs to emit light is the light-emitting part 110, the light-emitting part 120, the light-emitting part 130, and the light-emitting part 140, or it can be determined that the target light-emitting part that needs to emit light is the light-emitting part 110, the light-emitting part 120, and the light-emitting part 140.
[0074] In an optional embodiment, each light-emitting part includes a plurality of sub-light-emitting parts, and the light-emitting mode of the target light-emitting part is determined, comprising:
[0075] The light-emitting mode of the target light-emitting part is determined as follows: the multiple sub-light-emitting parts in each target light-emitting part are sequentially lighted in a preset order and the process is repeated.
[0076] It can be understood that, taking a car as an example, the car usually includes multiple indicator lights, such as the front light and the rear light of the car. Different indicator lights present different light-emitting effects, which can represent different motion states of the car, such as a deceleration motion state, a left motion state, and a right motion state. However, for the uniform motion state and the acceleration motion state, the indicator lights of the car do not correspondingly present different light-emitting effects. In the embodiment, in order to enable the passenger to visually perceive that the car is in the uniform motion state or the acceleration motion state, the acceleration motion state and the uniform motion state are set as the second preset motion state, at least one light-emitting part of the multiple light-emitting parts is determined as the light-emitting part corresponding to the second preset motion state, and the corresponding light-emitting mode is set for the second preset motion state, so that the passenger can determine that the car is in the second preset motion state by watching the light-emitting mode of the light-emitting part corresponding to the second preset motion state.
[0077] For example, taking the light-emitting part as an LED lamp, the multiple sub-light-emitting parts included in the light-emitting part are multiple lamp beads of the LED lamp. Assuming that the light-emitting mode corresponding to the second preset motion state is that each lamp bead of the LED lamp is sequentially lighted in a preset order and the process is repeated, if the motion state of the car is the second preset motion state, it can be determined that the light-emitting mode is that each lamp bead of the LED lamp is sequentially lighted in a preset order and the process is repeated.
[0078] For example, referring to Figure 3 , assuming that the light-emitting part corresponding to the second preset motion state is the light-emitting part 110, and the corresponding light-emitting mode is that the sub-light-emitting part 111, the sub-light-emitting part 112, and the sub-light-emitting part 113 are sequentially lighted and the process is repeated. If the motion state of the car is the second preset motion state, the sub-light-emitting part 111, the sub-light-emitting part 112, and the sub-light-emitting part 113 can be controlled to be sequentially lighted and the process is repeated, such as lighting the sub-light-emitting part 111, extinguishing the sub-light-emitting part 111, and lighting the sub-light-emitting part 112, extinguishing the sub-light-emitting part 112, and lighting the sub-light-emitting part 113, extinguishing the sub-light-emitting part 113, and lighting the sub-light-emitting part 111, extinguishing the sub-light-emitting part 111, and lighting the sub-light-emitting part 112, and so on.
[0079] In an optional embodiment, the light-emitting mode of the target light-emitting part is determined as follows: the multiple sub-light-emitting parts in each target light-emitting part are sequentially lighted in a preset order and the process is repeated.
[0080] If the second preset motion state is the uniform motion state, the light-emitting mode of the target light-emitting part is determined as follows: the multiple sub-light-emitting parts in each target light-emitting part are sequentially uniformly lighted in a preset order and the process is repeated.
[0081] It can be understood that, since the second preset motion state includes the uniform motion state and the accelerated motion state, in order to enable the passenger to distinguish the two motion states, the corresponding light emitting effects can be respectively set for the two motion states.
[0082] For example, referring to Figure 3 , assuming that the light emitting part corresponding to the uniform motion state is the light emitting part 110, and the corresponding light emitting mode is that the sub light emitting part 111, the sub light emitting part 112 and the sub light emitting part 113 are sequentially and uniformly lighted and circulate, if the motion state of the automobile is the uniform motion state, the sub light emitting part 111, the sub light emitting part 112 and the sub light emitting part 113 can be sequentially and uniformly lighted and circulate, such as lighting the sub light emitting part 111 at the 0th second→ extinguishing the sub light emitting part 111 at the 1st second, and lighting the sub light emitting part 112→ extinguishing the sub light emitting part 112 at the 2nd second, and lighting the sub light emitting part 113→ extinguishing the sub light emitting part 113 at the 3rd second, and lighting the sub light emitting part 111→ extinguishing the sub light emitting part 111 at the 4th second, and lighting the sub light emitting part 112→ extinguishing the sub light emitting part 112 at the 5th second, and lighting the sub light emitting part 113......
[0083] In an optional embodiment, the light emitting mode of the target light emitting part is that a plurality of sub light emitting parts in each target light emitting part are sequentially lighted and circulate according to a preset order, including:
[0084] If the second preset motion state is the accelerated motion state, the light emitting mode of the target light emitting part is that a plurality of sub light emitting parts in each target light emitting part are sequentially accelerated and lighted and circulate according to a preset order.
[0085] It can be understood that, since the second preset motion state includes the uniform motion state and the accelerated motion state, in order to enable the passenger to distinguish the two motion states, the corresponding light emitting effects can be respectively set for the two motion states.
[0086] For example, referring to Figure 3, assuming that the light emitting part corresponding to the accelerating motion state is the light emitting part 110, and the corresponding light emitting mode is that the sub light emitting part 111, the sub light emitting part 112 and the sub light emitting part 113 are accelerated and lightened in turn and circulate, if the motion state of the car is the accelerating motion state, the sub light emitting part 111, the sub light emitting part 112 and the sub light emitting part 113 can be controlled to be lightened in turn and circulate, such as the sub light emitting part 111 is lightened at 0 second, the sub light emitting part 111 is extinguished at 2 seconds, the sub light emitting part 112 is lightened, the sub light emitting part 112 is extinguished at 3.5 seconds, the sub light emitting part 113 is lightened, the sub light emitting part 113 is extinguished at 4.5 seconds, the sub light emitting part 111 is lightened, the sub light emitting part 111 is extinguished at 5 seconds, the sub light emitting part 112 is lightened, the sub light emitting part 112 is extinguished at 5.25 seconds, the sub light emitting part 113 is lightened, and so on.
[0087] In an optional embodiment, the electronic device and the light emitting device are both user devices; or,
[0088] The electronic device and the light emitting device are both device protective cases; or,
[0089] The electronic device is a user device, and the light emitting device is a device protective case, and the user device and the device protective case are in communication connection.
[0090] It can be understood that in the embodiment, the electronic device and the light emitting device can be the same device, such as both being a user device such as a smart phone or a tablet computer or both being a device protective case that can be sleeved on a user device such as a smart phone or a tablet computer to protect the user device. It can be understood that in order to realize the light emitting control method, a processor needs to be arranged in the user device and the device protective case. The electronic device and the light emitting device can also be different devices, such as the electronic device being a user device such as a smart phone or a tablet computer, and the light emitting device being a device protective case that can be sleeved on a user device such as a smart phone or a tablet computer to protect the user device, so that the user device determines the target light emitting part and the light emitting mode of the target light emitting part by the light emitting control method provided by the embodiment of the application, and generates control information indicating that the target light emitting part is controlled to emit light according to the light emitting mode and sends the control information to the device protective case. After receiving the control information, the device protective case can control the target light emitting part to emit light according to the control information. It can be understood that in order to enable the user device to send the control information to the device protective case, the user device needs to have communication capability and be in communication connection with the device protective case. In order to enable the user device to realize the light emitting control method and enable the device protective case to control the corresponding light emitting part to emit light, a processor needs to be arranged in the user device and the device protective case.
[0091] It is also understandable that when the light-emitting device is a user device, the multiple light-emitting parts included in the light-emitting device can be multiple different areas of the display screen of the user device; the multiple sub-light-emitting parts included in each light-emitting part can be multiple sub-areas set at intervals in the corresponding areas of the display screen of the user device.
[0092] When the light-emitting device is a protective housing, the multiple light-emitting parts included in the light-emitting device can be multiple different areas of the protective housing; each light-emitting part includes multiple sub-light-emitting parts, which can be multiple sub-areas spaced apart in corresponding areas of the protective housing. In order for the user to see the multiple light-emitting parts when the protective housing is fitted onto the user's equipment, the multiple light-emitting parts need to be located in areas that can be seen by the user when the protective housing is fitted onto the user's equipment.
[0093] In an optional embodiment, before determining the target light-emitting part to emit light from the plurality of light-emitting parts included in the light-emitting device according to the motion state, the method further includes:
[0094] Obtain the device status of the light-emitting device, which includes horizontal and vertical status;
[0095] Based on the motion state, the target light-emitting part that needs to emit light is determined from among the multiple light-emitting parts included in the light-emitting device, including:
[0096] Based on the motion state and equipment state, the target light-emitting part that needs to emit light is determined from the multiple light-emitting parts included in the light-emitting device.
[0097] It is understandable that, taking the motion state as the leftward motion state, the light-emitting device 10 follows... Figure 2 Taking the form shown as being held in the passenger's hand as an example, if the light-emitting part of the left half of the light-emitting device 10, namely the light-emitting part 110 and the light-emitting part 140, is controlled to emit light, the passenger can intuitively determine that the vehicle is moving to the left by observing the position of the light-emitting part of the light-emitting device; and if the light-emitting device 10 is in accordance with... Figure 4 When the vehicle is held in the hand as shown, if the passenger still controls the light-emitting parts 110 and 140, the passenger cannot visually determine whether the vehicle is moving to the left based on the position of the light-emitting parts. Therefore, the target light-emitting part that needs to be illuminated can be determined from the multiple light-emitting parts included in the light-emitting device, based on the vehicle's movement state and the device's status.
[0098] For example, when the motion state is leftward and the device state is vertical, such as... Figure 2 In the indicated state, the target light-emitting part can be light-emitting part 110 or light-emitting part 120; when the movement state is leftward movement, the device state is horizontal, as shown. Figure 4In the illustrated state, the target light-emitting part can be the light-emitting part 110 and the light-emitting part 120, so that the passenger can intuitively determine that the vehicle is in the left-moving state through the position of the target light-emitting part.
[0099] Please refer to Figure 5 , Figure 5 FIG. 2 is a second flowchart of a light-emitting control method provided by an embodiment of the present application, which is applied to an electronic device. The flowchart can include the following steps.
[0100] In 201, the motion state of a vehicle is acquired, and the vehicle includes a plurality of indicator lights.
[0101] In 202, if the motion state is a left-moving state or a right-moving state, a target indicator light that needs to emit light is determined from the plurality of indicator lights, a target light-emitting part corresponding to the target indicator light is determined from a plurality of light-emitting parts, and the light-emitting mode of the target light-emitting part is determined to be that the target light-emitting part flashes in a first preset color.
[0102] In 203, the target light-emitting part is controlled to flash in the first preset color.
[0103] In 204, if the motion state is a deceleration-moving state, a target indicator light that needs to emit light is determined from the plurality of indicator lights, a target light-emitting part corresponding to the target indicator light is determined from the plurality of light-emitting parts, and the light-emitting mode of the target light-emitting part is determined to be that the target light-emitting part is lit in a second preset color.
[0104] In 205, the target light-emitting part is controlled to be lit in the second preset color.
[0105] In 206, if the motion state is a constant-speed-moving state, at least one light-emitting part from the plurality of light-emitting parts is determined to be a target light-emitting part that needs to emit light, and the light-emitting mode of the target light-emitting part is determined to be that a plurality of sub-light-emitting parts in each target light-emitting part are sequentially lit at a constant speed in a preset order and cycle.
[0106] In 207, the plurality of sub-light-emitting parts in each target light-emitting part are controlled to be sequentially lit at a constant speed in a preset order and cycle.
[0107] In 208, if the motion state is an acceleration-moving state, at least one light-emitting part from the plurality of light-emitting parts is determined to be a target light-emitting part that needs to emit light, and the light-emitting mode of the target light-emitting part is determined to be that a plurality of sub-light-emitting parts in each target light-emitting part are sequentially lit at an acceleration in a preset order and cycle.
[0108] In 209, the plurality of sub-light-emitting parts in each target light-emitting part are controlled to be sequentially lit at an acceleration in a preset order and cycle.
[0109] It should be noted that the specific implementation of steps 201 to 209 can refer to the previous embodiments, which will not be repeated here.
[0110] Please refer to Figure 6 , Figure 6 The structure diagram of the light emitting control device provided by the embodiment of the application is shown. The light emitting control device 300 is applied to an electronic device, and the light emitting control device 300 comprises a state acquisition module 301, a light emitting part determination module 302, a mode determination module 303, and a light emitting control module 304.
[0111] The state acquisition module 301 is configured to acquire a motion state of a carrier.
[0112] The light emitting part determination module 302 is configured to determine a target light emitting part that needs to emit light from a plurality of light emitting parts included in a light emitting device according to the motion state.
[0113] The mode determination module 303 is configured to determine a light emitting mode of the target light emitting part.
[0114] The light emitting control module 304 is configured to control the target light emitting part to emit light in the light emitting mode.
[0115] In an optional embodiment, the carrier comprises a plurality of indicator lights, one of the indicator lights corresponds to one of the light emitting parts, and the light emitting part determination module 302 can be configured to: if the motion state is a first preset motion state, determine a target indicator light that needs to emit light from the plurality of indicator lights; and determine a light emitting part corresponding to the target indicator light from the plurality of light emitting parts as the target light emitting part.
[0116] In an optional embodiment, the mode determination module 303 can be configured to: if the first preset motion state is a left motion state or a right motion state, determine that the light emitting mode of the target light emitting part is that the target light emitting part flashes.
[0117] In an optional embodiment, the mode determination module 303 can be configured to: if the first preset motion state is a left motion state or a right motion state, determine that the light emitting mode of the target light emitting part is that the target light emitting part flashes in a first preset color.
[0118] In an optional embodiment, the mode determination module 303 can be configured to: if the first preset motion state is a deceleration motion state, determine that the light emitting mode of the target light emitting part is that the target light emitting part is lit up.
[0119] In an optional embodiment, the mode determination module 303 can be configured to: if the first preset motion state is a deceleration motion state, determine that the light emitting mode of the target light emitting part is that the target light emitting part is lit up in a second preset color.
[0120] In an optional embodiment, the light-emitting part determining module 302 can be configured to:
[0121] If the motion state is a second preset motion state, at least one light-emitting part of the plurality of light-emitting parts is determined as a target light-emitting part that needs to emit light.
[0122] In an optional embodiment, each of the light-emitting parts includes a plurality of sub-light-emitting parts, and the mode determining module 303 can be configured to: if the motion state is the second preset motion state, the light-emitting mode of the target light-emitting part is determined as: the plurality of sub-light-emitting parts in each of the target light-emitting parts are sequentially lighted in a preset order and the process is repeated.
[0123] In an optional embodiment, the mode determining module 303 can be configured to: if the second preset motion state is a uniform motion state, the light-emitting mode of the target light-emitting part is determined as: the plurality of sub-light-emitting parts in each of the target light-emitting parts are sequentially lighted at a uniform speed in a preset order and the process is repeated.
[0124] In an optional embodiment, the mode determining module 303 can be configured to: if the second preset motion state is an accelerated motion state, the light-emitting mode of the target light-emitting part is determined as: the plurality of sub-light-emitting parts in each of the target light-emitting parts are sequentially lighted at an accelerated speed in a preset order and the process is repeated.
[0125] In an optional embodiment, the electronic device and the light-emitting device are both user devices; or, the electronic device and the light-emitting device are both device protective cases; or, the electronic device is a user device and the light-emitting device is a device protective case, and the user device and the device protective case are in communication connection.
[0126] In an optional embodiment, the state obtaining module 301 can be configured to:
[0127] Obtain a device state of the light-emitting device, the device state including a horizontal state and a vertical state.
[0128] The light-emitting part determining module 302 can be configured to:
[0129] According to the motion state and the device state, a target light-emitting part that needs to emit light is determined from a plurality of light-emitting parts included in the light-emitting device.
[0130] The embodiments of the present application provide a computer readable storage medium, which stores a computer program, and when the computer program is executed on a computer, the computer executes the light-emitting control method provided by the embodiments of the present application.
[0131] The embodiment of the present application further provides an electronic device, comprising a memory and a processor, the processor is configured to execute the light emitting control method provided by the embodiment by calling the computer program stored in the memory.
[0132] For example, the electronic device can be a mobile terminal such as a tablet computer or a smart phone. Please refer to Figure 7 , Figure 7 The electronic device provided by the embodiment of the present application is shown in a structural schematic diagram.
[0133] The electronic device 400 can include a processor 401, a memory 402 and the like. Those skilled in the art can understand that Figure 7 The electronic device structure shown in the embodiment of the present application does not constitute a limitation on the electronic device, and can include more or less components than the diagram, or combine certain components, or different component arrangements, such as the electronic device 400 can also include a display screen.
[0134] The processor 401 is the control center of the electronic device, and connects various parts of the electronic device through various interfaces and lines. By running or executing the application program stored in the memory 402 and calling the data stored in the memory 402, the processor 401 executes various functions and processes data of the electronic device, thereby monitoring the whole electronic device.
[0135] The memory 402 can be used to store application programs and data. The application programs stored in the memory 402 include executable codes. The application programs can constitute various functional modules. The processor 401 executes various functional applications and data processing by running the application programs stored in the memory 402.
[0136] In the embodiment, the processor 401 in the electronic device loads the executable code corresponding to the process of one or more application programs into the memory 402 according to the following instructions, and executes the application programs stored in the memory 402 by the processor 401, thereby realizing:
[0137] Obtaining a motion state of a carrier;
[0138] According to the motion state, determining a target light emitting part from a plurality of light emitting parts included in a light emitting device that needs to emit light;
[0139] Determining a light emitting mode of the target light emitting part;
[0140] Controlling the target light emitting part to emit light according to the light emitting mode.
[0141] In an optional embodiment, the vehicle comprises a plurality of indicator lights, one of the indicator lights corresponding to one of the light-emitting portions, and the processor 401, when determining the target light-emitting portion from the plurality of light-emitting portions included in the light-emitting device according to the motion state, can determine a target indicator light from the plurality of indicator lights to emit light if the motion state is the first preset motion state, and determine the light-emitting portion corresponding to the target indicator light as the target light-emitting portion.
[0142] In an optional embodiment, the processor 401, when determining the light-emitting mode of the target light-emitting portion, can determine the light-emitting mode of the target light-emitting portion as flickering of the target light-emitting portion if the first preset motion state is the leftward motion state or the rightward motion state.
[0143] In an optional embodiment, the processor 401, when determining the light-emitting mode of the target light-emitting portion as flickering of the target light-emitting portion, can determine the light-emitting mode of the target light-emitting portion as flickering of the target light-emitting portion in a first preset color.
[0144] In an optional embodiment, the processor 401, when determining the light-emitting mode of the target light-emitting portion, can determine the light-emitting mode of the target light-emitting portion as lighting of the target light-emitting portion if the first preset motion state is the deceleration motion state.
[0145] In an optional embodiment, the processor 401, when determining the light-emitting mode of the target light-emitting portion as lighting of the target light-emitting portion, can determine the light-emitting mode of the target light-emitting portion as lighting of the target light-emitting portion in a second preset color.
[0146] In an optional embodiment, the processor 401, when determining the target light-emitting portion from the plurality of light-emitting portions included in the light-emitting device according to the motion state, can determine at least one of the plurality of light-emitting portions as the target light-emitting portion to emit light if the motion state is the second preset motion state.
[0147] In an optional embodiment, each of the light-emitting portions comprises a plurality of sub-light-emitting portions, and the processor 401, when determining the light-emitting mode of the target light-emitting portion, can determine the light-emitting mode of the target light-emitting portion as sequentially lighting of the plurality of sub-light-emitting portions in each of the target light-emitting portions in a preset order and cycling.
[0148] In an optional embodiment, when the processor 401 determines the light emitting mode of the target light emitting part as: multiple sub-light emitting parts in each target light emitting part light up in a preset order and cycle, the processor 401 can determine the light emitting mode of the target light emitting part as: multiple sub-light emitting parts in each target light emitting part light up in a preset order and cycle at a constant speed, if the second preset motion state is a constant speed motion state.
[0149] In an optional embodiment, when the processor 401 determines the light emitting mode of the target light emitting part as: multiple sub-light emitting parts in each target light emitting part light up in a preset order and cycle, the processor 401 can determine the light emitting mode of the target light emitting part as: multiple sub-light emitting parts in each target light emitting part light up in a preset order and cycle at a constant speed, if the second preset motion state is a constant speed motion state.
[0150] In an optional embodiment, the electronic device and the light emitting device are both user devices; or, the electronic device and the light emitting device are both device protective cases; or, the electronic device is a user device and the light emitting device is a device protective case, and the user device and the device protective case are in communication connection.
[0151] In an optional embodiment, before the processor 401 determines the target light emitting part from the multiple light emitting parts of the light emitting device according to the motion state, the processor 401 can further determine a device state of the light emitting device, the device state including a landscape state and a portrait state; when the processor 401 determines the target light emitting part from the multiple light emitting parts of the light emitting device according to the motion state, the processor 401 can determine the target light emitting part from the multiple light emitting parts of the light emitting device according to the motion state and the device state.
[0152] In the above embodiments, the description of each embodiment has its own focus, and the parts not described in detail in a certain embodiment can be referred to the detailed description of the light emitting control method above, which will not be described here again.
[0153] The light emitting control device provided by the embodiments of the present application and the light emitting control method in the above embodiments belong to the same concept, and any method provided in the light emitting control method embodiment can run on the light emitting control device. The specific implementation process is described in detail in the light emitting control method embodiment, which will not be described here again.
[0154] It should be noted that, for the light emission control method of the embodiments of the present application, it can be understood by those skilled in the art that all or part of the process of implementing the light emission control method of the embodiments of the present application can be completed by a computer program controlling related hardware. The computer program can be stored in a computer readable storage medium, such as a memory, and executed by at least one processor. In the execution process, it can include processes such as the embodiments of the light emission control method. The computer readable storage medium can be a magnetic disc, an optical disc, a read-only memory (ROM), a random access memory (RAM), etc.
[0155] It can be understood that in the specific embodiments of the present application, user information such as application usage behavior data, logs and related data are involved. When the above embodiments of the present application are applied to specific products or technologies, user permission or consent is required, and the collection, use and processing of related data need to comply with relevant laws, regulations and standards of countries and regions.
[0156] For the light emission control device of the embodiments of the present application, each functional module can be integrated in one processing chip, or each module can exist physically independently, or two or more modules can be integrated in one module. The integrated module can be realized in the form of hardware or in the form of software functional module. If the integrated module is realized in the form of software functional module and sold or used as an independent product, it can also be stored in a computer readable storage medium, such as a read-only memory, a magnetic disc or an optical disc, etc.
[0157] The light emission control method, device, storage medium and electronic equipment provided by the embodiments of the present application are described in detail above, and the principles and implementation manners of the present application are described by applying specific examples. The above description of the embodiments is only used to help understand the method and its core idea of the present application; at the same time, for those skilled in the art, according to the idea of the present application, the specific implementation manner and application range can be changed. In summary, the content of the specification should not be understood as a limitation of the present application.
Claims
1. A light emission control method, applied to electronic devices, characterized in that, include: Obtain the vehicle's motion status; Based on the motion state, a target light-emitting part that needs to emit light is determined from a plurality of light-emitting parts included in the light-emitting device; wherein, the plurality of light-emitting parts are located in different areas of the light-emitting device, and both the electronic device and the light-emitting device are user devices, or both the electronic device and the light-emitting device are device protective cases; or, the electronic device is a user device, the light-emitting device is a device protective case, and the user device is communicatively connected to the device protective case; Determine the light emission mode of the target light-emitting part; The target light-emitting part is controlled to emit light according to the light-emitting method described above.
2. The light emission control method according to claim 1, characterized in that, The vehicle includes multiple indicator lights, each indicator light corresponding to a light-emitting part. The step of determining the target light-emitting part to emit light from the multiple light-emitting parts included in the light-emitting device based on the motion state includes: If the motion state is a first preset motion state, then the target indicator light that needs to be illuminated is determined from the plurality of indicator lights; The light-emitting part that corresponds to the target indicator light among the plurality of light-emitting parts is identified as the target light-emitting part.
3. The light emission control method according to claim 2, characterized in that, Determining the light emission mode of the target light-emitting part includes: If the first preset motion state is a leftward motion state or a rightward motion state, then the light emission mode of the target light-emitting part is determined to be the flashing of the target light-emitting part.
4. The light emission control method according to claim 3, characterized in that, Determining the light emission mode of the target light-emitting part as flashing includes: The light emission mode of the target light-emitting part is determined to be that the target light-emitting part flashes with a first preset color.
5. The light emission control method according to claim 2, characterized in that, Determining the light emission mode of the target light-emitting part includes: If the first preset motion state is a deceleration motion state, then the light emission mode of the target light-emitting part is determined to be that the target light-emitting part is lit up.
6. The light emission control method according to claim 5, characterized in that, Determining the light emission mode of the target light-emitting part to be "the target light-emitting part is lit" includes: The light emission mode of the target light-emitting part is determined to be that the target light-emitting part is lit up with a second preset color.
7. The light emission control method according to claim 1, characterized in that, The step of determining the target light-emitting part that needs to emit light from among the plurality of light-emitting parts included in the light-emitting device according to the motion state includes: If the motion state is the second preset motion state, then at least one of the plurality of light-emitting parts is determined to be the target light-emitting part that needs to emit light.
8. The light emission control method according to claim 7, characterized in that, Each of the light-emitting parts includes multiple sub-light-emitting parts, and determining the light-emitting mode of the target light-emitting part includes: The light emission mode of the target light-emitting part is determined as follows: multiple sub-light-emitting parts in each target light-emitting part are lit up sequentially in a preset order and this cycle is repeated.
9. The light emission control method according to claim 8, characterized in that, The method for determining the light emission mode of the target light-emitting part is as follows: multiple sub-light-emitting parts in each target light-emitting part are lit sequentially in a preset order and this process is repeated cyclically, including: If the second preset motion state is a uniform motion state, then the light emission mode of the target light-emitting part is determined to be: multiple sub-light-emitting parts in each target light-emitting part are lit up in sequence at a uniform speed in a preset order and this cycle is repeated.
10. The light emission control method according to claim 8, characterized in that, The method for determining the light emission mode of the target light-emitting part is as follows: multiple sub-light-emitting parts in each target light-emitting part are lit sequentially in a preset order and this process is repeated cyclically, including: If the second preset motion state is an accelerated motion state, then the light emission mode of the target light-emitting part is determined to be: multiple sub-light-emitting parts in each target light-emitting part are sequentially accelerated and lit in a preset order and this cycle is repeated.
11. The light emission control method according to claim 1, characterized in that, Before determining the target light-emitting part to emit light from the plurality of light-emitting parts included in the light-emitting device according to the motion state, the method further includes: The device status of the light-emitting device is obtained, including horizontal and vertical states. The step of determining the target light-emitting part that needs to emit light from among the plurality of light-emitting parts included in the light-emitting device according to the motion state includes: Based on the motion state and the device state, the target light-emitting part that needs to emit light is determined from the plurality of light-emitting parts included in the light-emitting device.
12. A light-emitting control device, applied to electronic devices, characterized in that, include: The status acquisition module is used to acquire the motion status of the vehicle; A light-emitting part determination module is used to determine a target light-emitting part that needs to emit light from a plurality of light-emitting parts included in the light-emitting device according to the motion state; wherein the plurality of light-emitting parts are located in different areas of the light-emitting device, the electronic device and the light-emitting device are both user devices, or the electronic device and the light-emitting device are both device protective cases; or, the electronic device is a user device, the light-emitting device is a device protective case, and the user device is communicatively connected to the device protective case; The mode determination module is used to determine the light emission mode of the target light-emitting part; The light emission control module is used to control the target light emission part to emit light according to the light emission mode.
13. A computer-readable storage medium, characterized in that, The storage medium stores a computer program that, when run on a computer, causes the computer to execute the light emission control method according to any one of claims 1 to 11.
14. An electronic device, characterized in that, The electronic device includes a processor and a memory, the memory storing a computer program, and the processor executing the light emission control method according to any one of claims 1 to 11 by calling the computer program stored in the memory.
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