A control method, device and equipment of an intelligent eye mask and a storage medium
By acquiring user status and ambient light information through the biosensors and light sensors of the smart goggles, and gradually adjusting the light transmittance coefficient, the discomfort problem of users removing the goggles in strong light environments is solved, improving user experience and sense of security.
Patent Information
- Application Number
- CN202211020697.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-24
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2042-08-24
AI Technical Summary
Existing light-blocking eye masks can cause discomfort when users remove them in bright light, and people with photophobia experience significant psychological insecurity, resulting in a poor user experience.
The smart eye mask uses biosensors to obtain information about the opening and closing of the eyes and light sensors to obtain information about the ambient light intensity. Based on these states and information, the light transmittance of the display screen is gradually adjusted, allowing the display screen to switch from a light-blocking mode to a light-transmitting mode, providing a gradual visual adaptation experience.
It effectively reduces the discomfort of strong light, improves the user experience and psychological safety, and provides a comfortable and natural visual switching process.
Smart Images

Figure CN115252279B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of intelligent eye cover, and in particular to a control method and device of intelligent eye cover, equipment and storage medium. BACKGROUND
[0002] At present, the main function of the light-blocking eye cover appearing in the market is to block light, create a comfortable sleep environment for people sensitive to light, and provide sleep quality.
[0003] The existing light-blocking eye cover usually needs to be manually worn during use, such as manually wearing the light-blocking eye cover to block light and removing the light-blocking eye cover to restore normal vision. The eyes feel either dark or directly receive ambient light. Since the eyes cannot adapt to strong light in a short time, the user may feel very uncomfortable when removing the light-blocking eye cover in a strong light environment, and the photophobic group may also feel a significant sense of insecurity, resulting in a poor user experience. SUMMARY
[0004] The present application provides a control method, device, equipment and storage medium of intelligent eye cover to solve the problem that the existing light-blocking eye cover causes the eyes to feel very uncomfortable when the user directly removes the light-blocking eye cover in a strong light environment, thereby improving the user experience.
[0005] In a first aspect, the present application provides a control method of intelligent eye cover, comprising:
[0006] obtaining the eye opening and closing state of the target user through the biosensor of the intelligent eye cover;
[0007] obtaining the ambient light intensity information through the light sensor of the intelligent eye cover;
[0008] determining the target screen mode according to the eye opening and closing state;
[0009] gradually adjusting the display screen light transmission coefficient of the intelligent eye cover according to the target screen mode and the ambient light intensity information.
[0010] In a second aspect, the present application provides a control device of intelligent eye cover, comprising:
[0011] an eye opening and closing state obtaining module for obtaining the eye opening and closing state of the target user through the biosensor of the intelligent eye cover;
[0012] an ambient light intensity information obtaining module for obtaining the ambient light intensity information through the light sensor of the intelligent eye cover;
[0013] a target screen mode determining module for determining the target screen mode according to the eye opening and closing state;
[0014] The display screen light transmission coefficient adjustment module is configured to gradually adjust the light transmission coefficient of the display screen of the smart eyewear according to the target screen mode and the ambient light intensity information.
[0015] In a third aspect, the present application provides a smart eyewear device, comprising a processor, a communication interface, a memory and a communication bus, wherein the processor, the communication interface and the memory are in communication with each other through the communication bus.
[0016] The memory is configured to store a computer program.
[0017] The processor is configured to execute the program stored in the memory, so as to realize the steps of the control method of the smart eyewear according to any one of the embodiments of the first aspect.
[0018] In a fourth aspect, the present application provides a computer readable storage medium having a computer program stored thereon, wherein the computer program is executed by a processor to realize the steps of the control method of the smart eyewear according to any one of the embodiments of the first aspect.
[0019] The smart eyewear of the present application acquires the eye opening and closing state of the target user through the biosensor, and acquires the ambient light intensity information through the light sensor. The target screen mode is determined according to the eye opening and closing state, and the light transmission coefficient of the display screen of the smart eyewear is gradually adjusted according to the target screen mode and the ambient light intensity information. In this way, when the eye closing is detected, the light transmission coefficient of the display screen of the smart eyewear is gradually adjusted in combination with the ambient light intensity information, so that the display screen is switched from the light transmission mode to the light shielding mode, helping the user to quickly shield the light and fall asleep. When the eye opening is detected, the light transmission coefficient of the display screen is gradually adjusted in combination with the ambient light intensity information, so that the light received by the eye is gradually switched from the dark state to the state synchronized with the ambient light, providing the user with a gradual visual experience and improving the user's experience. BRIEF DESCRIPTION OF DRAWINGS
[0020] The accompanying drawings, which are incorporated into and form part of the specification, illustrate embodiments consistent with the present application and, together with the specification, serve to explain the principles of the present application.
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the accompanying drawings needed to be used in the embodiments or prior art description will be briefly introduced as follows. Obviously, for those skilled in the art, other drawings can also be obtained from these drawings without creative labor.
[0022] Figure 1 A flowchart of a control method of a smart eyewear according to an embodiment of the present application is shown in the figure.
[0023] Figure 2 is a step flow diagram of a control method of a smart eye cover provided by an optional embodiment of the present application;
[0024] Figure 3 is a biological sensor position diagram of a smart eye cover provided by an optional embodiment of the present application;
[0025] Figure 4 is a structural diagram of a smart eye cover provided by an optional embodiment of the present application;
[0026] Figure 5 is an ambient light sensor position diagram of a smart eye cover provided by an optional embodiment of the present application;
[0027] Figure 6 is a step flow diagram of a control method of a smart eye cover provided by an optional embodiment of the present application;
[0028] Figure 7 is a structural block diagram of a control device of a smart eye cover provided by an embodiment of the present application;
[0029] Figure 8 is a structural diagram of a smart eye cover device provided by an embodiment of the present application. DETAILED DESCRIPTION
[0030] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme of the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work fall within the scope of protection of the present application.
[0031] In order to facilitate the understanding of the embodiments of the present application, further explanation and description will be made in combination with the drawings and specific embodiments below. The embodiments do not constitute a limitation on the embodiments of the present application.
[0032] Figure 1 is a flow diagram of a control method of a smart eye cover provided by an embodiment of the present application. As shown in Figure 1 the control method of the smart eye cover provided by the present application can specifically include the following steps:
[0033] Step 110, acquiring an eye opening and closing state of a target user by a biological sensor of a smart eye cover.
[0034] Specifically, the embodiment of the present application can determine the user wearing the smart eyecup as a target user. The eye opening and closing state of the target user can include an eye open state and an eye closed state, and the embodiment of the present application does not limit this. Specifically, the smart eyecup in the embodiment of the present application can be provided with a biological sensor, and the smart eyecup can detect the eye opening and closing state of the target user in real time through the biological sensor to collect sensor data corresponding to the eye opening and closing state, and can take the sensor data as biological sensor data, so that the eye opening and closing state of the target user can be determined according to the biological sensor data, such as the eye open state or the eye closed state of the target user can be determined according to the biological sensor data, and the eye opening and closing state of the target user can be obtained through the biological sensor.
[0035] Step 120, obtaining ambient light intensity information through a light sensor of the smart eyecup.
[0036] Specifically, the ambient light intensity information can include a light intensity index of ambient light, which can be used to determine the maximum brightness of the ambient light, and the embodiment of the present application does not limit this. Specifically, the smart eyecup can be provided with a light sensor, which can include an ambient light sensor. The smart eyecup can detect the ambient light through the light sensor to obtain the light intensity index of the ambient light, and can determine the light intensity index of the ambient light as the ambient light intensity information, which can be used for subsequent gradual adjustment of the light transmission coefficient of the display screen of the smart eyecup.
[0037] Step 130, determining a target screen mode according to the eye opening and closing state.
[0038] Specifically, the target screen mode can include a light transmission mode and a light shielding mode, and the embodiment of the present application does not limit this. The embodiment of the present application can determine the screen mode currently required to be set by the smart eyecup according to the eye opening and closing state of the target user, and can determine the screen mode currently required to be set by the smart eyecup as the target screen mode corresponding to the eye opening and closing state. For example, the corresponding screen mode can be set according to different eye opening and closing states in advance, such as the screen mode corresponding to the eye open state can be set as the light transmission mode, and the screen mode corresponding to the eye closed state can be set as the light shielding mode, and the present example does not limit this. When the eye opening and closing state of the target user is the eye open state, the light transmission mode corresponding to the eye open state can be determined as the target screen mode; and when the eye opening and closing state of the target user is the eye closed state, the light shielding mode corresponding to the eye closed state can be determined as the target screen mode.
[0039] Step 140, gradually adjusting the light transmission coefficient of the display screen of the smart eyecup according to the target screen mode and the ambient light intensity information.
[0040] The display screen light transmission coefficient can include a light transmission index, which can be used to determine the display brightness of the smart eyecup. The display brightness of the display screen can be adjusted by adjusting the light transmission index. The embodiments of the present application do not limit this. Specifically, the embodiments of the present application can gradually adjust the display screen light transmission coefficient of the smart eyecup according to the target screen mode and the ambient light intensity information, thereby gradually adjusting the display brightness of the display screen of the smart eyecup. By gradually adjusting the display screen light transmission coefficient of the smart eyecup, the light received by the eyes of the target user can be gradually switched from a dark state to a state synchronized with the ambient light, thereby solving the problem that the existing light-blocking eyecup causes the eyes to have a very uncomfortable sensory experience when the user directly removes the light-blocking eyecup in a strong light environment. The embodiments of the present application provide a gradual visual development for the user and improve the user's sensory experience.
[0041] In a specific implementation, the smart eyecup in the embodiments of the present application can preset a corresponding light transmission coefficient for the target screen mode. The light transmission coefficient can be used to determine the maximum brightness that the smart eyecup can adjust in the current target screen mode. For example, when the target screen mode is a light transmission mode, the target user can preset a corresponding light transmission coefficient for the light transmission mode. When the target screen mode is a light-blocking mode, the target user can also preset a corresponding light transmission coefficient for the light-blocking mode. When dynamically adjusting the display screen light transmission coefficient, the smart eyecup can dynamically adjust the display screen light transmission coefficient of the smart eyecup to the light transmission coefficient corresponding to the target screen mode according to the detected ambient light intensity information. This adjusts the brightness threshold corresponding to the target screen mode according to the actual needs of the user, so that when the user does not need too bright ambient light or too dark ambient light, the display screen light transmission coefficient of the smart eyecup is dynamically adjusted according to the brightness threshold corresponding to the target screen mode preset by the user, thereby improving the user's sensory experience.
[0042] As an example, the smart eyecup can preset an adjustment duration, and the smart eyecup can gradually adjust the light transmission coefficient of the display screen within the adjustment duration, such as gradually increasing the light transmission coefficient of the display screen within the adjustment duration, i.e., gradually increasing the display brightness of the display screen, or gradually decreasing the light transmission coefficient of the display screen within the adjustment duration, i.e., gradually decreasing the display brightness of the display screen, to gradually adjust the light transmission coefficient of the display screen, i.e., gradually adjust the display brightness of the display screen, and improve the user's sensory experience. Specifically, when the target screen mode is the light transmission mode, the smart eyecup can determine the maximum brightness of the ambient light according to the detected ambient light intensity information, and can determine the maximum display brightness set by the user for the light transmission mode according to the light transmission coefficient corresponding to the light transmission mode. Then it can be determined whether the maximum display brightness threshold corresponding to the light transmission mode is greater than the maximum brightness of the ambient light. When the brightness threshold corresponding to the light transmission mode is greater than the maximum brightness of the ambient light, the smart eyecup can gradually adjust the light transmission coefficient of the display screen within the adjustment duration, i.e., gradually increase the display brightness of the display screen of the smart eyecup within the adjustment duration, until the display brightness of the display screen reaches the maximum display brightness corresponding to the light transmission mode; when the brightness threshold corresponding to the light transmission mode is less than the maximum brightness of the ambient light, the smart eyecup can gradually increase the light transmission coefficient of the display screen within the adjustment duration until the display brightness of the display screen reaches the maximum brightness of the ambient light, to gradually adjust the light transmission coefficient of the display screen.
[0043] Similarly, when the target screen mode is the light shielding mode and the user needs to shield light to sleep, the smart eyecup can gradually decrease the light transmission coefficient of the display screen within the adjustment duration, so that the display brightness of the display screen becomes smaller and smaller until the light transmission coefficient of the display screen reaches the light transmission coefficient corresponding to the light shielding mode, to gradually adjust the light transmission coefficient of the display screen in the light shielding mode.
[0044] It can be seen that, by the biological sensor of the smart eyecup, the opening and closing state of the target user's eyes is obtained, by the light sensor of the smart eyecup, the ambient light intensity information is obtained, according to the opening and closing state of the eyes, the target screen mode is determined, and according to the target screen mode and the ambient light intensity information, the light transmission coefficient of the display screen of the smart eyecup is gradually adjusted, so that the light received by the target user's eyes is gradually switched from the dark state to the state synchronized with the ambient light, thereby solving the problem that the existing light shielding eyecup causes the user's eyes to have a very uncomfortable sensory experience when the user directly takes off the light shielding eyecup in a strong light environment, avoiding uncomfortable sensory experiences such as strong light glare, and effectively improving the mental safety of the photophobic population.
[0045] Referring to Figure 2 , a step flowchart of a control method of a smart eyecup provided by an optional embodiment of the present application is shown. The control method of the smart eyecup can specifically include the following steps:
[0046] In step 210, the opening and closing state of the eyes of the target user is acquired by the biosensor of the smart eyecup.
[0047] In a specific implementation, the smart eyecup in the embodiments of the present application can be provided with a display screen, which can be a flexible display screen, such as a see-through screen. The display screen can include a display screen, such as two display screens, the positions of which can correspond to the eye positions of the left and right eyes of the target user. A plurality of sensors, such as biosensors, can be installed around the display screen, and the embodiments of the present application do not limit this. Specifically, the smart eyecup can be provided with at least two biosensors, which can serve as a biosensor group and can be installed around the display screen of the smart eyecup, respectively, to detect the opening and closing state of the left and right eyes of the target user, respectively, to obtain biosensor data, so as to determine the opening and closing state of the eyes of the target user according to the biosensor data.
[0048] In an optional embodiment, the smart eyecup in the embodiments of the present application acquires the opening and closing state of the eyes of the target user by the biosensor of the smart eyecup, which can specifically include: detecting the eyes of the target user by at least two biosensors to obtain detection data of each biosensor; determining a state distance value according to the detection data of the biosensor; and determining a preset state corresponding to the state distance value as the opening and closing state of the eyes of the target user. The state distance value can include the distance value detected by the biosensor from the eyelid of the eyes of the target user, and the preset state corresponding to the state distance value can include the open eye state and the closed eye state, and the embodiments of the present application do not limit this.
[0049] Specifically, the smart eyecup in the embodiments of the present application can be provided with at least two biosensors, which can include distance sensors (P-sensors) arranged around the display screen of the smart eyecup. The biosensor can detect the eyes of the target user, such as the eyelid of the eyes of the target user, to obtain detection data of the biosensor, and then determine the opening and closing state of the eyes of the target user according to the detection data.
[0050] As an example, the eyelid state of the target user's eye can include an eyelid open state and an eyelid closed state, the eye open state corresponding to the eyelid open state can be an eye open state, and the eye closed state corresponding to the eyelid closed state can be an eye closed state, and the present example does not limit this. The state distance value corresponding to the eyelid open state of the target user's eye detected by the biosensor and the state distance value corresponding to the eyelid closed state can be different, such as the state distance value when the eyelid is open can be greater than the state distance value when the eyelid is closed, so different state distance values can be preset for the eye open state as the preset state corresponding to the state distance value. Specifically, the distance between the eyelid of the target user's eye can be detected by multiple biosensors to obtain detection data of the multiple biosensors. Then the state distance value can be extracted from the detection data of the biosensor, and the preset state corresponding to the state distance value can be determined as the open state of the target user's eye, so that the open state of the target user's eye can be determined by the biosensor data of the multiple biosensors, multi-point sampling can be achieved, and the detection accuracy of the open state of the eye can be improved.
[0051] In actual processing, the target user can blink, and at this time the intelligent eyecup can detect that the open state of the target user's eye changes between the eye open state and the eye closed state in a short time, and the target screen mode corresponding to the open state of the eye also changes. To improve the detection accuracy of the open state of the target user's eye and avoid the problem of frequent changes of the target screen mode, the present application embodiment can determine the detection time of the detection data after obtaining the detection data of the biosensor, determine the duration corresponding to the state distance value according to the detection time of the detection data, and then determine the open state of the target user's eye according to the duration, so as to solve the problem of frequent changes of the target screen mode caused by the target user's blinking and improve the detection accuracy of the open state of the eye.
[0052] In an optional embodiment, the present application embodiment determines the preset state corresponding to the state distance value as the open state of the target user's eye, which can specifically include: determining the duration corresponding to the state distance value based on the detection time of the detection data; and determining the preset state as the open state of the target user's eye in the case where the duration reaches a preset time threshold.
[0053] Specifically, a time threshold can be preset, and after determining the duration, it can be judged whether the duration reaches the preset time threshold. If the duration reaches the preset time threshold, it can be determined that the eye opening and closing state of the target user does not change within the preset time threshold, and the preset state can be determined as the eye opening and closing state of the target user; if the duration does not reach the preset time threshold, the target user can be blinking, and the preset state can not be determined as the eye opening and closing state of the target user, realizing judging whether the target user blinks through the preset time threshold, and in the case of determining that the target user blinks, the sampling eye opening and closing state is not determined as the eye opening and closing state of the target user, thereby avoiding the problem that the target screen mode is frequently switched due to the blinking of the target user.
[0054] As an example, referring to Figure 3 , the screen of the smart eye cover can be respectively installed with a plurality of biological sensors, such as 5 biological sensors can be respectively installed around the screens of the left and right two screens, each biological sensor can be used for detecting the eyes of the target user to obtain the biological sensor data corresponding to the eyes of the target user, and then judging the eye opening and closing state of the target user according to the biological sensor data of the plurality of biological sensors, realizing multi-point sampling, and determining the eye opening and closing state of the target user through the biological sensor data obtained by multi-point sampling, improving the detection accuracy of the eye opening and closing state.
[0055] Further, after the biological sensor detects the biological sensor data, the biological sensor data can be processed through a preset algorithm, so as to determine the sampling eye opening and closing state. For example, referring to Figure 4 , the smart eye cover can be provided with a micro control unit (MCU) and a Bluetooth low energy (BLE) master, wherein the MCU can be used for controlling each sensor to collect data, such as controlling the biological sensor to monitor the eye opening and closing state of the target user, so as to collect the biological sensor data corresponding to the eyes of the target user, and then the MCU can process the biological sensor data through the built-in algorithm according to the biological sensor data to determine the duration corresponding to the state distance value, and then the preset state corresponding to the state distance value can be determined as the eye opening and closing state of the target user when the duration reaches the preset time threshold.
[0056] Step 220, obtaining the ambient light intensity information through the light sensor of the smart eye cover.
[0057] Specifically, the smart eye cover can detect the light intensity index of the ambient light in real time through the ambient light sensor, and the light intensity index of the ambient light can be used as the ambient light intensity information.
[0058] Step 230, when the eye opening and closing state is the eye open state, determining the light transmission mode corresponding to the eye open state as the target screen mode.
[0059] Specifically, the embodiment of the present application can determine the light transmission mode corresponding to the eye open state as the target screen mode when the eye opening and closing state is the eye open state. Subsequently, the display light transmission coefficient of the smart eye mask can be gradually adjusted according to the ambient light intensity information detected by the smart eye mask when the target screen mode is the light transmission mode.
[0060] Step 240, when the eye opening and closing state is the eye closed state, determining the light blocking mode corresponding to the eye closed state as the target screen mode.
[0061] Specifically, the embodiment of the present application can determine the light blocking mode corresponding to the eye closed state as the target screen mode when the eye opening and closing state is the eye closed state. Thus, the display light transmission coefficient of the smart eye mask can be gradually adjusted in the light blocking mode, so that the light received by the eyes can be gradually switched to a dark state. According to the eye opening and closing state, the target screen mode corresponding to the eye opening and closing state is determined. On the basis of ensuring the original eye mask light blocking characteristics, the display light transmission coefficient of the smart eye mask is gradually adjusted in the target screen mode, and the user's sensory experience is improved.
[0062] Step 250, gradually adjusting the display screen light transmission coefficient of the smart eye mask according to the target screen mode and the ambient light intensity information.
[0063] In a specific implementation, when the target screen mode is the light transmission mode, the smart eye mask gradually adjusts the display light transmission coefficient of the smart eye mask according to the ambient light intensity information until the display brightness of the smart eye mask reaches the brightness threshold corresponding to the light transmission mode. Thus, the light received by the eyes of the target user can be gradually switched from the dark state to the state synchronized with the ambient light, providing the user with a gradual visual expansion experience. The user is provided with a more comfortable and natural use experience and a stronger psychological security feeling.
[0064] Optionally, when the display screen light transmission coefficient includes the light transmission index of the display screen, the above-mentioned dynamically adjusting the display screen light transmission coefficient of the smart eye mask according to the ambient light intensity information detected by the smart eye mask can specifically include the following sub-steps:
[0065] Sub-step 2501, determining the light transmission index threshold corresponding to the ambient light intensity information.
[0066] Specifically, the light transmission index threshold value can be used to determine the maximum brightness of the ambient light, and the embodiments of the present application do not limit this. Specifically, after the ambient light intensity information of the ambient light is detected by the ambient light sensor in the intelligent eyecup in the embodiments of the present application, the light transmission index threshold value corresponding to the ambient light intensity information can be determined.
[0067] As an example, referring to Figure 5 , the ambient light sensor of the intelligent eyecup can be arranged at a position above the middle of the two display screens, and the present example does not limit the installation position of the ambient light sensor, so that the light intensity index of the ambient light can be quickly detected by the ambient light sensor, and the detected light intensity index of the ambient light can be taken as the ambient light intensity information, and subsequently the light transmission index of the display screen of the intelligent eyecup can be gradually adjusted according to the light transmission index threshold value corresponding to the ambient light intensity information.
[0068] In sub-step 2502, if the light transmission index threshold value is greater than the light transmission index of the display screen, the light transmission index is gradually adjusted based on the target screen mode and in combination with the preset light transmission coefficient until the adjusted light transmission index reaches the light transmission index threshold value.
[0069] Specifically, the light transmission index can be used to determine the display brightness of the smart eyecup, such as can be used to determine the display brightness of the current display screen, and the embodiments of the present application do not limit this. The preset light transmission coefficient can be used to determine the brightness threshold corresponding to the target screen mode, such as when the target screen mode is the light transmission mode, the preset light transmission coefficient can be used to determine the brightness threshold corresponding to the smart eyecup display screen. The preset light transmission coefficient can be set by the user or can be set by the smart eyecup factory, such as the target user can set the light transmission coefficient according to the actual demand, and the smart eyecup can set the light transmission coefficient set by the user as the preset light transmission coefficient. Of course, in the case where the user does not set the light transmission coefficient, the smart eyecup can also set the light transmission coefficient set by the factory as the preset light transmission coefficient, and the embodiments of the present application do not limit the preset light transmission coefficient. Specifically, after determining the light transmission index threshold corresponding to the ambient light intensity information, it can be judged whether the light transmission index threshold corresponding to the ambient light intensity information is greater than the light transmission index of the display screen, such as whether the maximum ambient light brightness corresponding to the ambient light intensity information is greater than the display brightness of the display screen. In the case where the light transmission index threshold is greater than the light transmission index of the display screen, that is, the maximum ambient light brightness is greater than the display brightness of the display screen, the light transmission index of the display screen is gradually adjusted in combination with the preset light transmission coefficient, such as the light transmission index of the display screen is slowly adjusted (that is, the display brightness of the display screen is gradually adjusted), until the adjusted light transmission index reaches the light transmission index threshold (that is, the adjusted display brightness of the display screen reaches the maximum ambient light brightness); in the case where the light transmission index threshold is not greater than the light transmission index of the display screen, it is determined that the maximum ambient light brightness is not greater than the display brightness of the current display screen, and the display brightness of the display screen can not be gradually adjusted. Thus, after detecting that the target user's eyes are open, the light transmission index of the display screen is gradually adjusted in combination with the light intensity index of the ambient light, so that the eyes gradually switch from the dark state to the state synchronized with the ambient light, solving the problem that the existing light-shielding eyecup causes the eyes to produce a very uncomfortable sensory experience when the user directly removes the light-shielding eyecup in a strong light environment. It provides a gradual visual expansion experience for the user, providing a more comfortable and natural use experience while providing stronger psychological security.
[0070] In a specific implementation, after the light transmission index threshold is determined, it can be judged whether the brightness corresponding to the preset light transmission coefficient is greater than the maximum ambient light brightness corresponding to the light transmission index threshold. If the brightness corresponding to the preset light transmission coefficient is not greater than the maximum ambient light brightness, when the light transmission index of the display screen is gradually adjusted, the smart eyecup can adjust the display brightness corresponding to the display screen to the brightness corresponding to the preset light transmission coefficient, so as to ensure the priority set by the user. The user can adjust the light transmission coefficient according to personal preference, thereby improving the user's sensory experience. If the brightness corresponding to the preset light transmission coefficient is greater than the maximum ambient light brightness, when the light transmission index of the display screen is gradually adjusted, the smart eyecup can adjust the display brightness corresponding to the display screen to the maximum ambient light brightness corresponding to the light transmission index threshold.
[0071] In an optional embodiment, the control method of the smart eyecup provided by the embodiments of the present application can further include: obtaining a light transmission adjustment operation of a target user on the smart eyecup; determining a user light transmission coefficient according to the light transmission adjustment operation; and taking the user light transmission coefficient as a preset light transmission coefficient. Specifically, the smart eyecup can determine the user light transmission coefficient according to the light transmission adjustment operation of the target user, and can take the user light transmission coefficient as the preset light transmission coefficient, so that the user can adjust the light transmission coefficient according to personal preference, thereby improving the user's sensory experience.
[0072] As an example, referring to Figure 4 , the smart eyecup can be provided with a knob and an ambient light sensor. The target user can adjust the light transmission coefficient of the smart eyecup through the knob, and the MCU can record the light transmission coefficient set by the target user in real time as a preset light transmission coefficient. Specifically, the MCU can determine the eye opening state of the target user based on the preset state corresponding to the state distance value. In the case that the eye opening state of the target user is the eye open state, the light transmission mode corresponding to the eye open state can be determined as the target screen mode. Then, the MCU can obtain the ambient light intensity information detected by the ambient light sensor, determine the light transmission index threshold corresponding to the ambient light intensity information, and further obtain the light transmission index of the current display screen. It can be judged whether the light transmission index threshold is greater than the light transmission index of the display screen. When the light transmission index threshold is greater than the light transmission index of the display screen, the light transmission index of the display screen is gradually adjusted in combination with the preset light transmission coefficient, such as the light transmission index of the screen-L and the screen-R of the smart eyecup is gradually adjusted through the screen driver, until the adjusted light transmission index reaches the light transmission index threshold, that is, at this time, the target user feels the same light intensity through the smart eyecup as the ambient light.
[0073] In summary, the intelligent eyecup of the present application obtains the eye opening and closing state of the target user through the biosensor, and simultaneously obtains the ambient light intensity information through the light sensor. The target screen mode is determined according to the eye opening and closing state. According to the target screen mode and the ambient light intensity information, the display screen light transmission coefficient of the intelligent eyecup is gradually adjusted. In this way, when the eye closing is detected, the display screen light transmission coefficient of the intelligent eyecup is gradually adjusted in combination with the ambient light intensity information, so that the display screen is switched from the light transmission mode to the light shielding mode, helping the user to quickly shield light and fall asleep. When the eye opening is detected, the display screen light transmission coefficient is gradually adjusted in combination with the ambient light intensity information, so that the light received by the eye is gradually switched from the dark state to the state synchronized with the ambient light, providing the user with a gradually expanding visual experience and improving the user's use experience.
[0074] Referring to Figure 6 , a step flowchart of a control method of an intelligent eyecup provided by an optional embodiment of the present application is shown. The control method of the intelligent eyecup can specifically include the following steps
[0075] Step 610, obtaining the eye opening and closing state of the target user through the biosensor of the intelligent eyecup.
[0076] Step 620, obtaining the ambient light intensity information through the light sensor of the intelligent eyecup.
[0077] Step 630, determining the target screen mode according to the eye opening and closing state.
[0078] Step 640, if the target screen mode is the light shielding mode, collecting the sleep state monitoring data corresponding to the target user.
[0079] Specifically, the sleep state detection data can include the body movement data of the target user, which is not limited by the embodiments of the present application. Specifically, the sleep state monitoring data corresponding to the target user can be collected when the target screen mode is the light shielding mode, so that the sleep state and sleep posture of the target user can be determined according to the sleep state monitoring data, and the sleep state can be used to determine whether the target user enters deep sleep.
[0080] As an example, referring to Figure 4The intelligent eyeshade can be provided with an acceleration sensor (G-sensor). When it is determined that the target screen mode is the light-shielding mode, it can be determined that the target user enters a sleep state. Then, the MCU can control the acceleration sensor to collect body movement data of the user in the sleep state as sleep state monitoring data. Then, a preset sleep monitoring algorithm can be used to analyze and process the sleep state monitoring data to determine the sleep state and the sleep posture of the target user. For example, the sleep monitoring algorithm can be used to analyze the difference between the body movement data to determine whether the target user enters a deep sleep state and the current sleep posture of the target user.
[0081] In step 650, a sleep detection result is sent to the intelligent associated device of the target user according to the sleep state monitoring data.
[0082] The intelligent associated device can play the specified audio data preset by the target user based on the sleep detection result.
[0083] Specifically, the intelligent associated device can be a device associated with the intelligent eyeshade, such as a smart phone, a smart watch, a smart bracelet, a Bluetooth earphone, and the like. The embodiments of the present application do not limit the same. After determining the sleep state monitoring data, the embodiments of the present application can determine the sleep state and the sleep posture of the target user based on the sleep state monitoring data, and can generate a sleep detection result based on the sleep state and the sleep posture of the target user. Then, the sleep detection result can be sent to the intelligent associated device of the target user. After receiving the sleep detection result, the intelligent associated device can play the specified audio data preset by the target user based on the sleep detection result. For example, the specified audio data can include sleep-aiding music, and the like. The embodiments of the present application do not limit the same.
[0084] As an example, refer to Figure 4The smart eyeshade can be provided with Bluetooth Low Energy and a loudspeaker. The smart eyeshade can be connected to a smart associated device of the target user through Bluetooth Low Energy. The smart associated device can be connected to the smart eyeshade through an application (App) installed on the smart associated device. The target user can set one or more sleep-aiding audio data as the specified audio data preset by the target user through the App. Specifically, after determining the sleep detection result of the target user, the smart eyeshade can send the sleep detection result to the smart associated device of the target user through the BLE master, so that the smart associated device can play the specified audio data preset by the target user based on the received sleep detection result of the target user. Specifically, the smart associated device can send the specified audio data preset by the target user to the smart eyeshade through Bluetooth Low Energy. The smart eyeshade can receive the specified audio data through Bluetooth Low Energy. Then, the MCU or the BLE master in the smart eyeshade can control the loudspeaker of the smart eyeshade to play the specified audio data, so as to provide a good sleep environment for the user, realize more intelligent human-computer interaction, and enhance the user experience.
[0085] In step 660, the alarm clock information sent by the smart associated device is received.
[0086] Specifically, the alarm clock information can include the wake-up time of the user and the wake-up ringtone of the user, and the present application does not limit this. Specifically, the target user can set the alarm clock information through the smart associated device in advance, such as setting the wake-up time and the wake-up ringtone, etc. The smart associated device can obtain the current time in real time, and can generate the alarm clock information based on the wake-up time and the wake-up ringtone set by the target user when the current time reaches the wake-up time. Then, the smart associated device can send the alarm clock information to the smart eyeshade, so as to wake up the target user according to the alarm clock information and realize the user wake-up function.
[0087] In step 670, the wake-up time of the user is determined based on the alarm clock information.
[0088] In a specific implementation, after receiving the alarm clock information, the smart eyeshade can determine the wake-up time of the user based on the alarm clock information, and can determine whether the current time reaches the wake-up time of the user. When the current time reaches the wake-up time of the user, the target screen mode can be switched from the light-shielding mode to the light-transmitting mode based on the wake-up time of the user.
[0089] In step 680, the target screen mode is switched from the light-shielding mode to the light-transmitting mode based on the wake-up time of the user.
[0090] Specifically, the embodiment of the present application can switch the target screen mode from the light-shielding mode to the light-transmitting mode based on the user wake-up time, so that the light-transmitting index of the display screen can be gradually adjusted in the light-transmitting mode, and the light received by the eyes of the target user is gradually switched from the dark state to the state synchronized with the ambient light, thereby solving the problem that the eyes of the user are prone to have a very uncomfortable sensory experience due to the direct removal of the light-shielding eyecup in a strong light environment, so that the eyes of the user can gradually adapt to the strong light, avoiding the uncomfortable sensory experience such as strong light glare, and effectively improving the mental safety of the photophobic population.
[0091] In a specific implementation, after receiving the alarm information, the smart eyecup can determine the user wake-up time based on the alarm information, and then play the user wake-up ringtone contained in the alarm information through the built-in loudspeaker when the current time reaches the user wake-up time, or at the moment before or after the current time reaches the user wake-up time, thereby waking up the user through the ringtone.
[0092] Further, in the embodiment of the present application, the smart eyecup can automatically switch the target screen mode of the smart eyecup from the light-shielding mode to the light-transmitting mode at the moment before or after playing the user wake-up ringtone, and can gradually adjust the light-transmitting index of the display screen of the smart eyecup in the light-transmitting mode, thereby realizing the user wake-up through the sound and light intensity change.
[0093] Further, the smart eyecup in the embodiment of the present application can be provided with a vibration motor. For example, referring to Figure 4 When the smart eyecup plays the user wake-up ringtone contained in the alarm information through the built-in loudspeaker, the vibration motor can also be vibrated, so that the user can be awakened through the vibration.
[0094] In summary, the embodiment of the present application obtains the eye opening and closing state of the target user through the biosensor of the intelligent eyeshade, and obtains the ambient light intensity information through the light sensor of the intelligent eyeshade, then determines the target screen mode according to the eye opening and closing state, so as to collect the sleep state monitoring data corresponding to the target user when the target screen mode corresponding to the eye opening and closing state is the light shielding mode, and can send the sleep detection result to the intelligent associated device of the target user according to the sleep state monitoring data, and play the specified audio data preset by the target user through the intelligent associated device, so as to provide a good sleep environment for the user. In the case that the target screen mode is the light shielding mode, when the alarm clock information sent by the intelligent associated device is received, the user wake-up time is determined based on the alarm clock information, and then the target screen mode can be switched from the light shielding mode to the light transmission mode, so that the display screen light transmission coefficient of the intelligent eyeshade can be gradually adjusted in the light transmission mode, so that the light received by the eyes of the target user is gradually switched from the dark state to the state synchronized with the ambient light, realizing the user wake-up function, solving the problem that the existing light shielding eyeshade causes the eyes of the user to have a very uncomfortable sensory experience due to the user directly taking off the light shielding eyeshade in a strong light environment, avoiding uncomfortable sensory experiences such as strong light glare, and effectively improving the psychological safety of the photophobic population.
[0095] It should be noted that, for the method embodiments, in order to simply describe, they are all expressed as a series of action combinations, but those skilled in the art should know that the embodiments of the present application are not limited by the described action sequence, because according to the embodiments of the present application, certain steps can be performed in other order or simultaneously.
[0096] As shown in Figure 7 The embodiment of the present application also provides a control device 700 of an intelligent eyeshade, which comprises:
[0097] An eye opening and closing state acquisition module 710, configured to acquire the eye opening and closing state of a target user through a biosensor of an intelligent eyeshade;
[0098] An ambient light intensity information acquisition module 720, configured to acquire ambient light intensity information through a light sensor of the intelligent eyeshade;
[0099] A target screen mode determination module 730, configured to determine a target screen mode according to the eye opening and closing state;
[0100] A display screen light transmission coefficient adjustment module 740, configured to gradually adjust the display screen light transmission coefficient of the intelligent eyeshade according to the target screen mode and the ambient light intensity information.
[0101] Optionally, the eye opening and closing state acquisition module comprises:
[0102] The detection data determination sub-module is configured to detect eyes of the target user through the at least two biosensors to obtain detection data of each biosensor;
[0103] The state distance value determination sub-module is configured to determine a state distance value according to the detection data of the biosensor;
[0104] The eye opening and closing state determination sub-module is configured to determine a preset state corresponding to the state distance value as an eye opening and closing state of the target user.
[0105] Optionally, the eye opening and closing state determination sub-module comprises:
[0106] The duration determination unit is configured to determine a duration corresponding to the state distance value based on a detection time of the detection data.
[0107] The eye opening and closing state determination unit is configured to determine the preset state as the eye opening and closing state of the target user in a case where the duration reaches a preset time threshold.
[0108] Optionally, the target screen mode determination module comprises:
[0109] The light transmission mode determination sub-module is configured to determine a light transmission mode corresponding to the eye opening state as the target screen mode in a case where the eye opening and closing state is the eye opening state.
[0110] The light blocking mode determination sub-module is configured to determine a light blocking mode corresponding to the eye closing state as the target screen mode in a case where the eye opening and closing state is the eye closing state.
[0111] Optionally, the display screen light transmission coefficient adjustment module comprises:
[0112] The light transmission index threshold determination sub-module is configured to determine a light transmission index threshold corresponding to the ambient light intensity information.
[0113] The gradual adjustment module is configured to, in a case where the light transmission index threshold is greater than a light transmission index of the display screen, gradually adjust the light transmission index based on the target screen mode and in combination with a preset light transmission coefficient until the adjusted light transmission index reaches the light transmission index threshold.
[0114] Optionally, the control device of the intelligent eye mask further comprises:
[0115] The sleep state monitoring data collection module is configured to collect sleep state monitoring data corresponding to the target user in a case where the target screen mode is the light blocking mode.
[0116] The sleep detection result sending module is configured to send a sleep detection result to a smart associated device of the target user according to the sleep state monitoring data, and the smart associated device is configured to play specified audio data preset by the target user based on the sleep detection result.
[0117] Optionally, the control device of the smart eyecup further includes:
[0118] The alarm clock information receiving module is configured to receive alarm clock information sent by the smart associated device.
[0119] The user wake-up time determining module is configured to determine a user wake-up time based on the alarm clock information.
[0120] The mode switching module is configured to switch the target screen mode from the light-shielding mode to the light-transmitting mode based on the user wake-up time.
[0121] Optionally, the control device of the smart eyecup further includes:
[0122] The light-transmitting adjustment operation obtaining module is configured to obtain a light-transmitting adjustment operation of a target user for the smart eyecup.
[0123] The user light-transmitting coefficient determining module is configured to determine a user light-transmitting coefficient according to the light-transmitting adjustment operation.
[0124] The preset light-transmitting coefficient determining module is configured to determine the user light-transmitting coefficient as a preset light-transmitting coefficient.
[0125] It should be noted that the control device of the smart eyecup provided in the embodiments of the present application can execute the control method of the smart eyecup provided in any embodiment of the present application, and has the corresponding functions and beneficial effects of executing the control method of the smart eyecup.
[0126] In a specific implementation, the control device of the smart eyecup can be integrated in a device, so that the device can determine a target screen mode according to the biological sensor data, and then gradually adjust the light-transmitting coefficient of the display screen of the smart eyecup based on the target screen mode and the ambient light intensity information, to serve as a smart eyecup device, and realize dynamic adjustment of the light-shielding and light-transmitting modes of the smart eyecup according to the eye opening and closing state. The smart eyecup device can be composed of two or more physical entities, or can be composed of one physical entity, for example, the smart eyecup device can be a personal computer (PC), a computer, a server, etc., and the embodiments of the present application do not make specific limitations in this regard.
[0127] For example, Figure 8As shown, the embodiment of the present application provides a smart eyeshade device, comprising a processor 111, a communication interface 112, a memory 113 and a communication bus 114, wherein the processor 111, the communication interface 112 and the memory 113 complete mutual communication through the communication bus 114; the memory 113 is used for storing a computer program; the processor 111 is used for executing the program stored on the memory 113, and the steps of the control method of the smart eyeshade provided by any one of the preceding method embodiments are implemented. Exemplarily, the steps of the control method of the smart eyeshade can include the following steps: acquiring an eye opening and closing state of a target user through a biological sensor of the smart eyeshade; acquiring ambient light intensity information through a light sensor of the smart eyeshade; determining a target screen mode according to the eye opening and closing state; and gradually adjusting a display screen light transmission coefficient of the smart eyeshade according to the target screen mode and the ambient light intensity information.
[0128] The embodiment of the present application further provides a computer readable storage medium, which has a computer program stored thereon, and the computer program is executed by a processor to implement the steps of the control method of the smart eyeshade provided by any one of the preceding method embodiments.
[0129] It should be noted that, in this document, the terms such as "first" and "second" are merely used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply that there is any such actual relationship or order between these entities or operations. Moreover, the terms "include", "contain" or any other variants thereof are intended to cover 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 explicitly listed or inherent to such a process, method, article or device. Without more limitations, the element defined by the statement "including a…" does not exclude the presence of another identical element in the process, method, article or device including the element.
[0130] The above description is merely a specific implementation of the present application, enabling those skilled in the art to understand or implement the present application. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to these embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features applied herein.
Claims
1. A control method of a smart eye mask, the method comprising: receiving a user input; and controlling the smart eye mask based on the user input. The method comprises: obtaining the opening and closing state of the eyes of a target user through a biosensor of a smart eyecup; obtaining environmental light intensity information through a light sensor of the smart eyecup; determining a target screen mode according to the opening and closing state of the eyes; gradually adjusting the light transmission coefficient of a display screen of the smart eyecup according to the target screen mode and the environmental light intensity information, comprising: determining a preset light transmission coefficient corresponding to the target screen mode; and dynamically adjusting the light transmission coefficient of the display screen to the light transmission coefficient according to the environmental light intensity information; if the target screen mode is a light shielding mode, collecting sleep state monitoring data corresponding to the target user; sending a sleep detection result to a smart associated device of the target user according to the sleep state monitoring data, the smart associated device being configured to play specified audio data preset for the target user based on the sleep detection result; receiving alarm information sent by the smart associated device; determining a user wake-up time based on the alarm information; switching the target screen mode from the light shielding mode to a light transmission mode based on the user wake-up time; wherein the light transmission coefficient of the display screen comprises a light transmission index of the display screen, and the dynamic adjustment of the light transmission coefficient of the display screen to the light transmission coefficient according to the environmental light intensity information comprises: determining a light transmission index threshold corresponding to the environmental light intensity information; and if the light transmission index threshold is greater than the light transmission index of the display screen, gradually adjusting the light transmission index based on the target screen mode and the preset light transmission coefficient until the adjusted light transmission index reaches the light transmission index threshold. The control method further comprises, before the gradual adjustment of the light transmission index based on the target screen mode and the preset light transmission coefficient: determining whether the light transmission index threshold is greater than the light transmission index of the display screen; and if the light transmission index threshold is not greater than the light transmission index of the display screen, not performing the gradual adjustment of the light transmission index.
2. The method of claim 1, wherein, The method comprises: detecting the eyes of the target user through at least two biosensors to obtain detection data of each biosensor; determining a state distance value according to the detection data of the biosensors; determining a preset state corresponding to the state distance value as the opening and closing state of the eyes of the target user.
3. The method of claim 2, wherein, The method comprises: determining the duration corresponding to the state distance value based on the detection time of the detection data; in the case where the duration reaches a preset time threshold, determining the preset state as the opening and closing state of the eyes of the target user.
4. The method of claim 1, wherein, The method comprises: in the case where the opening and closing state of the eyes is an open eye state, determining a light transmission mode corresponding to the open eye state as the target screen mode; and in the case where the opening and closing state of the eyes is a closed eye state, determining a light shielding mode corresponding to the closed eye state as the target screen mode.
5. The method according to any one of claims 1 to 4, characterized in that, The method further comprises: Obtaining a light transmission adjustment operation of a target user on the smart eyecup; Determining a user light transmission coefficient according to the light transmission adjustment operation; Taking the user light transmission coefficient as a preset light transmission coefficient.
6. A control device of a smart eye mask, characterized by, Comprise: An eye opening and closing state acquisition module for acquiring the eye opening and closing state of a target user through a biological sensor of a smart eyecup; An ambient light intensity information acquisition module for acquiring ambient light intensity information through a light sensor of the smart eyecup; A target screen mode determination module for determining a target screen mode according to the eye opening and closing state; A display screen light transmission coefficient adjustment module for gradually adjusting the display screen light transmission coefficient of the smart eyecup according to the target screen mode and the ambient light intensity information, comprising: determining a preset light transmission coefficient corresponding to the target screen mode; and dynamically adjusting the display screen light transmission coefficient to the light transmission coefficient according to the ambient light intensity information; A sleep state monitoring data collection module for collecting sleep state monitoring data of the target user when the target screen mode is a light shielding mode; A sleep detection result sending module for sending a sleep detection result to a smart associated device of the target user according to the sleep state monitoring data, the smart associated device being configured to play preset specified audio data of the target user based on the sleep detection result; An alarm information receiving module for receiving alarm information sent by the smart associated device; A user wake-up time determination module for determining a user wake-up time based on the alarm information; A mode switching module for switching the target screen mode from the light shielding mode to a light transmission mode based on the user wake-up time; The display screen light transmission coefficient comprises a light transmission index of the display screen, and the display screen light transmission coefficient adjustment module comprises a light index threshold determination submodule and a gradual adjustment module; The light index threshold determination submodule is configured to determine a light transmission index threshold corresponding to the ambient light intensity information, and determine whether the light transmission index threshold is greater than the light transmission index of the display screen; when the light transmission index threshold is not greater than the light transmission index, the gradual adjustment module is not triggered to gradually adjust the light transmission index; The gradual adjustment module is configured to, when the light transmission index threshold is greater than the light transmission index of the display screen, gradually adjust the light transmission index based on the target screen mode and the preset light transmission coefficient until the adjusted light transmission index reaches the light transmission index threshold.
7. An intelligent eyewear device, characterized by, The smart eyecup comprises a processor, a communication interface, a memory and a communication bus, wherein the processor, the communication interface and the memory communicate with each other through the communication bus; The memory is configured to store a computer program; The processor is configured to execute the program stored in the memory to implement the steps of the control method of the smart eyecup according to any one of claims 1-5.
8. A computer readable storage medium having stored thereon a computer program, characterized in that, The computer program is executed by the processor to implement the steps of the control method of the smart eyecup according to any one of claims 1-5.
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