Interaction control method and apparatus for smart wearable device, and wearable device and storage medium
By detecting eye interaction metrics and switching to the target interaction mode, the fatigue and misoperation problems caused by eye-tracking interaction methods are solved, thus improving the user experience of smart wearable devices.
Patent Information
- Application Number
- PCT/CN2025/100254
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-04
- Filing Date
- 2025-06-10
- Publication Date
- 2026-01-08
AI Technical Summary
Existing eye-tracking interaction methods in smart wearable devices are prone to causing eye fatigue and frequent misoperations, thus affecting the user experience.
By detecting the wearer's eye interaction metrics, such as eye health data, number of consecutive blinks, and duration of eye interaction, it determines whether preset conditions are met. If the conditions are met, it switches to the target interaction mode, such as touch or device interaction mode, to reduce the usage time of eye-tracking interaction and avoid eye fatigue.
It effectively reduces eye fatigue caused by eye-tracking interaction, lowers the frequency of misoperation, and improves the user experience of smart wearable devices.
Smart Images

Figure CN2025100254_08012026_PF_FP_ABST
Abstract
Description
Smart wearable device interaction control method and device, wearable device, and storage medium
[0001] The present disclosure claims priority to a Chinese patent application No. 202410897578.5, filed on July 4, 2024, and entitled "Smart wearable device interaction control method and device, smart wearable device, and storage medium", the entire content of which is incorporated herein by reference. TECHNICAL FIELD
[0002] The present application relates to the technical field of smart wearable devices, in particular to a smart wearable device interaction control method and device, a smart wearable device, and a computer readable storage medium. BACKGROUND
[0003] With the development of smart wearable technology, augmented reality devices and virtual reality devices have entered the lives of users. At present, there are various main interaction methods for smart wearable devices such as augmented reality devices and virtual reality devices, such as eye tracking interaction, gesture recognition interaction, etc. Among them, the eye tracking interaction method mainly relies on user eye movement to complete automatic selection and confirmation; however, when using the eye tracking interaction method, it is easy to cause misoperation. SUMMARY
[0004] The present application provides a smart wearable device interaction control method and device, a smart wearable device, and a computer readable storage medium, which can avoid the problem of eye fatigue caused by using the eye tracking interaction method for too long, thereby reducing the misoperation of the eye tracking interaction method and improving the user experience of smart wearable device interaction.
[0005] In a first aspect, the present application provides a smart wearable device interaction control method, which comprises:
[0006] detecting an eye interaction index of a wearing object when a smart wearable device is in an eye tracking interaction mode;
[0007] determining a target interaction mode of the smart wearable device when the eye interaction index meets a preset index condition;
[0008] switching the smart wearable device from the eye tracking interaction mode to the target interaction mode.
[0009] In a second aspect, the present application provides a smart wearable device interaction control device, which comprises:
[0010] a detection unit configured to detect an eye interaction index of a wearing object when a smart wearable device is in an eye tracking interaction mode;
[0011] determining unit configured to determine a target interaction mode of the smart wearable device when the eye interaction index meets a preset index condition;
[0012] a control unit configured to switch the smart wearable device from the eye movement tracking interaction mode to the target interaction mode.
[0013] In a third aspect, the present application provides a smart wearable device, which comprises a processor and a memory, and the memory stores a computer program, and the processor invokes the computer program in the memory to execute any of the smart wearable device interaction control methods provided in the present application.
[0014] In a fourth aspect, the present application provides a computer readable storage medium, which stores a computer program, and the computer program is loaded by a processor to execute the smart wearable device interaction control method.
[0015] The present application detects the eye interaction index of the wearing object when the smart wearable device is in the eye movement tracking interaction mode, and switches the smart wearable device from the eye movement tracking interaction mode to the target interaction mode when the eye interaction index meets the preset index condition. Thus, the eye interaction index can be used to reflect the eye fatigue degree of the wearing object, so that the eye movement tracking interaction mode can be automatically switched to other interaction modes when the wearing object is eye fatigue, the human eye fatigue problem caused by long time use of the eye movement tracking interaction mode can be avoided, the misoperation of the eye movement tracking interaction mode can be reduced, and the user experience of the smart wearable device interaction can be improved. BRIEF DESCRIPTION OF DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0017] FIG. 1 is a structural schematic block diagram of a smart wearable device provided in an embodiment of the present application;
[0018] FIG. 2 is a flow schematic diagram of a smart wearable device interaction control method provided in an embodiment of the present application;
[0019] FIG. 3 is another flow schematic diagram of a smart wearable device interaction control method provided in an embodiment of the present application;
[0020] FIG. 4 is an embodiment schematic diagram of a smart wearable device interaction control process in an embodiment of the present application;
[0021] Fig. 5 is a structural schematic diagram of an embodiment of the intelligent wearable device interaction control apparatus provided in the present application. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the present application will be clearly and completely described with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a 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 skilled in the art without creative work fall within the scope of protection of the present application.
[0023] The flowcharts shown in the drawings are only exemplary and do not necessarily include all the contents and operations / steps, nor do they have to be executed in the order described. For example, some operations / steps can be further decomposed, combined or partially merged, so the actual execution order can be changed according to the actual situation.
[0024] In the description of the embodiments of the present application, it should be understood that the terms "first", "second" are used only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the embodiments of the present application, the meaning of "multiple" is two or more, unless otherwise explicitly specified.
[0025] The following description is given in order to enable any person skilled in the art to practice the present application. In the following description, details are set forth in order to explain the application. It will be apparent to those skilled in the art that the application can be practiced without using these specific details. In other instances, well-known processes have not been described in detail in order to avoid unnecessarily obscuring the description of the embodiments of the present application. Therefore, the present application is not intended to be limited to the embodiments shown, but is to be accorded the widest scope consistent with the principles and features disclosed herein.
[0026] The embodiments of the present application provide an intelligent wearable device interaction control method, apparatus, intelligent wearable device and computer readable storage medium. The intelligent wearable device interaction control apparatus can be integrated in the intelligent wearable device. The intelligent wearable device can be smart glasses, smart helmet, etc. The smart glasses can be AR (augmented reality) glasses, VR (Virtual Reality) glasses, MR (Mixed Reality) glasses, XR (eXtended Reality) glasses, etc. The smart helmet can be an AR helmet, etc.
[0027] The execution subject of the intelligent wearable device interaction control method can be an intelligent wearable device interaction control apparatus provided by the embodiments of the present application, or an intelligent wearable device integrated with the intelligent wearable device interaction control apparatus, wherein the intelligent wearable device interaction control apparatus can be implemented in the form of hardware or software.
[0028] Some embodiments of the present application will be described in detail below with reference to the accompanying drawings. The following embodiments and features in the embodiments can be combined with each other without conflict.
[0029] FIG. 1 is a structural schematic block diagram of an intelligent wearable device provided by the embodiments of the present application.
[0030] As shown in FIG. 1, the intelligent wearable device 100 includes a processor 101 and a memory 102, and the processor 101 and the memory 102 are connected through a bus 103, such as an I2C (Inter-integrated Circuit) bus.
[0031] Specifically, the processor 101 is configured to provide computing and control capabilities to support the operation of the entire intelligent wearable device 100. The processor 101 can be a central processing unit (CPU), and the processor 101 can also be other general-purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor.
[0032] Specifically, the memory 102 can be a Flash chip, a read-only memory (ROM) disk, an optical disk, a U disk or a mobile hard disk, etc.
[0033] Those skilled in the art can understand that the structure shown in FIG. 1 is only a block diagram of part of the structure related to the embodiments of the present application, and does not constitute a limitation on the intelligent wearable device to which the embodiments of the present application are applied. The specific intelligent wearable device can include more or fewer components than those shown in the figure, or combine certain components, or have a different component arrangement.
[0034] The processor 101 is configured to run a computer program stored in the memory 102, and implement any one of the intelligent wearable device interaction control methods provided in the embodiments of the present application when the computer program is executed. For example, the processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0035] detecting an eye interaction index of a wearing object when the intelligent wearable device is in the eye movement tracking interaction mode; determining a target interaction mode of the intelligent wearable device when the eye interaction index meets a preset index condition; and switching the intelligent wearable device from the eye movement tracking interaction mode to the target interaction mode.
[0036] In some embodiments, the eye interaction index includes at least one of first eye health data, a number of consecutive blinks, and an eye interaction duration. The processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0037] detecting at least one of first eye health data, a number of consecutive blinks, and an eye interaction duration of a wearing object when the intelligent wearable device is in the eye movement tracking interaction mode; and determining whether the eye interaction index meets a preset index condition based on at least one of the first eye health data, the number of consecutive blinks, and the eye interaction duration of the wearing object.
[0038] In some embodiments, the eye interaction index includes first eye health data, a number of consecutive blinks, and an eye interaction duration. The processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0039] When the first eye health data of the wearing object meets a preset non-healthy condition, the number of consecutive blinks of the wearing object is greater than a preset blink number threshold, or the eye interaction duration of the wearing object is greater than a preset interaction duration, it is determined that the eye interaction index meets the preset index condition. Or, when the first eye health data of the wearing object does not meet the preset non-healthy condition, the number of consecutive blinks of the wearing object is less than or equal to the preset blink number threshold, and the eye interaction duration of the wearing object is less than or equal to the preset interaction duration, it is determined that the eye interaction index does not meet the preset index condition.
[0040] In some embodiments, the first eye health data includes eye blood content and eye fatigue degree. The processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0041] When the eye blood filament content is greater than a preset blood filament content threshold, or the eye fatigue degree is greater than a preset fatigue degree threshold, it is determined that the first eye health data of the wearing object meets a preset unhealthy condition; or when the eye blood filament content is less than or equal to the preset blood filament content threshold, and the eye fatigue degree is less than or equal to the preset fatigue degree threshold, it is determined that the first eye health data of the wearing object does not meet the preset unhealthy condition.
[0042] In some embodiments, the processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0043] When the eye interaction index meets a preset condition, the connection state of the interaction control device of the smart wearable device is detected; when the smart wearable device has connected the interaction control device, the device interaction mode is taken as the target interaction mode of the smart wearable device; or when the smart wearable device has not connected the interaction control device, the touch interaction mode is taken as the target interaction mode of the smart wearable device.
[0044] In some embodiments, the processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0045] When the accumulated switching time length of the smart wearable device switching to the target interaction mode is greater than a preset switching time length threshold, the second eye health data of the wearing object is acquired; when the second eye health data of the wearing object meets a preset health condition, the smart wearable device is switched from the target interaction mode to the eye movement tracking interaction mode.
[0046] In some embodiments, the processor 101 is configured to run a computer program stored in the memory 102, and when the computer program is executed, the following steps can be implemented:
[0047] When the second eye health data of the wearing object does not meet the preset health condition, and the number of times of accumulated determination of not meeting the preset health condition is greater than a preset determination number threshold, the smart wearable device is kept in the target interaction mode.
[0048] It should be noted that, for the convenience and brevity of description, the specific working process of the smart wearable device described above can refer to the corresponding process in the following smart wearable device interaction control method embodiments, which will not be described here.
[0049] Hereinafter, taking the smart wearable device shown in FIG. 1 as an example of an execution subject of the smart wearable device interaction control method, the smart wearable device interaction control method provided by the embodiments of the present application will be described in detail. In order to simplify and facilitate the description, the execution subject will be omitted in the following method embodiments. It should be noted that the scenario in FIG. 1 is only used to explain the smart wearable device interaction control method provided by the embodiments of the present application, but does not constitute a limitation on the application scenarios of the smart wearable device interaction control method provided by the embodiments of the present application.
[0050] Please refer to FIG. 2, which is a flowchart of a smart wearable device interaction control method provided by an embodiment of the present application. The smart wearable device interaction control method comprises steps 201-203, wherein:
[0051] 201. Detect eye interaction indicators of a wearing object when the smart wearable device is in an eye movement tracking interaction mode.
[0052] The smart wearable device can be smart glasses, a smart helmet, etc. The smart glasses can be AR (augmented reality) glasses, VR (Virtual Reality) glasses, MR (Mixed Reality) glasses, XR (eXtended Reality) glasses, etc. The smart helmet can be an AR helmet, etc.
[0053] The eye interaction indicators are used to indicate the eye conditions of the wearing object when the smart wearable device is in the eye movement tracking interaction mode. The eye interaction indicators include eye health data, continuous blinking times, and eye interaction duration.
[0054] The eye interaction duration refers to the cumulative duration of the interaction operation using the eye movement tracking interaction mode.
[0055] The eye health data can include at least one of whether the wearing object has bloodshot eyes, bloodshot eye content of the wearing object, and eye fatigue degree of the wearing object.
[0056] The first eye health data is the eye health data of the wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0057] The second eye health data is the eye health data of the wearing object after the smart wearable device switches to the target interaction mode.
[0058] The continuous blinking times refer to the total number of cumulative blinks when the interval between adjacent two blinks is within a preset interval. For example, taking 0.5 seconds as the preset interval, if the user blinks 10 times with an interval within 0.5 seconds, the continuous blinking times are 10.
[0059] The manner of detecting the eye interaction index in step 201 is various, and exemplarily includes:
[0060] (1) The eye interaction index is the first eye health data. At this time, the eye interaction index can be detected according to steps 2011A-2013A, and it is determined whether the eye interaction index meets the preset index condition or not:
[0061] 2011A, detecting the first eye health data of the wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0062] 2012A, when the first eye health data meets the preset non-healthy condition, it is determined that the eye interaction index meets the preset index condition.
[0063] 2013A, when the first eye health data does not meet the preset non-healthy condition, it is determined that the eye interaction index does not meet the preset index condition.
[0064] Based on the different eye health data, the manner of determining whether the eye interaction index meets the preset index condition in steps 2012A-2013A is various, and exemplarily includes:
[0065] ① For example, taking the case that the first eye health data is the eye bloodshot as an example, in step 2011A, it can be detected whether the eye of the wearing object has bloodshot when the smart wearable device is in the eye movement tracking interaction mode; when it is detected that the eye of the wearing object has bloodshot, it is considered that the first eye health data meets the preset non-healthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition; when it is detected that the eye of the wearing object does not have bloodshot, it is considered that the first eye health data does not meet the preset non-healthy condition, and it is determined that the eye interaction index of the wearing object does not meet the preset index condition. Alternatively, the bloodshot content of the eye of the wearing object when the smart wearable device is in the eye movement tracking interaction mode can be detected, and when it is detected that the bloodshot content of the eye of the wearing object is greater than a preset bloodshot content threshold, it is considered that the first eye health data meets the preset non-healthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition; when it is detected that the bloodshot content of the eye of the wearing object is less than or equal to the preset bloodshot content threshold, it is considered that the first eye health data does not meet the preset non-healthy condition, and it is determined that the eye interaction index of the wearing object does not meet the preset index condition.
[0066] Thus, since the eye bloodshot condition can reflect the eye fatigue degree of the wearing object to a certain extent, by detecting that the eye bloodshot content of the wearing object is greater than the preset bloodshot content threshold, it is considered that the first eye health data meets the preset unhealthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition, which can avoid the problem of human eye fatigue caused by long-time use of the eye movement tracking interaction mode, and further reduce the misoperation of the eye movement tracking interaction mode.
[0067] For example, in step 2011A, the eye fatigue degree of the wearing object can be detected by eye movement tracking technology (for example, the AR glasses can monitor the eye movement and frequency of the user through the built-in eye movement tracking sensor; by analyzing the movement pattern and frequency of the eye, it can be evaluated whether the user has eye fatigue, eye fatigue degree, etc.), and the eye fatigue degree of the wearing object can be detected by visual quality analysis (for example, the AR glasses can capture images in the user's field of view through the camera or sensor, and analyze the sharpness and stability of the images; if the images are frequently blurred or have jitter, it is considered that the user is in an eye fatigue state; by analyzing the sharpness and stability of the images, it can be evaluated whether the user has eye fatigue, eye fatigue degree, etc.), so as to determine the eye fatigue degree of the wearing object when the smart wearable device is in the eye movement tracking interaction mode. When it is detected that the eye fatigue degree of the wearing object is greater than the preset fatigue degree threshold, it is considered that the first eye health data meets the preset unhealthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition. When it is detected that the eye fatigue degree of the wearing object is less than or equal to the preset fatigue degree threshold, it is considered that the first eye health data does not meet the preset unhealthy condition, and it is determined that the eye interaction index of the wearing object does not meet the preset index condition.
[0068] Thus, by detecting that the eye fatigue degree of the wearing object is greater than the preset fatigue degree threshold, it is considered that the first eye health data meets the preset unhealthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition, which can avoid the problem of human eye fatigue caused by long-time use of the eye movement tracking interaction mode, and further reduce the misoperation of the eye movement tracking interaction mode.
[0069] For example, the first eye health data includes the eye bloodshot condition and the eye fatigue degree. In some embodiments, the first eye health data includes multiple (e.g., the eye bloodshot content and the eye fatigue degree). When one of the first eye health data meets the preset unhealthy condition, it is determined that the first eye health data meets the preset unhealthy condition. For example, the first eye health data includes the eye bloodshot content and the eye fatigue degree. In this case, in step 2011A, the eye bloodshot content and the eye fatigue degree of the wearing object when the smart wearable device is in the eye movement tracking interaction mode are detected. If the eye bloodshot content of the wearing object is greater than the preset bloodshot content threshold value, and the eye fatigue degree is greater than the preset fatigue degree threshold value, it is considered in step 2012A that the first eye health data meets the preset unhealthy condition, and it is determined that the eye interaction index meets the preset index condition. Otherwise, if the eye bloodshot content of the wearing object is less than or equal to the preset bloodshot content threshold value, or the eye fatigue degree is less than or equal to the preset fatigue degree threshold value, it is considered in step 2013A that the first eye health data does not meet the preset unhealthy condition, and it is determined that the eye interaction index does not meet the preset index condition.
[0070] In some embodiments, the first eye health data includes multiple (e.g., the eye bloodshot content, the eye fatigue degree, and the number of continuous blinks). When one of the first eye health data meets the preset unhealthy condition, it is determined that the first eye health data meets the preset unhealthy condition. For example, the first eye health data includes the eye bloodshot content and the eye fatigue degree. In this case, in step 2011A, the eye bloodshot content and the eye fatigue degree of the wearing object when the smart wearable device is in the eye movement tracking interaction mode are detected. If the eye bloodshot content of the wearing object is greater than the preset bloodshot content threshold value, or the eye fatigue degree is greater than the preset fatigue degree threshold value, it is considered in step 2012A that the first eye health data meets the preset unhealthy condition, and it is determined that the eye interaction index meets the preset index condition. Otherwise, if the eye bloodshot content of the wearing object is less than or equal to the preset bloodshot content threshold value, and the eye fatigue degree is less than or equal to the preset fatigue degree threshold value, it is considered in step 2013A that the first eye health data does not meet the preset unhealthy condition, and it is determined that the eye interaction index does not meet the preset index condition.
[0071] (2) The eye interaction index is the number of continuous blinks. In this case, the eye interaction index can be detected according to steps 2011B-2013B, and it is determined whether the eye interaction index meets the preset index condition:
[0072] 2011B, detecting the number of continuous blinks of the wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0073] 2012B, when it is detected that the number of continuous blinks of the wearing object is greater than the preset blink number threshold value, it is determined that the eye interaction index of the wearing object meets the preset index condition.
[0074] 2013B, when it is detected that the number of consecutive blinks of the wearing object is less than or equal to a preset blink number threshold, it is determined that the eye interaction index of the wearing object does not meet the preset index condition.
[0075] For example, taking the number of consecutive blinks as an example, when the interval between adjacent two blinks is within a preset interval of 0.5 seconds, the total number of accumulated blinks is counted. After the user starts to use the eye movement tracking interaction mode to interact with the smart wearable device, if the user accumulates 11 blinks and the interval between each blink is within 0.5 seconds, the number of consecutive blinks is considered to be 11 times. Since the number of consecutive blinks of the wearing object (i.e. 11 times) is greater than the preset blink number threshold (such as 10 times), it is determined that the eye interaction index of the wearing object meets the preset index condition, and at this time, step 202 can be entered to determine the target interaction mode.
[0076] If the user accumulates 5 blinks and the interval between each blink is within 0.5 seconds, the number of consecutive blinks is considered to be 5 times. Since the number of consecutive blinks of the wearing object (i.e. 5 times) is less than or equal to the preset blink number threshold (such as 10 times), it is determined that the eye interaction index of the wearing object does not meet the preset index condition, and at this time, step 202 is not entered, and whether the eye interaction index of the wearing object meets the preset index condition is continued to be detected.
[0077] Here, the value of the preset blink number threshold is only an example, and it can be understood that the specific value of the preset blink number threshold can be set according to the actual business scene requirements, and is not limited by this place.
[0078] Therefore, since the number of consecutive blinks can reflect the degree of eye fatigue of the wearing object to a certain extent, when it is detected that the number of consecutive blinks of the wearing object is greater than the preset blink number threshold, it is considered that the first eye health data meets the preset non-healthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition, which can avoid the problem of human eye fatigue caused by using the eye movement tracking interaction mode for too long, and further reduce the misoperation of the eye movement tracking interaction mode.
[0079] (3) The eye interaction index is the eye interaction time length. At this time, the eye interaction index can be detected according to steps 2011C-2013C, and whether the eye interaction index meets the preset index condition is determined:
[0080] 2011C, detecting the eye interaction time length of the wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0081] Exemplarily, when the smart wearable device is in the eye movement tracking interaction mode, the starting time point of the smart wearable device entering the eye movement interaction mode can be obtained; based on the starting time point, the eye interaction time length of the wearing object when the smart wearable device is in the eye movement tracking interaction mode is determined.
[0082] 2012C, when the eye interaction duration is greater than the preset interaction duration, determining that the eye interaction index of the wearing object meets the preset index condition.
[0083] 2013C, when the eye interaction duration is less than or equal to the preset interaction duration, determining that the eye interaction index of the wearing object does not meet the preset index condition.
[0084] For example, it is detected that the user starts to interact with the smart wearable device using the eye movement tracking interaction mode from 9:00, and the current time is 9:40, so the eye interaction duration of the wearing object is 40 minutes; since the eye interaction duration of the wearing object (i.e. 40 minutes) is greater than the preset interaction duration (e.g. 30 minutes), it is determined that the eye interaction index of the wearing object meets the preset index condition, and at this time, step 202 of determining the target interaction mode can be entered.
[0085] For another example, it is detected that the user starts to interact with the smart wearable device using the eye movement tracking interaction mode from 9:00, and the current time is 9:20, so the eye interaction duration of the wearing object is 40 minutes; since the eye interaction duration of the wearing object (i.e. 20 minutes) is less than or equal to the preset interaction duration (e.g. 30 minutes), it is determined that the eye interaction index of the wearing object does not meet the preset index condition, and at this time, step 202 is not entered, and it is continued to detect whether the eye interaction index of the wearing object meets the preset index condition.
[0086] Here, the value of the preset interaction duration is only an example, and it can be understood that the specific value of the preset interaction duration can be set according to the actual business scene requirements, and is not limited by this.
[0087] Therefore, since the eye interaction duration can reflect the eye fatigue degree of the wearing object to a certain extent, by detecting that the eye interaction duration of the wearing object is greater than the preset interaction duration, it is considered that the first eye health data meets the preset non-healthy condition, and it is determined that the eye interaction index of the wearing object meets the preset index condition, which can avoid the problem of human eye fatigue caused by using the eye movement tracking interaction mode for too long, and further reduce the misoperation of the eye movement tracking interaction mode.
[0088] (4) The eye interaction index includes the first eye health data, the number of consecutive blinks, and the eye interaction duration. At this time, the eye interaction index can be detected according to steps 2011D-2014D, and it is determined whether the eye interaction index meets the preset index condition:
[0089] 2011D, detecting the first eye health data, the number of consecutive blinks, and the eye interaction duration of the wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0090] The implementation of step 2011D is similar to that of step 2011A, step 2011B, and step 2011C, and specific reference can be made to the previous related description, which will not be repeated here.
[0091] 2012D, when the first eye health data of the wearing object meets the preset non-healthy condition, the number of consecutive blinks of the wearing object is greater than the preset blink number threshold, or the eye interaction duration of the wearing object is greater than the preset interaction duration, it is determined that the eye interaction index meets the preset index condition.
[0092] 2013D, when the first eye health data of the wearing object does not meet the preset non-healthy condition, the number of consecutive blinks of the wearing object is less than or equal to the preset blink number threshold, and the eye interaction duration of the wearing object is less than or equal to the preset interaction duration, it is determined that the eye interaction index does not meet the preset index condition.
[0093] 202, when the eye interaction index meets the preset index condition, determining the target interaction mode of the smart wearable device.
[0094] There are various ways to determine the target interaction mode in step 202, and exemplarily, they include:
[0095] (1) The interaction mode of the smart wearable device includes eye movement interaction mode, device interaction mode, and touch control interaction mode. When the smart wearable device is connected to the interaction control device, the device interaction mode is preferentially selected as the target interaction mode. When the smart wearable device is not connected to the interaction control device, the touch control interaction mode is selected as the target interaction mode. At this time, step 202 can specifically include steps 2021A-2023A as follows:
[0096] 2021A, when the eye interaction index meets the preset condition, detecting the connection state of the interaction control device of the smart wearable device.
[0097] The interaction control device can be a ring, a glove, a band, etc. The smart wearable device and the interaction control device can be connected through Bluetooth, a wireless local area network, etc.
[0098] 2022A, when the smart wearable device has been connected to the interaction control device, the device interaction mode is selected as the target interaction mode of the smart wearable device.
[0099] 2023A, when the smart wearable device has not been connected to the interaction control device, the touch control interaction mode is selected as the target interaction mode of the smart wearable device.
[0100] For example, taking the example that the interactive control device is a ring and the smart wearable device is AR glasses, when it is detected that the eye interaction index meets the preset condition, it is detected whether the AR glasses are connected with the ring; if the AR glasses are connected with the ring, the device interaction mode (i.e. the ring interaction mode) is taken as the target interaction mode of the AR glasses; otherwise, if the AR glasses are not connected with the ring, the touch interaction mode is taken as the target interaction mode of the AR glasses.
[0101] (2) The smart wearable device has multiple interaction modes, and the user can set the priority of each interaction mode of the smart wearable device, and the interaction mode with high priority is preferentially selected as the target interaction mode. At this time, step 202 can specifically include the following steps 2021B-2022B:
[0102] 2021B, detecting the priority of each interaction mode of the smart wearable device.
[0103] 2022B, obtaining the interaction mode with the highest priority from each interaction mode of the smart wearable device as the target interaction mode of the smart wearable device.
[0104] 203, switching the smart wearable device from the eye movement tracking interaction mode to the target interaction mode.
[0105] For example, when the target interaction mode is a device interaction mode (such as a ring interaction mode), the smart wearable device can be switched from the eye movement tracking interaction mode to the device interaction mode (such as the ring interaction mode), thereby the user can interact with the smart wearable device in the device interaction mode (such as the ring interaction mode), avoiding the problem that the user uses the eye movement tracking interaction mode for too long and causes eye fatigue, thereby reducing the misoperation problem of the smart wearable device and improving the user experience of the smart wearable device interaction.
[0106] For another example, when the target interaction mode is a touch interaction mode, the smart wearable device can be switched from the eye movement tracking interaction mode to the touch interaction mode, thereby the user can interact with the smart wearable device in the touch interaction mode, avoiding the problem that the user uses the eye movement tracking interaction mode for too long and causes eye fatigue, thereby reducing the misoperation problem of the smart wearable device and improving the user experience of the smart wearable device interaction.
[0107] Further, the user can also freely choose to turn on or turn off the intelligent replacement eye movement tracking interaction function, when the user chooses to turn on the intelligent replacement eye movement tracking interaction function, the process of steps 201-203 is executed to intelligently replace the eye movement tracking interaction mode with other interaction modes, to avoid the problem of eye fatigue caused by the user using the eye movement tracking interaction mode for too long, thereby reducing the misoperation problem of the smart wearable device; otherwise, when the user chooses to turn off the intelligent replacement eye movement tracking interaction function, the process of steps 201-203 will not be executed, so that the user can independently choose the eye movement tracking interaction mode for interaction, improving the user experience of the smart wearable device interaction. That is, step 201 can also be implemented as follows: detecting the on-off state of the intelligent replacement eye movement tracking interaction function of the smart wearable device, when the intelligent replacement eye movement tracking interaction function of the smart wearable device is in the on state, detecting the eye interaction indicators of the wearing object when the smart wearable device is in the eye movement tracking interaction mode. Among them, the intelligent replacement eye movement tracking interaction function includes a human eye health detection sub-function (the specific implementation of this sub-function can refer to the related description of steps 2011A-2013A), an eye movement tracking interaction time detection sub-function (the specific implementation of this sub-function can refer to the related description of steps 2011C-2013C), a blink detection sub-function (the specific implementation of this sub-function can refer to the related description of steps 2011B-2013B), and an automatic switching back to eye movement tracking interaction sub-function (the specific implementation of this sub-function can refer to the related description of steps 204-206).
[0108] Further, after the smart wearable device is switched from the eye movement tracking interaction mode to the target interaction mode, when the first eye health data of the wearing object meets the preset health condition, the interaction mode can also be switched back to the eye movement tracking interaction mode to ensure that the user continues to use the eye movement tracking interaction mode for interaction operation after the user's eye fatigue is recovered. At this time, as shown in FIG. 3, the smart wearable device interaction control method can further include the following steps 204-206:
[0109] 204, when the cumulative switching time length of the smart wearable device switched to the target interaction mode is greater than the preset switching time length threshold, the second eye health data of the wearing object is obtained.
[0110] 205, when the second eye health data of the wearing object meets the preset health condition, the smart wearable device is switched from the target interaction mode to the eye movement tracking interaction mode.
[0111] 206, when the second eye health data of the wearing object does not meet the preset health condition, and the number of times of cumulative determination of not meeting the preset health condition is greater than the preset determination number threshold, the smart wearable device is kept in the target interaction mode.
[0112] The cumulative switching time refers to the total time that the smart wearable device has used the target interaction mode after switching from eye-tracking interaction mode to target interaction mode.
[0113] The cumulative number of times that the wearer's eye health data is determined to be inconsistent with the preset health conditions refers to the total number of times that the wearer's eye health data is determined to be inconsistent with the preset health conditions after the smart wearable device switches from eye-tracking interaction mode to target interaction mode.
[0114] Specifically, in steps 204-206, the method of steps 2011A-2013A can be used to determine whether the wearer's second eye health data meets the preset health conditions. When the wearer's second eye health data is determined to not meet the preset health conditions, if the cumulative number of determinations of not meeting the preset health conditions is less than or equal to a preset determination threshold (e.g., 3 times), the wearer's second eye health data will be re-acquired at preset intervals (e.g., 5 minutes) to check whether it meets the preset health conditions, until the latest second eye health data is determined to meet the preset health conditions. Then, the smart wearable device will be switched from the target interaction mode to the eye-tracking interaction mode. When the wearer's second eye health data is determined to not meet the preset health conditions, and the cumulative number of determinations of not meeting the preset health conditions is greater than the preset determination threshold (e.g., 3 times), the smart wearable device will remain in the target interaction mode.
[0115] To better understand the embodiments of this application, please refer to Figure 4. The following describes the interactive control process of a smart wearable device, taking AR glasses as an example:
[0116] a1. The user puts on AR glasses.
[0117] a2. Users interact with AR glasses using eye-tracking interaction mode. (Refer to the "User using eye-tracking interaction mode" section in Figure 4)
[0118] a3. The user enables the intelligent replacement eye-tracking interaction function. (Refer to the "User enables intelligent replacement eye-tracking interaction function" section in Figure 4)
[0119] a4. By intelligently replacing the eye-tracking interaction function, detect the user's eye health data, the number of consecutive blinks, and the duration of eye interaction. (Refer to the sections in Figure 4: "Eye Health Detection Subfunction Detects Unhealthy Eyes," "Eye Tracking Interaction Duration Detection Subfunction Detects Excessive Eye Tracking Interaction Duration," and "Blink Detection Subfunction Detects Continuous Blinking by the User.")
[0120] a5, when the eye health data of the user meets the preset non-healthy condition, the number of continuous eye blinks of the user is greater than the preset blink number threshold, or the eye interaction time length of the user is greater than the preset interaction time length, it is considered that the condition for replacing the eye movement tracking interaction mode is met, it is judged whether the AR glasses have a ring connection; if yes, go to a6; if no, go to a7. (Refer to the "judge whether the AR glasses have a ring connection" part in FIG. 4)
[0121] a6, switch the AR glasses from the eye movement tracking interaction mode to the ring interaction mode, and go to a8. (Refer to the "switch the eye movement tracking interaction mode to the ring interaction mode" part in FIG. 4)
[0122] a7, switch the AR glasses from the eye movement tracking interaction mode to the touch interaction mode, and go to a8. (Refer to the "switch the eye movement tracking interaction mode to the touch interaction mode" part in FIG. 4)
[0123] a8, trigger the automatic switching back to the eye movement tracking interaction sub-function. (Refer to the "trigger the automatic switching back to the eye movement tracking interaction sub-function" part in FIG. 4)
[0124] a9, when the accumulated switching time length of the AR glasses is greater than the preset switching time length threshold (such as 30 minutes), and the eye health data of the user is detected to meet the preset healthy condition again, switch the AR glasses back to the eye movement tracking interaction mode. (Refer to the "eye movement tracking interaction automatic switching time length exceeds the threshold, and the eye health detection function detects the eye health" part and the "AR glasses automatically switch back to the eye movement tracking interaction mode" part in FIG. 4)
[0125] From the above, by detecting the eye interaction indicators of the wearing object when the smart wearable device is in the eye movement tracking interaction mode, when the eye interaction indicators meet the preset indicator conditions, the smart wearable device is switched from the eye movement tracking interaction mode to the target interaction mode. Therefore, the eye interaction indicators can be used to reflect the eye fatigue degree of the wearing object, so that the eye movement tracking interaction mode can be automatically switched to other interaction modes when the wearing object is eye fatigue, thereby avoiding the problem of eye fatigue caused by using the eye movement tracking interaction mode for too long, and reducing the misoperation of the eye movement tracking interaction mode, and improving the user experience of the smart wearable device interaction.
[0126] In addition, in order to better implement the smart wearable device interaction control method in the embodiments of the present application, based on the smart wearable device interaction control method, the embodiments of the present application also provide a smart wearable device interaction control device. As shown in FIG. 5, it is an embodiment structure schematic diagram of the smart wearable device interaction control device provided by the embodiments of the present application. The smart wearable device interaction control device 500 comprises:
[0127] The detection unit 501 is configured to detect an eye interaction index of a wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0128] The determination unit 502 is configured to determine a target interaction mode of the smart wearable device when the eye interaction index meets a preset index condition.
[0129] The control unit 503 is configured to switch the smart wearable device from the eye movement tracking interaction mode to the target interaction mode.
[0130] In some embodiments, the eye interaction index comprises at least one of first eye health data, a number of continuous blinks, and an eye interaction duration; and the detection unit 501 is specifically configured to:
[0131] detect at least one of the first eye health data, the number of continuous blinks, and the eye interaction duration of the wearing object when the smart wearable device is in the eye movement tracking interaction mode.
[0132] determine whether the eye interaction index meets a preset index condition based on at least one of the first eye health data, the number of continuous blinks, and the eye interaction duration of the wearing object.
[0133] In some embodiments, the eye interaction index comprises the first eye health data, the number of continuous blinks, and the eye interaction duration; and the detection unit 501 is specifically configured to:
[0134] determine that the eye interaction index meets a preset index condition when the first eye health data of the wearing object meets a preset non-healthy condition, the number of continuous blinks of the wearing object is greater than a preset blink number threshold, or the eye interaction duration of the wearing object is greater than a preset interaction duration.
[0135] or, determine that the eye interaction index does not meet the preset index condition when the first eye health data of the wearing object does not meet the preset non-healthy condition, the number of continuous blinks of the wearing object is less than or equal to the preset blink number threshold, and the eye interaction duration of the wearing object is less than or equal to a preset interaction duration.
[0136] In some embodiments, the first eye health data comprises an eye blood filament content and an eye fatigue degree; and the detection unit 501 is specifically configured to:
[0137] determine that the first eye health data of the wearing object meets the preset non-healthy condition when the eye blood filament content is greater than a preset blood filament content threshold or the eye fatigue degree is greater than a preset fatigue degree threshold.
[0138] Or, when the eye blood filament content is less than or equal to a preset blood filament content threshold, and the eye fatigue degree is less than or equal to a preset fatigue degree threshold, it is determined that the first eye health data of the wearing object does not meet the preset unhealthy condition.
[0139] In some embodiments, the determination unit 502 is specifically configured to:
[0140] When the eye interaction index meets the preset condition, the connection state of the interaction control device of the smart wearable device is detected;
[0141] When the smart wearable device has connected the interaction control device, the device interaction mode is taken as the target interaction mode of the smart wearable device;
[0142] Or, when the smart wearable device has not connected the interaction control device, the touch interaction mode is taken as the target interaction mode of the smart wearable device.
[0143] In some embodiments, the control unit 503 is specifically configured to:
[0144] When the accumulated switching time length of the smart wearable device switching to the target interaction mode is greater than a preset switching time length threshold, the second eye health data of the wearing object is acquired;
[0145] When the second eye health data of the wearing object meets the preset health condition, the smart wearable device is switched from the target interaction mode to the eye movement tracking interaction mode.
[0146] In some embodiments, the control unit 503 is specifically configured to:
[0147] When the second eye health data of the wearing object does not meet the preset health condition, and the number of times of judging that the preset health condition is not met is greater than a preset judgment number threshold, the smart wearable device is kept in the target interaction mode.
[0148] In implementation, each of the above units can be implemented as an independent entity, or can be combined as the same or several entities, and the specific implementation of each of the above units can be referred to the foregoing implementation of the smart wearable device interaction control method, which will not be described here.
[0149] Those skilled in the art can understand that all or part of the steps of the above smart wearable device interaction control method can be completed by instructions, or by related hardware controlled by the instructions, which can be stored in a computer readable storage medium and loaded and executed by a processor.
[0150] To this end, the embodiment of the present application provides a computer readable storage medium, wherein a plurality of computer programs are stored, the computer programs can be loaded by a processor to execute any one of the intelligent wearable device interaction control methods provided by the embodiment of the present application.
[0151] The computer readable storage medium can include a read only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk.
[0152] In the above-mentioned intelligent wearable device interaction control device, computer readable storage medium and intelligent wearable device, the description of each embodiment has its own focus, and the parts not described in detail in an embodiment can refer to the related description of other embodiments. Those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working process of the above-mentioned intelligent wearable device interaction control device, computer readable storage medium, intelligent wearable device and its corresponding unit and the beneficial effects brought by it can refer to the description of the intelligent wearable device interaction control method in the above-mentioned embodiments, and will not be described here in detail.
[0153] The above provides a detailed description of the intelligent wearable device interaction control method, device, intelligent wearable device and computer readable storage medium provided by the embodiment of the present application. In this paper, specific examples are applied to describe the principle and implementation mode of the present application. The above-mentioned embodiment 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 mode and application range will be changed; in conclusion, the content of the specification should not be understood as the limitation of the present application.
Claims
1. An intelligent wearable device interaction control method, the method comprising: detecting eye interaction indicators of a wearing object when the intelligent wearable device is in an eye movement tracking interaction mode; determining a target interaction mode of the intelligent wearable device when the eye interaction indicators meet preset indicator conditions; switching the intelligent wearable device from the eye movement tracking interaction mode to the target interaction mode. 2.The intelligent wear device interaction control method of claim 1, wherein, The eye interaction indicators comprise at least one of first eye health data, continuous blink times, and eye interaction durations. The detecting of the eye interaction indicators of the wearing object when the intelligent wearable device is in the eye movement tracking interaction mode comprises: detecting at least one of first eye health data, continuous blink times, and eye interaction durations of the wearing object when the intelligent wearable device is in the eye movement tracking interaction mode. The method further comprises: determining whether the eye interaction indicators meet preset indicator conditions based on at least one of the first eye health data, the continuous blink times, and the eye interaction durations of the wearing object. 3.The intelligent wear device interaction control method of claim 2, wherein, The eye interaction indicators comprise first eye health data, continuous blink times, and eye interaction durations. The determining of whether the eye interaction indicators meet preset indicator conditions based on at least one of the first eye health data, the continuous blink times, and the eye interaction durations of the wearing object comprises: determining that the eye interaction indicators meet preset indicator conditions when the first eye health data of the wearing object meets preset non-healthy conditions, the continuous blink times of the wearing object are greater than a preset blink times threshold, or the eye interaction durations of the wearing object are greater than a preset interaction duration; or, determining that the eye interaction indicators do not meet preset indicator conditions when the first eye health data of the wearing object does not meet preset non-healthy conditions, the continuous blink times of the wearing object are less than or equal to the preset blink times threshold, and the eye interaction durations of the wearing object are less than or equal to a preset interaction duration. 4.The intelligent wear device interaction control method of claim 3, wherein, The first eye health data comprises eye blood filament content and eye fatigue degree, and the method further comprises: determining that the first eye health data of the wearing object meets preset non-healthy conditions when the eye blood filament content is greater than a preset blood filament content threshold or the eye fatigue degree is greater than a preset fatigue degree threshold; or, determining that the first eye health data of the wearing object does not meet preset non-healthy conditions when the eye blood filament content is less than or equal to the preset blood filament content threshold and the eye fatigue degree is less than or equal to the preset fatigue degree threshold. 5.The intelligent wear device interaction control method of claim 1, wherein, The determining of the target interaction mode of the intelligent wearable device when the eye interaction indicators meet preset indicator conditions comprises: detecting a connection state of an interaction control device of the intelligent wearable device when the eye interaction indicators meet preset conditions; determining a device interaction mode as the target interaction mode of the intelligent wearable device when the intelligent wearable device has connected the interaction control device; or, determining a touch interaction mode as the target interaction mode of the intelligent wearable device when the intelligent wearable device has not connected the interaction control device. 6.The intelligent wear device interaction control method of claim 1, wherein, The method further comprises: acquire second eye health data of the wearing object when the accumulated switching duration of the smart wearable device to the target interaction mode is greater than a preset switching duration threshold; switch the smart wearable device from the target interaction mode to the eye movement tracking interaction mode when the second eye health data of the wearing object meets a preset health condition. 7.The intelligent wear device interaction control method of claim 6, wherein, The method further comprises: maintain the smart wearable device in the target interaction mode when the second eye health data of the wearing object does not meet the preset health condition, and the number of times of accumulated determination of not meeting the preset health condition is greater than a preset determination number threshold. 8.The intelligent wear device interaction control method of claim 1, wherein, The detection of the eye interaction index of the wearing object when the smart wearable device is in the eye movement tracking interaction mode comprises: detecting the on-off state of the smart replacement eye movement tracking interaction function of the smart wearable device; detecting the eye interaction index of the wearing object when the smart wearable device is in the eye movement tracking interaction mode when the smart replacement eye movement tracking interaction function of the smart wearable device is in the on state. 9.The intelligent wear device interaction control method of claim 1, wherein, The smart wearable device has multiple interaction modes, and the target interaction mode of the smart wearable device is determined when the eye interaction index meets a preset index condition, comprising: detecting the priority of each interaction mode of the smart wearable device when the eye interaction index meets the preset index condition; obtaining the interaction mode with the highest priority from the multiple interaction modes of the smart wearable device as the target interaction mode of the smart wearable device.
10. A smart wearable device interaction control device, comprising: a detection unit configured to detect an eye interaction index of a wearing object when the smart wearable device is in an eye movement tracking interaction mode; a determination unit configured to determine a target interaction mode of the smart wearable device when the eye interaction index meets a preset index condition; a control unit configured to switch the smart wearable device from the eye movement tracking interaction mode to the target interaction mode. 11.The smart wearable device interaction control apparatus of claim 10, wherein, The eye interaction index comprises at least one of first eye health data, number of consecutive blinks, and eye interaction duration; and the detection unit is configured to: detect at least one of the first eye health data, the number of consecutive blinks, and the eye interaction duration of the wearing object when the smart wearable device is in the eye movement tracking interaction mode; determine whether the eye interaction index meets the preset index condition based on at least one of the first eye health data, the number of consecutive blinks, and the eye interaction duration of the wearing object. 12.The smart wearable device interaction control apparatus of claim 11, wherein, The eye interaction index comprises first eye health data, number of consecutive blinks, and eye interaction duration; and the detection unit is configured to: determine that the eye interaction index meets the preset index condition when the first eye health data of the wearing object meets a preset non-health condition, the number of consecutive blinks of the wearing object is greater than a preset blink number threshold, or the eye interaction duration of the wearing object is greater than a preset interaction duration. Or, when the first eye health data of the wearing object does not meet the preset non-healthy condition, the number of continuous blinks of the wearing object is less than or equal to the preset blink number threshold, and the eye interaction duration of the wearing object is less than or equal to the preset interaction duration, it is determined that the eye interaction index does not meet the preset index condition. 13.The smart wearable device interaction control apparatus of claim 12, wherein, The first eye health data includes eye blood content and eye fatigue degree, and the detection unit is configured to: When the eye blood content is greater than a preset blood content threshold or the eye fatigue degree is greater than a preset fatigue degree threshold, it is determined that the first eye health data of the wearing object meets the preset non-healthy condition; Or, when the eye blood content is less than or equal to the preset blood content threshold and the eye fatigue degree is less than or equal to the preset fatigue degree threshold, it is determined that the first eye health data of the wearing object does not meet the preset non-healthy condition. 14.The smart wear device interaction control apparatus of claim 10, wherein, The determination unit is configured to: When the eye interaction index meets the preset condition, the connection state of the interaction control device of the smart wearable device is detected; When the smart wearable device has connected the interaction control device, the device interaction mode is taken as the target interaction mode of the smart wearable device; Or, when the smart wearable device has not connected the interaction control device, the touch interaction mode is taken as the target interaction mode of the smart wearable device. 15.The smart wear device interaction control apparatus of claim 10, wherein, The control unit is configured to: When the accumulated switching duration of the smart wearable device switching to the target interaction mode is greater than a preset switching duration threshold, the second eye health data of the wearing object is acquired; When the second eye health data of the wearing object meets the preset healthy condition, the smart wearable device is switched from the target interaction mode to the eye movement tracking interaction mode. 16.The smart wearable device interaction control apparatus of claim 15, wherein, The control unit is configured to: When the second eye health data of the wearing object does not meet the preset healthy condition and the number of times of determining that the preset healthy condition is not met is greater than a preset determination number threshold, the smart wearable device is kept in the target interaction mode. 17.The smart wear device interaction control apparatus of claim 10, wherein, The detection unit is configured to: Detect the on-off state of the smart replacement eye movement tracking interaction function of the smart wearable device; When the smart replacement eye movement tracking interaction function of the smart wearable device is in the on state, the eye interaction index of the wearing object when the smart wearable device is in the eye movement tracking interaction mode is detected. 18.The smart wear device interaction control apparatus of claim 10, wherein, The smart wearable device has multiple interaction modes, and the determination unit is configured to: When the eye interaction index meets the preset index condition, the priority of each interaction mode of the smart wearable device is detected; From the multiple interaction modes of the smart wearable device, the interaction mode with the highest priority is taken as the target interaction mode of the smart wearable device.
19. A smart wearable device, comprising a processor and a memory, wherein the memory stores a computer program, and the processor invokes the computer program in the memory to execute the smart wearable device interaction control method according to any one of claims 1 to 9.
20. A computer readable storage medium, which stores a computer program, and the computer program is loaded by a processor to execute the smart wearable device interaction control method according to any one of claims 1 to 9.
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