WO2018068592A1 - 一种手环抬手亮屏、转腕切屏的控制方法 - Google Patents

一种手环抬手亮屏、转腕切屏的控制方法 Download PDF

Info

Publication number
WO2018068592A1
WO2018068592A1 PCT/CN2017/100185 CN2017100185W WO2018068592A1 WO 2018068592 A1 WO2018068592 A1 WO 2018068592A1 CN 2017100185 W CN2017100185 W CN 2017100185W WO 2018068592 A1 WO2018068592 A1 WO 2018068592A1
Authority
WO
WIPO (PCT)
Prior art keywords
axis
threshold
acceleration
processor
data
Prior art date
Application number
PCT/CN2017/100185
Other languages
English (en)
French (fr)
Inventor
吴妙瑜
杨智辉
钟达
杨光
Original Assignee
广东乐源数字技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 广东乐源数字技术有限公司 filed Critical 广东乐源数字技术有限公司
Publication of WO2018068592A1 publication Critical patent/WO2018068592A1/zh

Links

Classifications

    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/03Arrangements for converting the position or the displacement of a member into a coded form
    • G06F3/033Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor
    • G06F3/0346Pointing devices displaced or positioned by the user, e.g. mice, trackballs, pens or joysticks; Accessories therefor with detection of the device orientation or free movement in a 3D space, e.g. 3D mice, 6-DOF [six degrees of freedom] pointers using gyroscopes, accelerometers or tilt-sensors
    • AHUMAN NECESSITIES
    • A44HABERDASHERY; JEWELLERY
    • A44CPERSONAL ADORNMENTS, e.g. JEWELLERY; COINS
    • A44C5/00Bracelets; Wrist-watch straps; Fastenings for bracelets or wrist-watch straps
    • A44C5/0007Bracelets specially adapted for other functions or with means for attaching other articles
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0481Interaction techniques based on graphical user interfaces [GUI] based on specific properties of the displayed interaction object or a metaphor-based environment, e.g. interaction with desktop elements like windows or icons, or assisted by a cursor's changing behaviour or appearance

Definitions

  • the present invention relates to the field of smart bracelet bright screen and cut screen control, and particularly relates to a smart bracelet raising a bright screen, a method for turning a wrist to cut a screen and a device thereof.
  • the current method of blinking the wristband generally adopts detecting the flip angle of the wristband or using an altimeter to determine whether the user has a need to see the daytime.
  • the judgment method is not accurate, and there are several flips.
  • the secondary screen is not lit, and the tiny motion causes the screen to remain bright.
  • the smart bracelet may be worn on either hand in the left and right hands.
  • Each time you change the handcuffs you wear, you need to specify whether you are wearing the left or right hand, and then The algorithm for lighting the screen is replaced according to the situation of the left and right hands worn. It can be seen that the current bright screen and cut screen judgment methods still have the defects of inaccurate judgment, and the defects of the user need to be reset after replacing the left and right handcuffs.
  • the present invention is based on the application numbers CN201610615085.3 and CN2016106151269, and further on their basis, a control method capable of realizing a bright screen and a screen cut together is issued.
  • the invention aims to provide a control method and a device for a smart bracelet to raise a hand and a bright screen, and to switch the wrist screen, which can accurately judge the user's real thoughts, accurately raise the screen when the user raises the hand, turn the screen, and switch the screen. And use The user is replacing the left and right handcuffs, and there is no need to reset the state of the wristband worn by the left and right hands.
  • Step 1 The triaxial acceleration sensor collects data of the triaxial acceleration of the smart bracelet, and transmits the data of the triaxial acceleration to the processor.
  • Step 2 The processor performs filtering processing on the collected data of the three-axis acceleration, and obtains the processed three-axis acceleration data one.
  • Step 3 The processor stores a sampling frequency F and a first inter-turn threshold
  • the processor counts the inter-day and amplitude of the acceleration data for each axis of the three axes that continuously rises or falls: If the acceleration data of one of the X-axis and the Y-axis (the plane determined by the X-axis and the Y-axis is a plane parallel to the display screen of the wristband) continues to rise or fall, the processing is reached.
  • the first inter-turn threshold/F stored by the device, and the acceleration data of the X-axis and the Y-axis of the three-axis acceleration data reaches a magnitude of one of the amplitude thresholds stored by the processor, and the processing is performed.
  • the device judges that the raise hand flag appears, and proceeds to step four; if not, repeats step three.
  • the amplitude threshold value 1 includes an X-axis amplitude threshold value 1 and a Y-axis amplitude threshold value 1; and the acceleration data of the X-axis and the Y-axis in the acceleration data of the three axes continues.
  • the amplitude of the rising or falling reaches the amplitude threshold stored by the processor, and the acceleration data of the X-axis and the Y-axis in the acceleration data of the three axes is continuously rising or falling, respectively, reaching the corresponding axis of the processor storage.
  • the amplitude threshold is one.
  • Step 4 The processor stores a second inter-turn threshold T 2 /F (where F is a sampling frequency, T 2 ⁇ F, and T 2 is an integer), an acceleration interval 1 and a threshold number one,
  • T 2 acceleration data are sampled for each axis, and the value N1 of the acceleration data of each axis falling into the acceleration interval 1 is counted, if the value of each axis is If all of the above thresholds are reached, it is determined that the hand is raised, and the process proceeds to step 5. If the value of any of the axes does not reach the threshold number one, the step 3 is repeated.
  • the acceleration interval 1 includes an X-axis acceleration interval [a]
  • the number threshold 1 includes the X-axis
  • the threshold number one, the threshold number of the Y-axis, and the threshold of the Z-axis are one; in the second inter-turn threshold T 2 /F, T 2 acceleration data are sampled for each axis, and the acceleration of each axis is counted. The data falls into the value of the acceleration interval one.
  • step 6 If the acceleration data of any axis falls within the acceleration interval of the corresponding axis and reaches the threshold number one of the corresponding axis, it is determined that the hand is raised, and the process proceeds to step 6; If the acceleration data of any axis falls within the acceleration interval of the corresponding axis, the value does not reach the threshold number of the corresponding axis, then the steps are repeated.
  • the acceleration data is the average sample within the second inter-turn threshold T 2 /F.
  • Step 5 The processor controls the display screen to be bright, and the bright screen is T. .
  • Step 6 is ⁇ between the bright screens.
  • the three-axis acceleration sensor continues to collect data of the three-axis acceleration of the smart bracelet, and transmits the data of the three-axis acceleration to the processor; the processor is configured to acquire the three-axis acceleration The data is subjected to filtering processing to obtain the processed three-axis acceleration data II.
  • Step VII the processor stores a third inter-turn threshold T 3 /F (where T 3 ⁇ F, and T 3 is an integer) and an amplitude threshold two wo, and the processor counts each of the three axes
  • the number of accelerations of the axis is the value of the T and the amplitude W of the continuous rise or fall of the data: if the X-axis and Z-axis of the three-axis acceleration data are two or the Y-axis and the Z-axis (the X-axis and the Y-axis are determined)
  • the acceleration data of the two axes of the X-axis and the Z-axis or the two axes of the Y-axis and the Z-axis in the three-axis acceleration data two continuously rise or fall to reach the amplitude threshold of the processor.
  • the processor determines that the wrist symbol is displayed, and proceeds to step eight; if not, repeats step seven.
  • the amplitude threshold two includes an X-axis amplitude threshold 2 and a Z-axis amplitude threshold two two amplitude thresholds or a Y-axis amplitude threshold two and a Z-axis amplitude threshold two two amplitude thresholds
  • the processor counts the inter-turn and amplitude of the acceleration data of each axis of the three axes continuously rising or falling: if the three-axis acceleration data two of the X-axis and the Z-axis two-axis or the Y-axis and the Z-axis two axes
  • the acceleration data 2 continues to rise or fall to reach the first inter-turn threshold T JF stored by the processor, and the acceleration data of the X-axis and the Z-axis or the Y-axis and the Z-axis continue to rise or
  • the amplitude of the falling reaches the amplitude threshold of the corresponding axis of the processor, respectively, and the processor determines that the wrist symbol is displayed, and proceeds to
  • Step VIII the processor stores a fourth inter-turn threshold TF (where T 4 ⁇ F, and T 4 is an integer), an acceleration interval two [ ⁇ , ⁇ ], and a number threshold two N0, in the In the four-turn threshold TF, T 4 acceleration data is sampled for each axis, and the acceleration data of each axis is counted in the value of the acceleration interval two [ ⁇ , ⁇ ] ⁇ 2, if the value of each axis When ⁇ 2 reaches the above-mentioned number threshold value ⁇ 0, it is determined that the wrist is turned, and the process proceeds to step IX; if the value ⁇ 2 of any axis does not reach the above-mentioned number threshold value ⁇ 0, step 7 is repeated.
  • T 4 ⁇ F, and T 4 is an integer
  • T 4 acceleration data is sampled for each axis
  • the acceleration data of each axis is counted in the value of the acceleration interval two [ ⁇ , ⁇ ] ⁇ 2
  • step IX if the value of any
  • the acceleration interval 2 includes an X-axis acceleration interval 2, a ⁇ -axis acceleration interval 2, and a ⁇ -axis acceleration interval 2, where the number threshold includes an X-axis number threshold.
  • the threshold number of the number of axes and the threshold number of the number of axes are two.
  • T 4 acceleration data are sampled for each axis, and the acceleration data of each axis is counted in the corresponding axis.
  • step 2 The value of the acceleration interval two, if the acceleration data of each axis falls within the acceleration interval 2 of the corresponding axis and reaches the threshold number of the corresponding axis, then it is determined that the wrist is turned, and the process proceeds to step IX; If the value of the acceleration data of the axis falls within the acceleration interval 2 of the corresponding axis does not reach the threshold number 2 of the corresponding axis, step 7 is repeated.
  • sampling 42 acceleration data for each axis is an average sampling within the fourth inter-turn threshold value 4 ⁇ .
  • Step IX the processor controls the display screen to cut the screen.
  • the smart bracelet for implementing the control method of the smart bracelet raising the bright screen and the turning wrist screen is characterized in that the smart bracelet includes at least a processor, a display screen and a three-axis acceleration sensor.
  • the processor includes the storage module and the comparison module, and the storage module stores the sampling frequency F, the first inter-turn threshold T JF, the amplitude threshold one, the second inter-threshold threshold T 2 /F, Acceleration interval one and number threshold one, third inter-threshold threshold T 3 /F, amplitude threshold two W0, fourth inter-threshold threshold TF, acceleration interval two and number threshold two NO; said processor and said display screen Connected to the three-axis acceleration sensor.
  • the comparison module implements the comparison calculation of the “achievement” described in the third step, the fourth step, the seventh step and the eighth step.
  • FIG. 1 is a flow chart of a method of the present invention.
  • FIG. 2 is a schematic view of a smart bracelet of the present invention.
  • a control method for a smart bracelet to raise a bright screen and a wrist cut screen the smart bracelet includes at least a processor, a display screen and a three-axis acceleration sensor; The method includes the following steps.
  • Step 1 The triaxial acceleration sensor collects data of the triaxial acceleration of the smart bracelet, and transmits the data of the triaxial acceleration to the processor.
  • Step 2 The processor performs filtering processing on the collected data of the three-axis acceleration to obtain the processed three-axis acceleration data one.
  • Step 3 The processor stores a sampling frequency F and a first inter-turn threshold
  • the processor counts the inter-day and amplitude of the acceleration data for each axis of the three axes that continuously rises or falls: If the acceleration data of one of the X-axis and the Y-axis (the plane determined by the X-axis and the Y-axis is a plane parallel to the display screen of the wristband) continues to rise or fall, the processing is reached.
  • the first inter-turn threshold/F stored by the device, and the acceleration data of the X-axis and the Y-axis of the three-axis acceleration data reaches a magnitude of one of the amplitude thresholds stored by the processor, and the processing is performed.
  • the device judges that the raise hand flag appears, and proceeds to step four; if not, repeats step three.
  • the amplitude threshold 1 includes an X-axis amplitude threshold 1 and a Y-axis amplitude threshold 1; and the acceleration data of the X-axis and the Y-axis of the three-axis acceleration data continues The amplitude of the rise or fall reaches the amplitude threshold stored by the processor, specifically the acceleration data of the three axes, the X-axis and The amplitude of the acceleration data of the Y-axis continuously rises or falls to reach the amplitude threshold of the corresponding axis stored by the processor, respectively.
  • Step 4 The processor stores a second inter-turn threshold T 2 /F (where F is a sampling frequency, T 2 ⁇ F, and T 2 is an integer), an acceleration interval 1 and a threshold number one,
  • T 2 acceleration data are sampled for each axis, and the value N1 of the acceleration data of each axis falling into the acceleration interval 1 is counted, if the value of each axis is If all of the above thresholds are reached, it is determined that the hand is raised, and the process proceeds to step 5. If the value of any of the axes does not reach the threshold number one, the step 3 is repeated.
  • the acceleration interval 1 includes an X-axis acceleration interval [a]
  • the number threshold 1 includes the X-axis number threshold one, the Y-axis number threshold one and the Z-axis a threshold value of one; in the second inter-turn threshold T 2 /F, T 2 acceleration data is sampled for each axis, and the acceleration data of each axis falls into a value of the acceleration interval one, if each If the acceleration data of the axis falls within the acceleration interval of the corresponding axis and the value reaches the threshold number of the corresponding axis, it is judged that the hand is raised, and the process proceeds to step 6; if the acceleration data of any axis falls within the acceleration interval of the corresponding axis If the value does not reach the threshold number of the corresponding axis, repeat the steps.
  • the acceleration data is the average sample within the second inter-turn threshold T 2 /F.
  • Step 5 The processor controls the display screen to be bright, and the bright screen is T. .
  • Step six in the bright screen is ⁇ .
  • the three-axis acceleration sensor continues to collect data of the three-axis acceleration of the smart bracelet, and transmits the data of the three-axis acceleration to the processor; the processor is configured to acquire the three-axis acceleration The data is subjected to filtering processing to obtain the processed three-axis acceleration data II.
  • Step VII the processor stores a third inter-turn threshold T 3 /F (where T 3 ⁇ F, and T 3 is an integer) and an amplitude threshold two wo, and the processor counts each of the three axes
  • the number of accelerations of the axis is the value of the T and the amplitude W of the continuous rise or fall of the data: if the X-axis and Z-axis of the three-axis acceleration data are two or the Y-axis and the Z-axis (the X-axis and the Y-axis are determined)
  • step 7 If the data 2 continues to rise or fall to the amplitude threshold of the processor, the processor determines that the wrist flag appears, and proceeds to step eight; if not, repeats step 7.
  • the amplitude threshold two includes an X-axis amplitude threshold 2 and a Z-axis amplitude threshold, two amplitude thresholds or a Y-axis amplitude threshold 2 and a Z-axis amplitude threshold, two amplitude thresholds.
  • the processor counts the inter-turn and amplitude of the acceleration data of each axis of the three axes continuously rising or falling: if the three-axis acceleration data two of the X-axis and the Z-axis two-axis or the Y-axis and the Z-axis two axes
  • the acceleration data 2 continues to rise or fall to reach the first inter-turn threshold T JF stored by the processor, and the acceleration data of the X-axis and the Z-axis or the Y-axis and the Z-axis continue to rise or If the amplitude of the falling reaches the amplitude threshold 2 of the corresponding axis stored by the processor, the processor determines that the wrist symbol is displayed, and proceeds to step 8; if not, repeats step 7.
  • Step VIII the processor stores a fourth inter-threshold threshold TF (where T 4 ⁇ F, and T 4 is an integer), an acceleration interval two [ ⁇ , ⁇ ], and a number threshold two N0, in the In the four-turn threshold TF, T 4 acceleration data is sampled for each axis, and the acceleration data of each axis is counted in the value of the acceleration interval two [ ⁇ , ⁇ ] ⁇ 2, if the value of each axis When ⁇ 2 reaches the above-mentioned number threshold value ⁇ 0, it is determined that the wrist is turned, and the process proceeds to step IX; if the value ⁇ 2 of any axis does not reach the above-mentioned number threshold value ⁇ 0, step 7 is repeated.
  • T 4 ⁇ F, and T 4 is an integer
  • T 4 acceleration data is sampled for each axis
  • the acceleration data of each axis is counted in the value of the acceleration interval two [ ⁇ , ⁇ ] ⁇ 2
  • step IX if the value
  • the acceleration interval two includes an X-axis acceleration interval 2, a ⁇ -axis acceleration interval 2, and a ⁇ -axis acceleration interval 2, where the number threshold includes an X-axis number threshold 2
  • the threshold number of the number of axes and the threshold number of the number of axes are two.
  • T 4 acceleration data are sampled for each axis, and the acceleration data of each axis is counted in the corresponding axis.
  • step 2 The value of the acceleration interval two, if the acceleration data of each axis falls within the acceleration interval 2 of the corresponding axis and reaches the threshold number of the corresponding axis, then it is determined that the wrist is turned, and the process proceeds to step IX; If the value of the acceleration data of the axis falls within the acceleration interval 2 of the corresponding axis does not reach the threshold number 2 of the corresponding axis, step 7 is repeated.
  • sampling 42 acceleration data for each axis is an average sampling within the fourth inter-turn threshold value 4 ⁇ .
  • Step IX the processor controls the display screen to cut the screen.
  • a smart wristband for implementing the control method of the smart bracelet raising the bright screen and the turning wrist cutting screen is characterized in that the smart bracelet includes at least a processor.
  • Display and three-axis acceleration The processor includes the storage module and the comparison module, and the storage module stores the sampling frequency F , the first inter-turn threshold T JF, the amplitude threshold one, and the second inter-threshold threshold T 2 / F, an acceleration interval one and a number threshold one, a third inter-threshold threshold T 3 /F, an amplitude threshold two W0, a fourth inter-threshold threshold TVF, an acceleration interval two, and a number threshold two NO; the processor and the The display is connected to the three-axis acceleration sensor.
  • the comparison module implements the comparison calculation of “achievement” in the third step, the fourth step, the seventh step and the eighth step.
  • the user's real idea can be accurately judged, the user can raise the screen accurately, the user can change the left and right handcuffs, and the user does not need to reset the wristband to wear the left and right hands. status.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Human Computer Interaction (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • User Interface Of Digital Computer (AREA)

Abstract

本发明涉及一种智能手环抬手亮屏、转腕切屏的控制方法,所述智能手环至少包括处理器、显示屏和三轴加速度传感器,所述方法对采集到的三轴加速度的数据进行处理分析,从而判断出用户是否处于抬手状态和转腕状态,从而控制亮屏和切屏。通过上述技术方案,本发明可以精确判断用户的真实想法,准确地在用户抬手时点亮屏幕,转弯时切换屏幕,且用户在更换左右手时,不需要重新设置手环的佩戴在左右手的状态。

Description

一种手环抬手亮屏、 转腕切屏的控制方法 技术领域
[0001] 本发明涉及智能手环亮屏和切屏控制领域, 特别涉及一种智能手环抬手亮屏、 转腕切屏的方法及其设备。
背景技术
[0002] 目前智能手环已经广泛应用到人们的健康生活中, 已经具有取代传统手表的趋 势。 智能手环由于体积小, 能放置的电池包也较小, 十分迫切需要人们在使用 过程中尽量减少能量消耗。 对于具有较大显示屏的智能手环, 人们在需要看吋 间、 心率数据或者其他的功能数据吋, 需要用手去点击屏幕或者需要用手去按 智能手环上的按键, 当用户的不佩戴手环的另一只手处于不能去操作智能手环 的状态吋, 用户显然无法简单点亮屏幕, 获得需要的资料。 因此, 急切需要一 种能点亮屏幕而不需要另外一只手的辅助的方式去满足用户的需求。
技术问题
[0003] 目前的手环亮屏的方法一般采用的是检测手环的翻转角度或者采用高度计去判 断用户是否有看吋间的需求, 但是, 这种判断方法判断并不准确, 有吋翻转好 几次屏幕都不亮, 而有吋微小的动作又使得屏幕一直亮屏。 同吋, 由于个人用 户的习惯, 智能手环可能会佩戴在左手和右手中的任一只手上, 每次更换佩戴 的手吋, 均需要用户去详细设置所佩戴的是左手还是右手, 然后根据佩戴的左 右手的情况去更换点亮屏幕的算法。 由此可见, 目前的亮屏和切屏判断方法还 存在判断不准确的缺陷, 且在更换左右手吋需要用户重新设置的缺陷。
问题的解决方案
技术解决方案
[0004] 本发明基于申请号 CN201610615085.3和 CN2016106151269, 在他们的基础上进 一步幵发出能亮屏和切屏一并实现的控制方法。
[0005] 本发明旨在提供智能手环抬手亮屏、 转腕切屏的控制方法及其设备, 可以精确 判断用户的真实想法, 准确地在用户抬手吋点亮屏幕, 转弯吋切换屏幕, 且用 户在更换左右手吋, 不需要重新设置手环的佩戴在左右手的状态。
[0006] 本发明的技术方案如下:
[0007] 一种智能手环抬手亮屏、 转腕切屏的控制方法, 所述智能手环至少包括处理器 、 显示屏和三轴加速度传感器; 其特征在于, 所述方法包括如下步骤。
[0008] 步骤一, 所述三轴加速度传感器采集所述智能手环的三轴加速度的数据, 并将 该三轴加速度的数据传送至所述处理器。
[0009] 步骤二, 所述处理器对上述采集到的三轴加速度的数据进行滤波处理, 得到处 理后的三轴的加速度数据一。
[0010] 步骤三, 所述处理器存储采样频率 F、 第一吋间阈值
/F (其中 F为采样频率, T ^F, 且 1 ,为整数) 和幅度阈值一, 且所述处理器统计 三轴中每一轴的加速度数据一持续上升或下降的吋间和幅度: 若三轴的加速度 数据一种的 X轴和 Y轴 (X轴和 Y轴决定的平面为与手环的显示屏平行的平面) 的 加速度数据一持续上升或下降的吋间都达到所述处理器存储的第一吋间阈值 /F, 且三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或下降的幅度 都达到所述处理器存储的幅度阈值一, 则所述处理器判断出现了抬手标识, 进 入步骤四; 若否, 则重复步骤三。
[0011] 在所述步骤三中, 进一步地, 所述幅度阈值一包括 X轴幅度阈值一和 Y轴幅度 阈值一; 所述三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或下降 的幅度都达到所述处理器存储的幅度阈值一具体为三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或下降的幅度分别达到所述处理器存储对应轴的幅 度阈值一。
[0012] 步骤四, 所述处理器存储第二吋间阈值 T 2/F (其中 F为采样频率, T 2<F, 且 T 2 为整数) 、 加速度区间一和个数阈值一, 在所述第二吋间阈值 T 2/F内, 对每一 轴采样 T 2个加速度数据, 统计每一轴的加速度数据落入所述加速度区间一的个 数值 Nl, 若每轴的所述个数值均达到上述的个数阈值一, 则判断为抬手, 进入 步骤五; 若任一轴的所述个数值未达到上述的个数阈值一, 则重复步骤三。
[0013] 在所述步骤四中, 进一步地, 所述加速度区间一包括 X轴加速度区间一 [a
、 Y轴加速度区间一 [a 2,b 2^nz轴加速度区间一 [a 3,b 3], 所述个数阈值一包括 X轴 个数阈值一、 Y轴个数阈值一和 Z轴个数阈值一; 在所述第二吋间阈值 T 2/F内, 对每一轴采样 T 2个加速度数据, 统计每一轴的加速度数据落入所述加速度区间 一的个数值, 若每一轴的加速度数据落入对应轴的加速度区间一的个数值均达 到对应轴的个数阈值一, 则判断为抬手, 进入步骤六; 若任一轴的加速度数据 落入对应轴的加速度区间一的个数值未达到对应轴的个数阈值一, 则重复步骤
[0014] 在所述步骤四中, 进一步地, 对每一轴采样 T 2
个加速度数据为在第二吋间阈值 T 2/F内的平均采样。
[0015] 步骤五, 所述处理器控制所述显示屏亮屏, 亮屏吋间为 T。。
[0016] 步骤六, 在所述亮屏吋间为 Τ。内, 所述三轴加速度传感器继续采集所述智能手 环的三轴加速度的数据, 并将该三轴加速度的数据传送至所述处理器; 所述处 理器对上述采集到的三轴加速度的数据进行滤波处理, 得到处理后的三轴的加 速度数据二。
[0017] 步骤七, 所述处理器存储第三吋间阈值 T 3/F (其中 T 3<F, 且 T 3为整数) 和幅 度阈值二 wo, 且所述处理器统计三轴中每一轴的加速度数二据持续上升或下降 的吋间 T和幅度 W: 若三轴的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴 (X轴和 Y轴决定的平面为与手环的显示屏平行的平面, Z轴为与该平面垂直的 轴) 的加速度数据二持续上升或下降的吋间都达到所述处理器存储的第三吋间 阈值 T 3/F, 且三轴的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴的加速度 数据二持续上升或下降的幅度都达到所述处理器存储的幅度阈值二 wo, 则所述 处理器判断出现了转腕标识, 进入步骤八; 若否, 则重复步骤七。
[0018] 在所述步骤七中, 进一步地, 所述幅度阈值二包括 X轴幅度阈值二和 Z轴幅度 阈值二两个幅度阈值或 Y轴幅度阈值二和 Z轴幅度阈值二两个幅度阈值, 且所述 处理器统计三轴中每一轴的加速度数据持续上升或下降的吋间和幅度: 若三轴 的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴的加速度数据二持续上升或 下降的吋间都达到所述处理器存储的第一吋间阈值 T JF, 且 X轴和 Z轴两轴或 Y 轴和 Z轴两轴的加速度数据二持续上升或下降的幅度分别达到所述处理器存储对 应轴的幅度阈值二, 则所述处理器判断出现了转腕标识, 进入步骤八; 若否, 则重复步骤七。
[0019] 步骤八, 所述处理器存储第四吋间阈值 T F (其中 T 4<F, 且 T 4为整数) 、 加 速度区间二 [ΑΙ,ΒΙ]和个数阈值二 N0, 在所述第四吋间阈值 T F内, 对每一轴采 样 T 4个加速度数据, 统计每一轴的加速度数据落入所述加速度区间二 [ΑΙ,ΒΙ]的 个数值 Ν2, 若每轴的所述个数值 Ν2均达到上述的个数阈值二 Ν0, 则判断为转腕 , 进入步骤九; 若任一轴的所述个数值 Ν2未达到上述的个数阈值二 Ν0, 则重复 步骤七。
[0020] 在所述步骤八中, 进一步地, 所述加速度区间二包括 X轴加速度区间二、 Υ轴 加速度区间二和 Ζ轴加速度区间二, 所述个数阈值包括 X轴个数阈值二、 Υ轴个 数阈值二和 Ζ轴个数阈值二, 在所述第四吋间阈值 T 4/F内, 对每一轴采样 T 4个加 速度数据, 统计每一轴的加速度数据落入对应轴的加速度区间二的个数值, 若 每一轴的加速度数据二落入对应轴的加速度区间二的个数值均达到对应轴的个 数阈值二, 则判断为转腕, 进入步骤九; 若任一轴的加速度数据二落入对应轴 的加速度区间二的个数值未达到对应轴的个数阈值二, 则重复步骤七。
[0021] 在所述步骤八中, 进一步地, 对每一轴采样 Τ 42个加速度数据为在第四吋间阈 值工4^内的平均采样。
[0022] 步骤九, 所述处理器控制所述显示屏切屏。
[0023] 实现所述的一种智能手环抬手亮屏、 转腕切屏的控制方法的智能手环, 其特征 在于, 所述智能手环至少包括处理器、 显示屏和三轴加速度传感器; 所述处理 器包括所述存储模块和所述比较模块, 所述存储模块存储所述的采样频率 F、 第 一吋间阈值 T JF、 幅度阈值一、 第二吋间阈值 T 2/F、 加速度区间一和个数阈值 一、 第三吋间阈值 T 3/F、 幅度阈值二 W0、 第四吋间阈值 T F、 加速度区间二和 个数阈值二 NO; 所述处理器与所述显示屏和所述三轴加速度传感器连接。
[0024] 进一步地, 所述比较模块实现所述步骤三、 步骤四、 步骤七和步骤八中的所述 的"达到"的比较计算。
发明的有益效果
有益效果
[0025] 基于上述技术方案, 可以精确判断用户的真实想法, 准确地在用户抬手吋点亮 屏幕, 转弯吋切换屏幕, 且用户在更换左右手吋, 不需要重新设置手环的佩戴 在左右手的状态。
对附图的简要说明
附图说明
[0026] 通过参照附图详细描述其示例实施例, 本发明的上述和其它目标、 特征及优点 将变得更加显而易见。
[0027] 图 1是本发明的方法流程图。
[0028] 图 2是本发明的智能手环的示意图。
本发明的实施方式
[0029] 如附图 1所示, 一种智能手环抬手亮屏、 转腕切屏的控制方法, 所述智能手环 至少包括处理器、 显示屏和三轴加速度传感器; 其特征在于, 所述方法包括如 下步骤。
[0030] 步骤一, 所述三轴加速度传感器采集所述智能手环的三轴加速度的数据, 并将 该三轴加速度的数据传送至所述处理器。
[0031] 步骤二, 所述处理器对上述采集到的三轴加速度的数据进行滤波处理, 得到处 理后的三轴的加速度数据一。
[0032] 步骤三, 所述处理器存储采样频率 F、 第一吋间阈值
/F (其中 F为采样频率, T ^F, 且 1 ,为整数) 和幅度阈值一, 且所述处理器统计 三轴中每一轴的加速度数据一持续上升或下降的吋间和幅度: 若三轴的加速度 数据一种的 X轴和 Y轴 (X轴和 Y轴决定的平面为与手环的显示屏平行的平面) 的 加速度数据一持续上升或下降的吋间都达到所述处理器存储的第一吋间阈值 /F, 且三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或下降的幅度 都达到所述处理器存储的幅度阈值一, 则所述处理器判断出现了抬手标识, 进 入步骤四; 若否, 则重复步骤三。
[0033] 在所述步骤三中, 进一步地, 所述幅度阈值一包括 X轴幅度阈值一和 Y轴幅度 阈值一; 所述三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或下降 的幅度都达到所述处理器存储的幅度阈值一具体为三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或下降的幅度分别达到所述处理器存储对应轴的幅 度阈值一。
[0034] 步骤四, 所述处理器存储第二吋间阈值 T 2/F (其中 F为采样频率, T 2<F, 且 T 2 为整数) 、 加速度区间一和个数阈值一, 在所述第二吋间阈值 T 2/F内, 对每一 轴采样 T 2个加速度数据, 统计每一轴的加速度数据落入所述加速度区间一的个 数值 Nl, 若每轴的所述个数值均达到上述的个数阈值一, 则判断为抬手, 进入 步骤五; 若任一轴的所述个数值未达到上述的个数阈值一, 则重复步骤三。
[0035] 在所述步骤四中, 进一步地, 所述加速度区间一包括 X轴加速度区间一 [a
、 Y轴加速度区间一 [a 2,b 2^nz轴加速度区间一 [a 3,b 3], 所述个数阈值一包括 X轴 个数阈值一、 Y轴个数阈值一和 Z轴个数阈值一; 在所述第二吋间阈值 T 2/F内, 对每一轴采样 T 2个加速度数据, 统计每一轴的加速度数据落入所述加速度区间 一的个数值, 若每一轴的加速度数据落入对应轴的加速度区间一的个数值均达 到对应轴的个数阈值一, 则判断为抬手, 进入步骤六; 若任一轴的加速度数据 落入对应轴的加速度区间一的个数值未达到对应轴的个数阈值一, 则重复步骤
[0036] 在所述步骤四中, 进一步地, 对每一轴采样 T 2
个加速度数据为在第二吋间阈值 T 2/F内的平均采样。
[0037] 步骤五, 所述处理器控制所述显示屏亮屏, 亮屏吋间为 T。。
[0038] 步骤六, 在所述亮屏吋间为 Τ。内, 所述三轴加速度传感器继续采集所述智能手 环的三轴加速度的数据, 并将该三轴加速度的数据传送至所述处理器; 所述处 理器对上述采集到的三轴加速度的数据进行滤波处理, 得到处理后的三轴的加 速度数据二。
[0039] 步骤七, 所述处理器存储第三吋间阈值 T 3/F (其中 T 3<F, 且 T 3为整数) 和幅 度阈值二 wo, 且所述处理器统计三轴中每一轴的加速度数二据持续上升或下降 的吋间 T和幅度 W: 若三轴的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴 (X轴和 Y轴决定的平面为与手环的显示屏平行的平面, Z轴为与该平面垂直的 轴) 的加速度数据二持续上升或下降的吋间都达到所述处理器存储的第三吋间 阈值 T 3/F, 且三轴的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴的加速度 数据二持续上升或下降的幅度都达到所述处理器存储的幅度阈值二 wo, 则所述 处理器判断出现了转腕标识, 进入步骤八; 若否, 则重复步骤七。
[0040] 在所述步骤七中, 进一步地, 所述幅度阈值二包括 X轴幅度阈值二和 Z轴幅度 阈值二两个幅度阈值或 Y轴幅度阈值二和 Z轴幅度阈值二两个幅度阈值, 且所述 处理器统计三轴中每一轴的加速度数据持续上升或下降的吋间和幅度: 若三轴 的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴的加速度数据二持续上升或 下降的吋间都达到所述处理器存储的第一吋间阈值 T JF, 且 X轴和 Z轴两轴或 Y 轴和 Z轴两轴的加速度数据二持续上升或下降的幅度分别达到所述处理器存储对 应轴的幅度阈值二, 则所述处理器判断出现了转腕标识, 进入步骤八; 若否, 则重复步骤七。
[0041] 步骤八, 所述处理器存储第四吋间阈值 T F (其中 T 4<F, 且 T 4为整数) 、 加 速度区间二 [ΑΙ,ΒΙ]和个数阈值二 N0, 在所述第四吋间阈值 T F内, 对每一轴采 样 T 4个加速度数据, 统计每一轴的加速度数据落入所述加速度区间二 [ΑΙ,ΒΙ]的 个数值 Ν2, 若每轴的所述个数值 Ν2均达到上述的个数阈值二 Ν0, 则判断为转腕 , 进入步骤九; 若任一轴的所述个数值 Ν2未达到上述的个数阈值二 Ν0, 则重复 步骤七。
[0042] 在所述步骤八中, 进一步地, 所述加速度区间二包括 X轴加速度区间二、 Υ轴 加速度区间二和 Ζ轴加速度区间二, 所述个数阈值包括 X轴个数阈值二、 Υ轴个 数阈值二和 Ζ轴个数阈值二, 在所述第四吋间阈值 T 4/F内, 对每一轴采样 T 4个加 速度数据, 统计每一轴的加速度数据落入对应轴的加速度区间二的个数值, 若 每一轴的加速度数据二落入对应轴的加速度区间二的个数值均达到对应轴的个 数阈值二, 则判断为转腕, 进入步骤九; 若任一轴的加速度数据二落入对应轴 的加速度区间二的个数值未达到对应轴的个数阈值二, 则重复步骤七。
[0043] 在所述步骤八中, 进一步地, 对每一轴采样 Τ 42个加速度数据为在第四吋间阈 值工4^内的平均采样。
[0044] 步骤九, 所述处理器控制所述显示屏切屏。
[0045] 如附图 2所示, 实现所述的一种智能手环抬手亮屏、 转腕切屏的控制方法的智 能手环, 其特征在于, 所述智能手环至少包括处理器、 显示屏和三轴加速度传 感器; 所述处理器包括所述存储模块和所述比较模块, 所述存储模块存储所述 的采样频率 F、 第一吋间阈值 T JF、 幅度阈值一、 第二吋间阈值 T 2/F、 加速度区 间一和个数阈值一、 第三吋间阈值 T 3/F、 幅度阈值二 W0、 第四吋间阈值 TVF、 加速度区间二和个数阈值二 NO; 所述处理器与所述显示屏和所述三轴加速度传 感器连接。
[0046] 进一步地, 所述比较模块实现所述步骤三、 步骤四、 步骤七和步骤八中的所述 的"达到"的比较计算。
[0047] 基于上述技术方案, 可以精确判断用户的真实想法, 准确地在用户抬手吋点亮 屏幕, 转弯吋切换屏幕, 且用户在更换左右手吋, 不需要重新设置手环的佩戴 在左右手的状态。

Claims

权利要求书
[权利要求 1] 一种智能手环抬手亮屏、 转腕切屏的控制方法, 所述智能手环至少包 括处理器、 显示屏和三轴加速度传感器; 其特征在于, 所述方法包括 如下步骤:
步骤一, 所述三轴加速度传感器采集所述智能手环的三轴加速度的数 据, 并将该三轴加速度的数据传送至所述处理器; 步骤二, 所述处理器对上述采集到的三轴加速度的数据进行滤波处理 , 得到处理后的所述的三轴的加速度数据一;
步骤三, 所述处理器存储采样频率 F、 第一吋间阈值 T ^F (其中 F为 采样频率, T l<F, 且 1 ,为整数) 和幅度阈值一, 且所述处理器统计 三轴中每一轴的加速度数据一持续上升或下降的吋间和幅度: 若三轴 的加速度数据一种的 X轴和 Y轴 (X轴和 Y轴决定的平面为与手环的显 示屏平行的平面) 的加速度数据一持续上升或下降的吋间都达到所述 处理器存储的第一吋间阈值 T JF, 且三轴的加速度数据一中 X轴和 Y 轴的加速度数据一持续上升或下降的幅度都达到所述处理器存储的幅 度阈值一, 则所述处理器判断出现了抬手标识, 进入步骤四; 若否, 则重复步骤三;
步骤四, 所述处理器存储第二吋间阈 (其中 T 2<F, 且1\为整 数) 、 加速度区间一和个数阈值一, 在所述第二吋间阈值 T 2/F内, 对 每一轴采样 T 2个加速度数据, 统计每一轴的加速度数据落入所述加 速度区间一的个数值, 若每轴的所述个数值均达到上述的个数阈值一 , 则判断为抬手, 进入步骤五; 若任一轴的所述个数值未达到上述的 个数阈值一, 则重复步骤三;
步骤五, 所述处理器控制所述显示屏亮屏, 亮屏吋间为 Τ ΰ ;
步骤六, 在所述亮屏吋间为 Τ。内, 所述三轴加速度传感器继续采集 所述智能手环的三轴加速度的数据, 并将该三轴加速度的数据传送至 所述处理器; 所述处理器对上述采集到的三轴加速度的数据进行滤波 处理, 得到处理后的三轴的加速度数据二; 步骤七, 所述处理器存储第三吋间阈值丁3^ (其中 T 3<F, 且丁3为整 数) 和幅度阈值二 W0, 且所述处理器统计三轴中每一轴的加速度数 二据持续上升或下降的吋间 T和幅度 W: 若三轴的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴 (X轴和 Y轴决定的平面为与手环的 显示屏平行的平面, z轴为与该平面垂直的轴) 的加速度数据二持续 上升或下降的吋间都达到所述处理器存储的第三吋间阈值 T 3/F, 且三 轴的加速度数据二中的 X轴和 Z轴两轴或 Y轴和 Z轴两轴的加速度数据 二持续上升或下降的幅度都达到所述处理器存储的幅度阈值二 wo, 则所述处理器判断出现了转腕标识, 进入步骤八; 若否, 则重复步骤 七;
步骤八, 所述处理器存储第四吋间阈值1 4^ (其中 T 4<F, 且1 4为整 数) 、 加速度区间二 [ΑΙ,ΒΙ]和个数阈值二 N0, 在所述第四吋间阈值 T 4/F内, 对每一轴采样 1\个加速度数据, 统计每一轴的加速度数据 落入所述加速度区间二 [ΑΙ,ΒΙ]的个数值 N2, 若每轴的所述个数值 N2 均达到上述的个数阈值二 N0, 则判断为转腕, 进入步骤九; 若任一 轴的所述个数值 N2未达到上述的个数阈值二 N0, 则重复步骤七; 步骤九, 所述处理器控制所述显示屏切屏。
[权利要求 2] 根据权利要求 1所述的一种智能手环抬手亮屏、 转腕切屏的控制方法
, 其特征在于, 在所述步骤三中, 所述幅度阈值一包括 X轴幅度阈值 一和 Y轴幅度阈值一; 所述三轴的加速度数据一中 X轴和 Y轴的加速 度数据一持续上升或下降的幅度都达到所述处理器存储的幅度阈值一 具体为三轴的加速度数据一中 X轴和 Y轴的加速度数据一持续上升或 下降的幅度分别达到所述处理器存储对应轴的幅度阈值一。
[权利要求 3] 根据权利要求 1所述的一种智能手环抬手亮屏、 转腕切屏的控制方法
, 其特征在于, 在所述步骤四中, 所述加速度区间一包括 X轴加速度 区间一 [a 1 b Y轴加速度区间一 [a 2,b 2]和 Z轴加速度区间一 [a 3,b 3] , 所述个数阈值一包括 X轴个数阈值一、 Y轴个数阈值一和 Z轴个数阈 值一; 在所述第二吋间阈值 T 2/F内, 对每一轴采样 T 2个加速度数据 , 统计每一轴的加速度数据落入所述加速度区间一的个数值, 若每一 轴的加速度数据落入对应轴的加速度区间一的个数值均达到对应轴的 个数阈值一, 则判断为抬手, 进入步骤六; 若任一轴的加速度数据落 入对应轴的加速度区间一的个数值未达到对应轴的个数阈值一, 则重 复步骤三。
[权利要求 4] 根据权利要求 3所述的一种智能手环抬手亮屏、 转腕切屏的控制方法
, 其特征在于, 在所述步骤四中, 对每一轴采样 1 2个加速度数据为 在第二吋间阈值 T 2/F内的平均采样。
[权利要求 5] 根据权利要求 1所述的一种智能手环抬手亮屏、 转腕切屏的控制方法
, 其特征在于, 在所述步骤七中, 所述幅度阈值二包括 X轴幅度阈值 二和 Z轴幅度阈值二两个幅度阈值或 Y轴幅度阈值二和 Z轴幅度阈值二 两个幅度阈值, 且所述处理器统计三轴中每一轴的加速度数据持续上 升或下降的吋间和幅度: 若三轴的加速度数据二中的 X轴和 Z轴两轴 或 Y轴和 Z轴两轴的加速度数据二持续上升或下降的吋间都达到所述 处理器存储的第一吋间阈值 T JF, 且 X轴和 Z轴两轴或 Y轴和 Z轴两轴 的加速度数据二持续上升或下降的幅度分别达到所述处理器存储对应 轴的幅度阈值二, 则所述处理器判断出现了转腕标识, 进入步骤八; 若否, 则重复步骤七。
[权利要求 6] 根据权利要求 1所述的一种智能手环抬手亮屏、 转腕切屏的控制方法
, 其特征在于, 在所述步骤八中, 所述加速度区间二包括 X轴加速度 区间二、 Y轴加速度区间二和 Z轴加速度区间二, 所述个数阈值包括 X 轴个数阈值二、 Y轴个数阈值二和 Z轴个数阈值二, 在所述第四吋间 阈值 T 4/F内, 对每一轴采样 1\个加速度数据, 统计每一轴的加速度 数据落入对应轴的加速度区间二的个数值, 若每一轴的加速度数据二 落入对应轴的加速度区间二的个数值均达到对应轴的个数阈值二, 则 判断为转腕, 进入步骤九; 若任一轴的加速度数据二落入对应轴的加 速度区间二的个数值未达到对应轴的个数阈值二, 则重复步骤七。
[权利要求 7] 根据权利要求 6所述的一种智能手环抬手亮屏、 转腕切屏的控制方法 , 其特征在于, 在所述步骤八中, 对每一轴采样 T 4个加速度数据为 在第四吋间阈值 T 4/F内的平均采样。
[权利要求 8] 实现权利要求 1-7中任一项所述的一种智能手环抬手亮屏、 转腕切屏 的控制方法的智能手环, 其特征在于, 所述智能手环至少包括处理器 、 显示屏和三轴加速度传感器; 所述处理器包括所述存储模块和所述 比较模块, 所述存储模块存储所述的采样频率 F、 第一吋间阈值 、 幅度阈值一、 第二吋间阈值 T 2/F、 加速度区间一和个数阈值一、 第 三吋间阈值 T 3/F、 幅度阈值二 W0、 第四吋间阈值 T 4/F、 加速度区间 二和个数阈值二 NO; 所述处理器与所述显示屏和所述三轴加速度传 感器连接。
[权利要求 9] 根据权利要求 8所述的智能手环, 其特征在于, 所述比较模块实现所 述步骤三、 步骤四、 步骤七和步骤八中的所述的"达到"的比较计算。
PCT/CN2017/100185 2016-10-12 2017-09-01 一种手环抬手亮屏、转腕切屏的控制方法 WO2018068592A1 (zh)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN201610889543.2 2016-10-12
CN201610889543.2A CN106547370B (zh) 2016-10-12 2016-10-12 一种智能手环抬手亮屏、转腕切屏的控制方法

Publications (1)

Publication Number Publication Date
WO2018068592A1 true WO2018068592A1 (zh) 2018-04-19

Family

ID=58368788

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2017/100185 WO2018068592A1 (zh) 2016-10-12 2017-09-01 一种手环抬手亮屏、转腕切屏的控制方法

Country Status (2)

Country Link
CN (1) CN106547370B (zh)
WO (1) WO2018068592A1 (zh)

Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106547370B (zh) * 2016-10-12 2018-07-06 广东乐源数字技术有限公司 一种智能手环抬手亮屏、转腕切屏的控制方法
CN106483882B (zh) * 2016-10-21 2020-02-21 广东乐源数字技术有限公司 一种手环放手灭屏的控制方法
CN111722692B (zh) * 2019-03-21 2022-01-04 奇酷互联网络科技(深圳)有限公司 功耗控制方法、存储介质及可穿戴设备
CN111768770A (zh) * 2019-04-01 2020-10-13 深圳如一探索科技有限公司 语音识别的智能手环及其识别方法
CN112199013A (zh) * 2020-08-27 2021-01-08 广东乐芯智能科技有限公司 一种智能手表的显示切换方法
CN112199026A (zh) * 2020-08-27 2021-01-08 广东乐芯智能科技有限公司 一种可进行多窗口显示切换的智能手表
CN112148184A (zh) * 2020-08-27 2020-12-29 广东乐芯智能科技有限公司 一种智能手表多窗口显示切换方法
CN112162477A (zh) * 2020-08-27 2021-01-01 广东乐芯智能科技有限公司 一种智能手表

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20130106684A1 (en) * 2010-11-01 2013-05-02 Nike, Inc. Wearable Device Assembly Having Athletic Functionality
CN104090649A (zh) * 2014-05-20 2014-10-08 上海翰临电子科技有限公司 一种智能表带及其操作控制方法
CN105072264A (zh) * 2015-07-27 2015-11-18 深圳市嘀嗒互动科技有限公司 基于三轴加速度传感器的智能腕表控制方法及系统
CN105912125A (zh) * 2016-04-26 2016-08-31 广东小天才科技有限公司 一种智能穿戴设备亮屏方法及系统
CN105975065A (zh) * 2016-04-28 2016-09-28 上海海漾软件技术有限公司 智能手表的屏幕控制方法、装置以及智能手表
CN106547370A (zh) * 2016-10-12 2017-03-29 广东乐源数字技术有限公司 一种智能手环抬手亮屏、转腕切屏的控制方法
CN206165990U (zh) * 2016-10-12 2017-05-17 广东乐源数字技术有限公司 一种可实现抬手亮屏、转腕切屏的智能手环

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2002358149A (ja) * 2001-06-01 2002-12-13 Sony Corp ユーザ入力装置
US8660517B2 (en) * 2011-10-07 2014-02-25 Jason Paul DeMont Personal assistance monitoring system
CN105357366A (zh) * 2015-09-29 2016-02-24 努比亚技术有限公司 基于压力传感器的终端控制方法和装置

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20130106684A1 (en) * 2010-11-01 2013-05-02 Nike, Inc. Wearable Device Assembly Having Athletic Functionality
CN104090649A (zh) * 2014-05-20 2014-10-08 上海翰临电子科技有限公司 一种智能表带及其操作控制方法
CN105072264A (zh) * 2015-07-27 2015-11-18 深圳市嘀嗒互动科技有限公司 基于三轴加速度传感器的智能腕表控制方法及系统
CN105912125A (zh) * 2016-04-26 2016-08-31 广东小天才科技有限公司 一种智能穿戴设备亮屏方法及系统
CN105975065A (zh) * 2016-04-28 2016-09-28 上海海漾软件技术有限公司 智能手表的屏幕控制方法、装置以及智能手表
CN106547370A (zh) * 2016-10-12 2017-03-29 广东乐源数字技术有限公司 一种智能手环抬手亮屏、转腕切屏的控制方法
CN206165990U (zh) * 2016-10-12 2017-05-17 广东乐源数字技术有限公司 一种可实现抬手亮屏、转腕切屏的智能手环

Also Published As

Publication number Publication date
CN106547370A (zh) 2017-03-29
CN106547370B (zh) 2018-07-06

Similar Documents

Publication Publication Date Title
WO2018068592A1 (zh) 一种手环抬手亮屏、转腕切屏的控制方法
WO2018024178A1 (zh) 一种可转腕亮屏的智能手环及其控制方法
US20230066299A1 (en) Portable Monitoring Devices and Methods of Operating the Same
AU2020273327A1 (en) Systems and methods of swimming analysis
JP5724976B2 (ja) 運動情報検出装置および運動情報検出方法、運動情報検出プログラム
CN206165990U (zh) 一种可实现抬手亮屏、转腕切屏的智能手环
CN108125333A (zh) 一种可实现抬手亮屏的智能手环
CN106897562B (zh) 一种旅游随身健康终端的工作方法
CN106292871B (zh) 一种可实现转腕亮屏的智能手环
CN204157812U (zh) 一种具有检测心率功能的手环结构
CN107049255A (zh) 一种穿戴式智能设备及其睡眠算法
WO2018023894A1 (zh) 一种智能手环抬手亮屏的方法及智能手环
CN108992040A (zh) 一种人体睡眠状态监测方法和装置
CN107085367A (zh) 一种智能手表的抬手亮屏方法
CN112006667A (zh) 一种基于智能手环的信息采集系统
CN106227300B (zh) 一种智能手环抬手亮屏的方法
CN205352466U (zh) 可穿戴式环境湿度温度光谱测量及运动检测装置
CN105496381A (zh) 一种基于智能穿戴设备的婴幼儿看护方法及智能穿戴设备
CN104586402A (zh) 一种人体活动的特征提取方法
CN106371631B (zh) 一种智能手环抬手亮屏的方法
CN208096229U (zh) 一种钓鱼手环
CN107229216A (zh) 一种智能手表及其控制方法
WO2018072616A1 (zh) 一种手环放手灭屏的控制方法
EP3123930A1 (en) Detection method for volleyball technique
CN112817379A (zh) 一种智能手表的抬腕亮屏方法及智能手表

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 17861029

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 17861029

Country of ref document: EP

Kind code of ref document: A1