WO2017206846A1 - 防误触唤醒装置、方法、智能终端和计算机存储介质 - Google Patents

防误触唤醒装置、方法、智能终端和计算机存储介质 Download PDF

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WO2017206846A1
WO2017206846A1 PCT/CN2017/086413 CN2017086413W WO2017206846A1 WO 2017206846 A1 WO2017206846 A1 WO 2017206846A1 CN 2017086413 W CN2017086413 W CN 2017086413W WO 2017206846 A1 WO2017206846 A1 WO 2017206846A1
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Prior art keywords
module
application processing
processing module
wake
input value
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PCT/CN2017/086413
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English (en)
French (fr)
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孙中兰
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深圳市万普拉斯科技有限公司
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Priority to US16/304,314 priority Critical patent/US11126442B2/en
Priority to EP17805791.5A priority patent/EP3460630B1/en
Publication of WO2017206846A1 publication Critical patent/WO2017206846A1/zh

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3206Monitoring of events, devices or parameters that trigger a change in power modality
    • G06F1/3215Monitoring of peripheral devices
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3234Power saving characterised by the action undertaken
    • G06F1/325Power saving in peripheral device
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F9/00Arrangements for program control, e.g. control units
    • G06F9/06Arrangements for program control, e.g. control units using stored programs, i.e. using an internal store of processing equipment to receive or retain programs
    • G06F9/44Arrangements for executing specific programs
    • G06F9/4401Bootstrapping
    • G06F9/4418Suspend and resume; Hibernate and awake
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3206Monitoring of events, devices or parameters that trigger a change in power modality
    • G06F1/3231Monitoring the presence, absence or movement of users
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D10/00Energy efficient computing, e.g. low power processors, power management or thermal management

Definitions

  • the present invention relates to the field of intelligent terminal technologies, and in particular, to an anti-missing wake-up device, a method, an intelligent terminal, and a computer storage medium.
  • FIG. 1 the general anti-missing circuit is shown in FIG. 1 , which touches the sensing module through a TP (Touch Panel) and/or an FPC (Finger Printer Card) (FIG. 1). Only the TP and FPC are drawn to indicate the interrupted AP (Application Processor), and after the interrupt wakes up the AP, the P-set set in the non-touch sensing area is judged by the CPU (Central Processing Unit).
  • TP Touch Panel
  • FPC Finger Printer Card
  • the state of the Sensor when the proximity sensor is in the close state, it is considered that the trigger is a false trigger, interrupting the current flow.
  • the proximity sensor is placed at the earpiece, and when the proximity sensor senses that the object (human face) is connected In the near state, the smartphone CPU recognizes that the proximity sensor is in a close state and interrupts the process of waking up the AP.
  • the smart terminal CPU can judge the false trigger by judging the state of the proximity sensor module, the processes such as the false touch determination, the interrupt wake-up, and the flow interrupt processing have formed a deadweight loss of power consumption.
  • Embodiments of the present invention are directed to providing an anti-missing wake-up device, method, intelligent terminal, and computer storage medium to solve the problem of power consumption loss caused by processes such as false touch determination, interrupt wake-up, and flow interruption processing in the prior art.
  • Embodiments of the present invention provide an anti-missing wake-up device, including: a touch sensing module, a proximity sensing module, a NAND logic module, a logic module, and an application processing module;
  • the first input end of the logic module is connected to the touch sensing module, the second input end of the AND logic module is connected to the output end of the NAND logic module, and the output end of the logic module is Connected to the application processing module, the first input end of the NAND logic module is connected to the proximity sensing module, and the second input end of the NAND logic module is connected to the application processing module;
  • the second input end of the NAND logic module inputs a first input value
  • the initial state of the application processing module is an awake state
  • the NAND logic module The second input terminal inputs a second input value, the first input value being different from the second input value.
  • the embodiment of the invention further provides an anti-missing wake-up method, including:
  • the application processing module is not woken up.
  • the embodiment of the present invention further provides an intelligent terminal, including an intelligent terminal body and an anti-missing wake-up device according to the embodiment of the present invention, where the smart terminal body is connected to the anti-missing wake-up device.
  • the embodiment of the invention further provides a computer storage medium, wherein the computer storage medium stores computer executable instructions, and the computer executable instructions are used to execute the anti-missing wake-up method according to the embodiment of the invention.
  • the anti-missing wake-up device, the method, the intelligent terminal and the computer storage medium provided by the embodiment of the invention include: a touch sensing module, a proximity sensing module, a NAND logic module, a logic module and an application processing module
  • the first input end of the logic module is connected to the touch sensing module
  • the second input end of the logical module is connected to the output end of the NAND logic module
  • the output of the logical module is The end is connected to the application processing module
  • the first input end of the NAND logic module is connected to the proximity sensing module
  • the second input end of the NAND logic module is connected to the application processing module
  • the initial state of the application processing module is a standby state
  • the second input end of the NAND logic module inputs a first input value
  • the initial state of the application processing module is an awake state
  • the NAND logic module The second input receives a second input value, the first input value being different from the second input value.
  • the signals of the proximity sensing module and the touch sensing module are not directly transmitted to the application processing module, but are logically operated by the NAND logic module and the logic module, according to the touch sensing module and the near
  • the distance sensing module and the initial state of the application processing module determine whether the touch sensing signal is transmitted to the application processing module to wake up the application processing module, and the entire device has no power consumption by mistake detection and wake-up interrupt determination, thereby effectively reducing power consumption.
  • FIG. 1 is a schematic structural view of a conventional anti-missing circuit
  • FIG. 2 is a schematic structural view of a first embodiment of the anti-missing wake-up device of the present invention
  • FIG. 3 is a schematic structural view of a second embodiment of the anti-missing wake-up device of the present invention.
  • FIG. 4 is a schematic diagram showing the circuit principle of one embodiment of the anti-missing wake-up device of the present invention.
  • FIG. 5 is a schematic flowchart diagram of an embodiment of an anti-missing wake-up method according to the present invention.
  • an embodiment of the present invention provides an anti-missing wake-up device, including: a touch sensing module 100, a proximity sensing module 200, a NAND logic module 300, a logic module 400, and an application processing module.
  • a touch sensing module 100 a proximity sensing module 200
  • a NAND logic module 300 a logic module 400
  • an application processing module a processing module 500
  • the first input end of the logic module 400 is connected to the touch sensing module 100
  • the second input end of the logic module 400 is connected to the output end of the NAND logic module 300
  • the output end of the logic module 400 is processed by the application.
  • the module 500 is connected, the first input end of the non-logic module 300 is connected to the proximity sensing module 200, and the second input end of the non-logic module 300 is connected to the application processing module 500.
  • the second input of the NAND logic module 300 inputs the first input value
  • the second of the NAND logic module 300 The input enters a second input value, the first input value being different from the second input value.
  • the touch sensing module 100 is configured to respond to a touch action.
  • the touch sensing module 100 may include a TP and/or an FPC.
  • the touch sensing module 100 outputs a high level to the logic module 400.
  • the sense module 100 outputs a low level to the AND logic module 400.
  • the proximity sensor module 200 is configured to sense whether the object is in an approach state.
  • the proximity sensor module 200 may include a proximity sensor. When the object is in the proximity state, the proximity sensor module 200 outputs a high level to the NAND logic module 300. When the object is not in the proximity state, the proximity sensor transmits The sense module 200 outputs a low level to the NAND logic module 300.
  • the logical module 400 is configured to implement a logical relationship, and specifically, the logical module 400 can include an AND gate. As an example, the logical module 400 can include a plurality of AND gates. And non The logic module 300 is configured to implement a non-logical relationship. Specifically, the NAND logic module 300 can include a NAND gate. It should be noted that the relative setting position between the proximity sensing module 200 and the touch sensing module 100 can be set according to the conventional conventional manner. For example, in the smart phone, the touch sensing module 100 is disposed on the screen or the button, and the near The distance sensing module 200 is disposed at the earpiece.
  • the anti-missing wake-up device of the embodiment of the present invention includes a touch sensing module 100, a proximity sensing module 200, a NAND logic module 300, a logic module 400, and an application processing module 500, when the initial state of the application processing module 500 is In the standby state, the second input end of the NAND logic module 300 inputs the first input value, and when the initial state of the application processing module 500 is the awake state, the second input end of the NAND logic module 300 inputs the second input value, the close distance
  • the signals of the sensing module 200 and the touch sensing module 100 are not directly transmitted to the application processing module 500, but are logically operated by the NAND logic module 300 and the logic module 400, according to the touch sensing module 100 and the close proximity.
  • the sensing module 200 and the application processing module 500 determine the initial state to determine whether the touch sensing signal is fed back to the application processing module 500 to wake up the application processing module 500.
  • the entire device is in the wrong touch judgment and the wake-up interrupt determination has no power consumption, and can effectively reduce Power consumption.
  • the second input of the NAND logic module 300 inputs a high level
  • the NAND logic module The second input of 300 inputs a low level
  • the initial state of the application processing module 500 For the relationship between the initial state of the application processing module 500 and the input of the second input of the NAND logic module 300, it can be understood that when the initial state of the application processing module 500 is the standby state, the application processing module 500 is applied.
  • a pin connected to the NAND logic module 300 is set to a high level.
  • the pin of the application processing module 500 connected to the non-logic module 300 is placed.
  • a non-logical relationship device eg, a NOT gate
  • a non-logical relationship device may also be disposed between the application processing module 500 and the second input of the NAND logic module 300, and when the application processing module 500 is initially initialized For standby In the state, the pin of the application processing module 500 connected to the non-logic module 300 is set to a low level, and when the initial state of the application processing module 500 is the awake state, the application processing module 500 is connected to the non-logic module 300. (pin) is set to high.
  • the first column logic determination process in Table 1 includes: touching the sensing module 100 to sense a touch, outputting a high level to the logic module 400, and the proximity sensing module 200 sensing a proximity state output high level to the NAND logic module. 300.
  • the application processing module 500 is in an awake state, and outputs a low level to the NAND logic module 300.
  • the NAND logic module 300 performs NAND operations on the input 1 (high level) and 0 (low level). , output 1 (high level) to the logic module 400, and the logic module 400 performs an AND logic operation on the input 1 (high level) and 1 (high level), and outputs 1 (high level) to the application processing module. 500. Since the application processing module 500 is initially in the awake state, the wake-up operation will not be performed again.
  • the second column logic determination process in Table 1 includes: when the touch sensing module 100 senses a touch, the output level is high to the logic module 400, and the proximity sensor module 200 senses the proximity state output high level to the NAND logic.
  • the module 300, the application processing module 500 is in a standby state, outputs a high level to the NAND logic module 300, and the NAND logic module 300 performs NAND logic for the input 1 (high level) and 1 (high level). Operation, output 0 (low) to AND logic block 400, and logic module 400 for input 1 (high) and 0 (low) Level) performs a logical operation, outputs 0 (low level) to the application processing module 500, and does not wake up the application processing module 500, thereby implementing anti-missing.
  • the third column logic determining process in Table 1 includes: touching the sensing module 100 to sense a touch, outputting a high level to the logic module 400, and the proximity sensing module 200 does not sense the proximity state output low level to the NAND logic.
  • the module 300, the application processing module 500 is in an awake state, and outputs a low level to the NAND logic module 300.
  • the NAND logic module 300 performs NAND logic for the input 0 (low level) and 0 (low level). Operation, output 1 (high level) to and logic module 400, with logic module 400 for input 1 (high level) and 1 (high level) for logical operation, output 1 (high level) to application processing Module 500, since application processing module 500 is initially in an awake state, the wake-up operation will not be performed again.
  • the fourth column logic determining process in Table 1 includes: touching the sensing module 100 to sense a touch, outputting a high level to the logic module 400, and the proximity sensing module 200 does not sense the proximity state output low level to the NAND logic.
  • the module 300, the application processing module 500 is in a standby state, outputs a high level to the NAND logic module 300, and the NAND logic module 300 performs NAND logic for the input 0 (low level) and 1 (high level). Operation, output 1 (high level) to and logic module 400, with logic module 400 for input 1 (high level) and 1 (high level) for logical operation, output 1 (high level) to application processing Module 500, attempts to wake up application processing module 500.
  • the touch sensing module 100 includes a plurality of touch sensing units, each of which is coupled to the first input of the logic module 400.
  • the acquisition of the touch sensing signal may be obtained from multiple places or multiple channels.
  • the touch sensing module 100 includes a plurality of touch sensing units, each of the touch sensing units being respectively connected to the first input end of the logic module 400, when each touch sensing When the unit senses a touch, it outputs a high level to the logic module 400.
  • each touch sensing unit may use the same or different touch sensors.
  • all touch sensing units may be TP, or all touch sensing units may be FPC, or some touches.
  • the sensing unit is TP, and the other part touches the sensing unit as FPC.
  • Multiple touch sensing units To sense the touch action in different positions and in different ways.
  • the AND logic module 400 includes a plurality of AND logic units 420 (only two are shown in FIG. 3 to illustrate), and the number of logic units 420 is equal to the number of touch sensing units. ;
  • the first input end of the logic unit 420 is connected to a single touch sensing unit, the second input end of the logic unit 420 is connected to the output end of the NAND logic module 300, and the output end of the logic unit 420 is applied.
  • the processing module 500 is connected.
  • Each of the logic unit 420 is connected to a single touch sensing unit, and the logical operation between the single touch sensing unit and the NAND logic module 300 improves the entire anti-missing wake-up device to a certain extent. Reliability.
  • the number of touch sensing units is two, and the number of logical units 420 is two.
  • the touch sensing module 100 includes a touch panel 120 and a fingerprint identifier 140 , and the touch panel 120 and the fingerprint identifier 140 are respectively connected to the logic module 400 .
  • the touch panel 120 and the fingerprint identifier 140 are respectively used to sense the touch action, and each touch sensor is connected with the logic unit 420 to respectively perform the touch panel 120 and
  • the logic operation between the NAND logic module 300 and the logic operation between the fingerprint identifier 140 and the NAND logic module 300 can accurately and conveniently sense the touch action, and use reasonable and rigorous logic operations to determine whether The application processing module 500 needs to be woken up, and no power consumption is achieved by the false touch judgment and the wake-up interrupt, and low power consumption is realized.
  • the AND logic module 400 includes an AND logic gate, such as AND gate 1 and AND gate 2 included in FIG.
  • the NAND logic module 300 includes a NAND gate.
  • the application processing module 500 includes an AP.
  • the proximity sensor module 200 includes a proximity sensor.
  • the embodiment of the invention further provides an intelligent terminal, comprising an intelligent terminal body and the above-mentioned anti-missing wake-up device, wherein the smart terminal body is connected with the anti-missing wake-up device.
  • the intelligent terminal includes the intelligent terminal body and the above-mentioned anti-missing wake-up device.
  • the smart terminal can be detected by the anti-missing wake-up device, the wake-up interrupt, the wake-up interrupt, and the status determination of the proximity sensor module 200. Effectively reduce power consumption, and its endurance can be effectively improved.
  • an embodiment of the present invention further provides an anti-missing wake-up method, including:
  • S200 Acquire an input value of the application processing module, and determine, according to an input value of the application processing module, whether the initial state of the application processing module is in a standby state or an awake state.
  • S400 Acquire an input value of the proximity sensing module, and determine, according to an input value of the proximity sensing module, whether the proximity sensing module is in a close state.
  • S600 Acquire a wake-up signal of the touch sensing module.
  • the application processing module is initially in a standby state and the proximity sensing module is in a proximity state, the application processing module is not woken up.
  • the method further includes S800: waking up the application processing module when the application processing module is not in a standby state, or the proximity sensing module is not in a proximity state.
  • the embodiment of the present invention further provides an anti-missing wake-up method, which acquires an input value of an application processing module, and determines that the application processing module is in a standby state or an awake state based on an input value of the application processing module; The input value of the module determines whether the proximity sensing module is in a close state based on the input value of the proximity sensing module; acquiring the touch sensing module Wake-up signal, when the application processing module is in a standby state and the proximity sensing module is in a proximity state, the application processing module is not woken up; when the application processing module is not in a standby state, or the near-distance transmission The application processing module is woken up when the sense module is not in the proximity state.
  • the signals of the proximity sensing module and the touch sensing module are not directly transmitted to the application processing module, but are determined according to the initial state of the touch sensing module and the proximity sensing module and the application processing module. Wake up the application processing module, and the power consumption is reduced without any power consumption during the entire wake-up process.
  • the obtaining an input value of the application processing module, determining, according to the input value of the application processing module, that the application processing module is in a standby state or in an awake state includes: when an input value of the application processing module is a first input When the value is determined, the application processing module is determined to be in a standby state; when the input value of the application processing module is a second input value, determining that the application processing module is in an awake state.
  • the first input value includes a high level
  • the second input value includes a low level
  • the embodiment of the invention further provides an anti-missing wake-up method based on the anti-missing wake-up device, the anti-missing wake-up device comprises: a touch sensing module, a proximity sensing module, a NAND logic module, and a logic The module and the application processing module; the method includes: determining whether the application processing module is in an awake state or in a standby state, determining whether the proximity sensing module state is in a close state, and when receiving the touch signal of the touch sensing module, passing The NAND logic module and the logic module perform logical operations, and wake up the application processing module according to the logical operation result or not wake up the application processing module.
  • the signals of the proximity sensing module and the touch sensing module are not directly transmitted to the application processing module, but are logically operated by the NAND logic module and the logic module, according to the touch sensing module and the proximity sensing.
  • the module and the application processing module initial state determine whether the touch sensing signal is transmitted to the application processing module to wake up the application processing module, and the power consumption is determined by the false touch determination and the wake-up interrupt determination during the entire wake-up process, which can effectively reduce power consumption. .
  • An embodiment of the present invention further provides a computer storage medium, where the computer storage medium Stored with computer executable instructions for performing the anti-missing wake-up method described in the embodiments of the present invention.
  • the computer executable instruction is executed by the processor, executing: acquiring an input value of the application processing module, determining, according to an input value of the application processing module, that the initial state of the application processing module is in a standby state or in an Awakening state; obtaining an input value of the proximity sensor module, determining whether the proximity sensor module is in a proximity state based on an input value of the proximity sensor module; acquiring a wake-up signal of the touch sensor module, when When the application processing module is in the standby state and the proximity sensing module is in the proximity state, the application processing module is not woken up.
  • the computer executable instructions when executed by the processor, executing: when the application processing module is not in a standby state, or the proximity sensing module is not in a proximity state, waking up the application processing Module.
  • the computer executable instructions when executed by the processor, when the input value of the application processing module is a first input value, determining that the application processing module is in a standby state; when the application is When the input value of the processing module is the second input value, it is determined that the application processing module is in an awake state.
  • the computer storage medium may be a memory such as FRAM, ROM, PROM, EPROM, EEPROM, Flash Memory, magnetic surface memory, optical disk, or CD-ROM; or may include one or any combination of the above memories.
  • Various devices such as mobile phones, computers, tablet devices, personal digital assistants, etc.
  • the disclosed method and apparatus may be implemented in other manners.
  • the device embodiments described above are merely illustrative.
  • the division of the modules is only a logical function division.
  • there may be another division manner for example, multiple modules or components may be combined, or Can be integrated into another system, or some features can be ignored or not executed.
  • the communication connections between the components shown or discussed may be indirect coupling or communication connections through some interfaces, devices or modules. It can be electrical, mechanical or other form.
  • the modules described above as separate components may or may not be physically separated.
  • the components displayed as modules may or may not be physical modules, that is, may be located in one place or distributed to multiple network modules; Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of the embodiment.
  • each functional module in each embodiment of the present invention may be integrated into one processing module, or each module may be separately used as one module, or two or more modules may be integrated into one module;
  • the module can be implemented in the form of hardware or in the form of hardware plus software function modules.
  • the foregoing program may be stored in a computer readable storage medium, and when executed, the program includes The foregoing steps of the method embodiment; and the foregoing storage medium includes: a removable storage device, a ROM, a magnetic disk, or an optical disk, and the like, which can store program codes.
  • the above-described integrated module of the embodiment of the present invention may be stored in a computer readable storage medium if it is implemented in the form of a software function module and sold or used as a stand-alone product.
  • the technical solution of the embodiments of the present invention may be embodied in the form of a software product in essence or in the form of a software product stored in a storage medium, including a plurality of instructions.
  • a computer device (which may be a personal computer, server, or network device, etc.) is caused to perform all or part of the methods described in various embodiments of the present invention.
  • the foregoing storage medium includes various media that can store program codes, such as a mobile storage device, a ROM, a magnetic disk, or an optical disk.
  • the technical solution of the embodiment of the present invention determines whether to wake up the application processing module according to the initial state of the touch sensing module, the proximity sensing module, and the application processing module, and the signals of the proximity sensing module and the touch sensing module are not directly transmitted. To the application processing module, there is no power consumption during the entire wake-up process, and the power consumption is greatly reduced.

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Abstract

一种防误触唤醒装置、方法、智能终端和计算机存储介质,所述防误触唤醒装置包括:碰触传感模块(100)、近距离传感模块(200)、与非逻辑模块(300)、与逻辑模块(400)以及应用处理模块(500);与逻辑模块(400)的第一输入端与碰触传感模块(100)连接,与逻辑模块(400)的第二输入端与与非逻辑模块(300)的输出端连接,与逻辑模块(400)的输出端与应用处理模块(500)连接,与非逻辑模块(300)的第一输入端与近距离传感模块(200)连接,与非逻辑模块(300)的第二输入端与应用处理模块(500)连接;当所述应用处理模块(500)的初始状态为待机状态时,所述与非逻辑模块(300)的第二输入端输入第一输入值,当所述应用处理模块(500)的初始状态为唤醒状态时,所述与非逻辑模块(300)的第二输入端输入第二输入值,所述第一输入值与所述第二输入值不同。

Description

防误触唤醒装置、方法、智能终端和计算机存储介质
相关申请的交叉引用
本申请基于申请号为201610380729.5、申请日为2016年05月31日的中国专利申请提出,并要求该中国专利申请的优先权,该中国专利申请的全部内容在此引入本申请作为参考。
技术领域
本发明涉及智能终端技术领域,特别是涉及防误触唤醒装置、方法、智能终端和计算机存储介质。
背景技术
随着科学技术的发展,智能终端设备越来越多应用到人们生活中,例如目前广泛使用的智能手机、平板电脑等,这些智能终端给人们生活带来了极大的便利。
目前智能终端普遍存在续航能力有限的问题,对此,有科研人员提出了防误触电路,通过防误触电路来避免智能终端误唤醒,尽量降低智能终端一些不必要的功耗。具体来说,一般的防误触电路如图1所示,其通过TP(Touch Panel,触控面板)和/或FPC(Finger Printer Card,指纹识别器)等碰触传感模块(图1中仅绘制了TP和FPC以示意)中断唤醒AP(Application Processor,应用处理器),在中断唤醒AP之后通过智能终端CPU(Central Processing Unit,中央处理器)判断设置于非碰触感应区域的P-Sensor(Proximity sensor,近距离传感器)的状态,当近距离传感器处于接近状态时,则认为本次触发是误触发,中断当前流程。以智能手机为例,近距离传感器设置于听筒处,当近距离传感器感应到物体(人脸)处于接 近状态时,智能手机CPU识别近距离传感器处于接近状态,中断唤醒AP的流程。
虽然智能终端CPU可以通过判断近距离传感模块的状态来进行误触发的判断,但是误触判断、中断唤醒以及流程中断处理等流程已经形成了功耗的无谓损失。
发明内容
本发明实施例期望提供一种防误触唤醒装置、方法、智能终端和计算机存储介质,以解决现有技术中误触判断、中断唤醒以及流程中断处理等流程造成的功耗损失的问题。
本发明实施例提供了一种防误触唤醒装置,包括:碰触传感模块、近距离传感模块、与非逻辑模块、与逻辑模块以及应用处理模块;
所述与逻辑模块的第一输入端与所述碰触传感模块连接,所述与逻辑模块的第二输入端与所述与非逻辑模块的输出端连接,所述与逻辑模块的输出端与所述应用处理模块连接,所述与非逻辑模块的第一输入端与所述近距离传感模块连接,所述与非逻辑模块的第二输入端与所述应用处理模块连接;
当所述应用处理模块的初始状态为待机状态时,所述与非逻辑模块的第二输入端输入第一输入值,当所述应用处理模块初始状态为唤醒状态时,所述与非逻辑模块的第二输入端输入第二输入值,第一输入值与第二输入值不同。
本发明实施例还提供了一种防误触唤醒方法,包括:
获取应用处理模块的输入值,基于所述应用处理模块的输入值判断述应用处理模块的初始状态是处于待机状态或是处于唤醒状态;
获取近距离传感模块的输入值,基于所述距离传感模块的输入值判断近距离传感模块是否处于接近状态;
获取触碰传感模块的唤醒信号,当所述应用处理模块处于待机状态且所述近距离传感模块处于接近状态时,不唤醒应用处理模块。
本发明实施例还提供了一种智能终端,包括智能终端本体以及本发明实施例所述的防误触唤醒装置,所述智能终端本体与所述防误触唤醒装置连接。
本发明实施例还提供了一种计算机存储介质,所述计算机存储介质中存储有计算机可执行指令,所述计算机可执行指令用于执行本发明实施例所述的防误触唤醒方法。
本发明实施例提供的防误触唤醒装置、方法、智能终端和计算机存储介质,所述装置包括:碰触传感模块、近距离传感模块、与非逻辑模块、与逻辑模块以及应用处理模块;所述与逻辑模块的第一输入端与所述碰触传感模块连接,所述与逻辑模块的第二输入端与所述与非逻辑模块的输出端连接,所述与逻辑模块的输出端与所述应用处理模块连接,所述与非逻辑模块的第一输入端与所述近距离传感模块连接,所述与非逻辑模块的第二输入端与所述应用处理模块连接;当所述应用处理模块的初始状态为待机状态时,所述与非逻辑模块的第二输入端输入第一输入值,当所述应用处理模块的初始状态为唤醒状态时,所述与非逻辑模块的第二输入端输入第二输入值,所述第一输入值与所述第二输入值不同。基于此,所述近距离传感模块和碰触传感模块的信号不会直接传输至应用处理模块,而是通过与非逻辑模块和与逻辑模块进行逻辑运算,根据碰触传感模块和近距离传感模块以及应用处理模块初始状态来决定碰触传感信号是否传输至应用处理模块,以唤醒应用处理模块,整个装置误触判断、唤醒中断判断均无功耗,能够有效降低功耗。
附图说明
图1为现有防误触电路的结构示意图;
图2为本发明防误触唤醒装置第一个实施例的结构示意图;
图3为本发明防误触唤醒装置第二个实施例的结构示意图;
图4为本发明防误触唤醒装置其中一个实施例电路原理示意图;
图5为本发明防误触唤醒方法其中一个实施例的流程示意图。
具体实施方式
如图2所示,本发明实施例提供了一种防误触唤醒装置,包括:碰触传感模块100、近距离传感模块200、与非逻辑模块300、与逻辑模块400以及应用处理模块500,与逻辑模块400的第一输入端与碰触传感模块100连接,与逻辑模块400的第二输入端与与非逻辑模块300的输出端连接,与逻辑模块400的输出端与应用处理模块500连接,与非逻辑模块300的第一输入端与近距离传感模块200连接,与非逻辑模块300的第二输入端与应用处理模块500连接;
当应用处理模块500的初始状态为待机状态时,与非逻辑模块300的第二输入端输入第一输入值,当应用处理模块500的初始状态为唤醒状态时,与非逻辑模块300的第二输入端输入第二输入值,第一输入值与第二输入值不同。
所述碰触传感模块100配置为响应碰触动作。具体的,碰触传感模块100可以包括TP和/或FPC,当有物体碰触时,碰触传感模块100输出高电平至与逻辑模块400,当无物体碰触时,碰触传感模块100输出低电平至与逻辑模块400。近距离传感模块200配置为感应物体是否处于接近状态。具体的,近距离传感模块200可以包括近距离传感器,当物体处于接近状态时,近距离传感模块200输出高电平至与非逻辑模块300,当物体不处于接近状态时,近距离传感模块200输出低电平至与非逻辑模块300。与逻辑模块400配置为实现与的逻辑关系,具体来说,与逻辑模块400可以包括与门(AND gate),作为一种示例,与逻辑模块400可以包括多个与门。与非 逻辑模块300配置为实现与非逻辑关系。具体的,与非逻辑模块300可以包括与非门(NAND gate)。需要指出的是,近距离传感模块200与碰触传感模块100之间相对设置位置可以参考现有常规方式进行设置,例如智能手机中,碰触传感模块100设置于屏幕或按键,近距离传感模块200设置于听筒处。
本发明实施例的防误触唤醒装置,包括碰触传感模块100、近距离传感模块200、与非逻辑模块300、与逻辑模块400以及应用处理模块500,当应用处理模块500初始状态为待机状态时,与非逻辑模块300的第二输入端输入第一输入值,当应用处理模块500初始状态为唤醒状态时,与非逻辑模块300的第二输入端输入第二输入值,近距离传感模块200和碰触传感模块100的信号不会直接传输至应用处理模块500,而是通过与非逻辑模块300和与逻辑模块400进行逻辑运算,根据碰触传感模块100和近距离传感模块200以及应用处理模块500初始状态来决定碰触传感信号是否反馈至应用处理模块500,以唤醒应用处理模块500,整个装置误触判断、唤醒中断判断均无功耗,能够有效降低功耗。
在其中一个实施例中,当应用处理模块500初始状态为待机状态时,与非逻辑模块300的第二输入端输入高电平,当应用处理模块500初始状态为唤醒状态时,与非逻辑模块300的第二输入端输入低电平。
针对应用处理模块500初始状态与所述与非逻辑模块300的第二输入端输入高、低电平之间关系,可以理解为,当应用处理模块500初始状态为待机状态时,应用处理模块500与所述与非逻辑模块300连接的引脚(pin)置为高位,当可以当应用处理模块500初始状态为唤醒状态时,应用处理模块500与非逻辑模块300连接的引脚(pin)置为低位;作为另一种示例,还可以在应用处理模块500与所述与非逻辑模块300的第二输入端之间设置非逻辑关系器件(例如非门),并且当应用处理模块500初始状态为待机 状态时,应用处理模块500与非逻辑模块300连接的引脚(pin)置为低位,当可以当应用处理模块500初始状态为唤醒状态时,应用处理模块500与非逻辑模块300连接的引脚(pin)置为高位。
为更进一步详细解释本发明实施例的防误触唤醒装置中各模块的交互过程,下面将采用真值表(表1)进行详细说明。
表1 防误触真值表
Figure PCTCN2017086413-appb-000001
表1中第一栏逻辑判断过程包括:碰触传感模块100感应到触摸,输出高电平至与逻辑模块400,近距离传感模块200感应到接近状态输出高电平至与非逻辑模块300,应用处理模块500初始状态是唤醒的状态,输出低电平至与非逻辑模块300,与非逻辑模块300针对输入为1(高电平)和0(低电平)进行与非逻辑运算,输出1(高电平)至与逻辑模块400,与逻辑模块400针对输入为1(高电平)和1(高电平)进行与逻辑运算,输出1(高电平)至应用处理模块500,由于应用处理模块500初始已经处于唤醒状态,不会再次进行唤醒操作。表1中第二栏逻辑判断过程包括:碰触传感模块100感应到触摸时,输出高电平至与逻辑模块400,近距离传感模块200感应到接近状态输出高电平至与非逻辑模块300,应用处理模块500初始状态是待机的状态,输出高电平至与非逻辑模块300,与非逻辑模块300针对输入为1(高电平)和1(高电平)进行与非逻辑运算,输出0(低电平)至与逻辑模块400,与逻辑模块400针对输入为1(高电平)和0(低 电平)进行与逻辑运算,输出0(低电平)至应用处理模块500,不唤醒应用处理模块500,从而实现防误触。表1中第三栏逻辑判断过程包括:碰触传感模块100感应到触摸,输出高电平至与逻辑模块400,近距离传感模块200未感应到接近状态输出低电平至与非逻辑模块300,应用处理模块500初始状态是唤醒的状态,输出低电平至与非逻辑模块300,与非逻辑模块300针对输入为0(低电平)和0(低电平)进行与非逻辑运算,输出1(高电平)至与逻辑模块400,与逻辑模块400针对输入为1(高电平)和1(高电平)进行与逻辑运算,输出1(高电平)至应用处理模块500,由于应用处理模块500初始已经处于唤醒状态,不会再次进行唤醒操作。表1中第四栏逻辑判断过程包括:碰触传感模块100感应到触摸,输出高电平至与逻辑模块400,近距离传感模块200未感应到接近状态输出低电平至与非逻辑模块300,应用处理模块500初始状态是待机的状态,输出高电平至与非逻辑模块300,与非逻辑模块300针对输入为0(低电平)和1(高电平)进行与非逻辑运算,输出1(高电平)至与逻辑模块400,与逻辑模块400针对输入为1(高电平)和1(高电平)进行与逻辑运算,输出1(高电平)至应用处理模块500,尝试唤醒应用处理模块500。
在一个实施例中,碰触传感模块100包括多个碰触传感单元,每个碰触传感单元分别与所述与逻辑模块400的第一输入端连接。
智能终端碰触唤醒过程中,获取碰触感应信号可能是从多个地方或多个渠道获取的。在本实施例中,碰触传感模块100包括多个碰触传感单元,每个碰触传感单元分别与所述与逻辑模块400的第一输入端连接,当每个碰触传感单元感应到碰触时,均会输出高电平至与逻辑模块400。需要指出的,每个碰触传感单元可能采用相同或不同的碰触传感器,例如所有碰触传感单元可能均为TP,或所有碰触传感单元可能均为FPC,又或一部分碰触传感单元为TP,另一部分碰触传感单元为FPC。多个碰触传感单元,可 以在不同位置、以不同方式感应碰触动作。
如图3所示,在一个实施例中,与逻辑模块400包括多个与逻辑单元420(图3中仅绘制两个以示意),且与逻辑单元420的数量与碰触传感单元数量相等;
与逻辑单元420的第一输入端分别与单个碰触传感单元连接,与逻辑单元420的第二输入端与所述与非逻辑模块300的输出端连接,与逻辑单元420的输出端与应用处理模块500连接。
每个与逻辑单元420分别与单个碰触传感单元连接,对单个碰触传感单元与所述与非逻辑模块300之间的与逻辑运算,在一定程度上提高了整个防误触唤醒装置的可靠性。
如图3所示,在一个实施例中,碰触传感单元的数量为2个,与逻辑单元420的数量为2个。
如图3所示,在一个实施例中,碰触传感模块100包括触控面板120和指纹识别器140,触控面板120和指纹识别器140分别与所述与逻辑模块400连接。
在上述实施例中,分别采用触控面板120和指纹识别器140两种类型的碰触传感器感应碰触动作,并且每个碰触传感器均连接有与逻辑单元420,分别执行触控面板120与所述与非逻辑模块300之间与逻辑运算以及指纹识别器140与所述与非逻辑模块300之间与逻辑运算,能够准确、便捷感应碰触动作,并采用合理、严谨的逻辑运算判断是否需要唤醒应用处理模块500,误触判断、唤醒中断均无功耗,实现低功耗。
如图4所示,在一个实施例中,所述与逻辑模块400包括与逻辑门,例如图4中包括的与门1(AND gate 1)和与门2(AND gate 2)。
如图4所示,在一个实施例中,所述与非逻辑模块300包括与非门(NAND gate)。
如图4所示,在一个实施例中,所述应用处理模块500包括AP。
如图4所示,在一个实施例中,所述近距离传感模块200包括近距离传感器。
上述4个实施例中,均选用性能可靠、价格低廉的电子器件,这样在一定程度上确保本发明防误触唤醒装置的可靠性,并能降低其生产成本。
本发明实施例还提供了一种智能终端,包括智能终端本体以及上述的防误触唤醒装置,所述智能终端本体与所述防误触唤醒装置连接。
本发明实施例的智能终端,包括智能终端本体以及上述防误触唤醒装置,由于防误触唤醒装置误触判断、唤醒中断以及近距离传感模块200状态判断均无功耗,整个智能终端能够有效降低功耗,其续航能力能够得到有效提升。
如图5所示,本发明实施例还提供一种防误触唤醒方法,包括:
S200:获取应用处理模块的输入值,基于所述应用处理模块的输入值判断所述应用处理模块的初始状态是处于待机状态或是处于唤醒状态。
S400:获取近距离传感模块的输入值,基于所述近距离传感模块的输入值判断近距离传感模块是否处于接近状态。
S600:获取触碰传感模块的唤醒信号,当所述应用处理模块初始处于待机状态且近距离传感模块为接近状态时,不唤醒所述应用处理模块。
作为另一种实施方式,所述方法还包括S800:当所述应用处理模块未处于待机状态,或者所述近距离传感模块未处于接近状态时,唤醒所述应用处理模块。
本发明实施例还提供一种防误触唤醒方法,获取应用处理模块的输入值,基于所述应用处理模块的输入值判断所述应用处理模块处于待机状态或处于唤醒状态;获取近距离传感模块的输入值,基于所述近距离传感模块的输入值判断近距离传感模块是否处于接近状态;获取触碰传感模块的 唤醒信号,当所述应用处理模块处于待机状态且所述近距离传感模块处于接近状态时,不唤醒所述应用处理模块;当所述应用处理模块未处于待机状态,或者所述近距离传感模块未处于接近状态时,唤醒所述应用处理模块。在上述过程中,近距离传感模块和碰触传感模块的信号不会直接传输至应用处理模块,而是根据碰触传感模块和近距离传感模块以及应用处理模块初始状态来决定是否唤醒应用处理模块,整个唤醒过程中误触判断、唤醒中断判断均无功耗,有效降低了功耗。在一个实施例中,所述获取应用处理模块的输入值,基于所述应用处理模块的输入值判断应用处理模块处于待机状态或处于唤醒状态,包括:当应用处理模块的输入值为第一输入值时,判定所述应用处理模块处于待机状态;当所述应用处理模块的输入值为第二输入值时,判定所述应用处理模块处于唤醒状态。
本实施例中,所述第一输入值包括高电平,所述第二输入值包括低电平。
本发明实施例还提供了一种基于防误触唤醒装置的防误触唤醒方法,所述防误触唤醒装置包括:碰触传感模块、近距离传感模块、与非逻辑模块、与逻辑模块以及应用处理模块;所述方法包括:判断应用处理模块处于唤醒状态或处于待机状态,判断近距离传感模块状态是否处于接近状态,当接收到碰触传感模块的碰触信号时,通过与非逻辑模块和与逻辑模块进行逻辑运算,并根据逻辑运算结果唤醒所述应用处理模块或不唤醒所述应用处理模块。近距离传感模块和碰触传感模块的信号不会直接传输至所述应用处理模块,而是通过与非逻辑模块和与逻辑模块进行逻辑运算,根据碰触传感模块和近距离传感模块以及应用处理模块初始状态来决定碰触传感信号是否传输至应用处理模块,以唤醒所述应用处理模块,整个唤醒过程中误触判断、唤醒中断判断均无功耗,能够有效降低功耗。
本发明实施例还提供了一种计算机存储介质,所述计算机存储介质中 存储有计算机可执行指令,所述计算机可执行指令用于执行本发明实施例所述的防误触唤醒方法。具体的,所述计算机可执行指令被处理器运行时,执行:获取应用处理模块的输入值,基于所述应用处理模块的输入值判断所述应用处理模块的初始状态是处于待机状态或是处于唤醒状态;获取近距离传感模块的输入值,基于所述近距离传感模块的输入值判断所述近距离传感模块是否处于接近状态;获取触碰传感模块的唤醒信号,当所述应用处理模块处于待机状态且所述近距离传感模块处于接近状态时,不唤醒所述应用处理模块。
作为一种实施方式,所述计算机可执行指令被处理器运行时,执行:当所述应用处理模块未处于待机状态,或者所述近距离传感模块未处于接近状态时,唤醒所述应用处理模块。
作为一种实施方式,所述计算机可执行指令被处理器运行时,执行:当所述应用处理模块的输入值为第一输入值时,判定所述应用处理模块处于待机状态;当所述应用处理模块的输入值为第二输入值时,判定所述应用处理模块处于唤醒状态。
在实际应用时,所述计算机存储介质可以是FRAM、ROM、PROM、EPROM、EEPROM、Flash Memory、磁表面存储器、光盘、或CD-ROM等存储器;也可以是包括上述存储器之一或任意组合的各种设备,如移动电话、计算机、平板设备、个人数字助理等。
在本发明所提供的几个实施例中,应该理解到,所揭露的方法及装置,可以通过其他的方式实现。以上所描述的装置实施例仅仅是示意性的,例如,所述模块的划分,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式,如:多个模块或组件可以结合,或可以集成到另一个系统,或一些特征可以忽略,或不执行。另外,所显示或讨论的各组成部分相互之间的通信连接可以是通过一些接口,设备或模块的间接耦合或通信连接, 可以是电性的、机械的或其他形式的。
上述作为分离部件说明的模块可以是、或也可以不是物理上分开的,作为模块显示的部件可以是、或也可以不是物理模块,即可以位于一个地方,也可以分布到多个网络模块上;可以根据实际的需要选择其中的部分或全部模块来实现本实施例方案的目的。
另外,在本发明各实施例中的各功能模块可以全部集成在一个处理模块中,也可以是各模块分别单独作为一个模块,也可以两个或两个以上模块集成在一个模块中;上述集成的模块既可以采用硬件的形式实现,也可以采用硬件加软件功能模块的形式实现。
本领域普通技术人员可以理解:实现上述方法实施例的全部或部分步骤可以通过程序指令相关的硬件来完成,前述的程序可以存储于计算机可读取存储介质中,该程序在执行时,执行包括上述方法实施例的步骤;而前述的存储介质包括:移动存储设备、ROM、磁碟或者光盘等各种可以存储程序代码的介质。
或者,本发明实施例上述集成的模块如果以软件功能模块的形式实现并作为独立的产品销售或使用时,也可以存储在一个计算机可读取存储介质中。基于这样的理解,本发明实施例的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机、服务器、或者网络设备等)执行本发明各个实施例所述方法的全部或部分。而前述的存储介质包括:移动存储设备、ROM、磁碟或者光盘等各种可以存储程序代码的介质。
本发明实施例中记载的存储器切换方法、装置只以上述实施例为例,但不仅限于此,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分或者全部技术特征进行 等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本发明各实施例技术方案的范围。
以上所述仅为本发明的较佳实施例而已,并非用于限定本发明的保护范围。
工业实用性
本发明实施例的技术方案根据碰触传感模块和近距离传感模块以及应用处理模块初始状态来决定是否唤醒应用处理模块,近距离传感模块和碰触传感模块的信号不会直接传输至应用处理模块,整个唤醒过程中误触判断、唤醒中断判断均无功耗,大大降低了功耗。

Claims (11)

  1. 一种防误触唤醒装置,包括:碰触传感模块、近距离传感模块、与非逻辑模块、与逻辑模块以及应用处理模块;
    所述与逻辑模块的第一输入端与所述碰触传感模块连接,所述与逻辑模块的第二输入端与所述与非逻辑模块的输出端连接,所述与逻辑模块的输出端与所述应用处理模块连接,所述与非逻辑模块的第一输入端与所述近距离传感模块连接,所述与非逻辑模块的第二输入端与所述应用处理模块连接;
    当所述应用处理模块的初始状态为待机状态时,所述与非逻辑模块的第二输入端输入第一输入值,当所述应用处理模块的初始状态为唤醒状态时,所述与非逻辑模块的第二输入端输入第二输入值,所述第一输入值与所述第二输入值不同。
  2. 根据权利要求1所述的防误触唤醒装置,其中,所述第一输入值包括高电平,所述第二输入值包括低电平。
  3. 根据权利要求1所述的防误触唤醒装置,其中,所述碰触传感模块包括多个碰触传感单元;
    每个所述碰触传感单元分别与所述与逻辑模块的第一输入端连接。
  4. 根据权利要求3所述的防误触唤醒装置,其中,所述与逻辑模块包括多个与逻辑单元,且所述与逻辑单元的数量与所述碰触传感单元数量相等;
    所述与逻辑单元的第一输入端分别与单个所述碰触传感单元连接,所述与逻辑单元的第二输入端与所述与非逻辑模块的输出端连接,所述与逻辑单元的输出端与所述应用处理模块连接。
  5. 根据权利要求1所述的防误触唤醒装置,其中,所述碰触传感模块包括触控面板和指纹识别器;
    所述触控面板和所述指纹识别器分别与所述与逻辑模块连接。
  6. 一种防误触唤醒方法,应用于防误触唤醒装置;所述防误触唤醒装置包括:碰触传感模块、近距离传感模块、与非逻辑模块、与逻辑模块以及应用处理模块;所述方法包括:
    获取应用处理模块的输入值,基于所述应用处理模块的输入值判断所述应用处理模块的初始状态是处于待机状态或是处于唤醒状态;
    获取近距离传感模块的输入值,基于所述近距离传感模块的输入值判断所述近距离传感模块是否处于接近状态;
    获取触碰传感模块的唤醒信号,当所述应用处理模块处于待机状态且所述近距离传感模块处于接近状态时,不唤醒所述应用处理模块。
  7. 根据权利要求6所述的防误触唤醒方法,其中,所述方法还包括:
    当所述应用处理模块未处于待机状态,或者所述近距离传感模块未处于接近状态时,唤醒所述应用处理模块。
  8. 根据权利要求6所述的防误触唤醒方法,其中,所述获取应用处理模块的输入值,基于所述应用处理模块的输入值判断所述应用处理模块处于待机状态或处于唤醒状态,包括:
    当所述应用处理模块的输入值为第一输入值时,判定所述应用处理模块处于待机状态;
    当所述应用处理模块的输入值为第二输入值时,判定所述应用处理模块处于唤醒状态。
  9. 根据权利要求8所述的防误触唤醒方法,其中,所述第一输入值包括高电平,所述第二输入值包括低电平。
  10. 一种智能终端,包括智能终端本体以及权利要求1-5任一项所述的防误触唤醒装置,所述智能终端本体与所述防误触唤醒装置连接。
  11. 一种计算机存储介质,所述计算机存储介质中存储有计算机可执 行指令,所述计算机可执行指令用于执行权利要求6至9任一项所述的防误触唤醒方法。
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