WO2022127477A1 - 控制智能播放终端方法、装置、存储介质和智能穿戴设备 - Google Patents

控制智能播放终端方法、装置、存储介质和智能穿戴设备 Download PDF

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WO2022127477A1
WO2022127477A1 PCT/CN2021/130991 CN2021130991W WO2022127477A1 WO 2022127477 A1 WO2022127477 A1 WO 2022127477A1 CN 2021130991 W CN2021130991 W CN 2021130991W WO 2022127477 A1 WO2022127477 A1 WO 2022127477A1
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Prior art keywords
sleep state
user
current
smart
wearable device
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PCT/CN2021/130991
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English (en)
French (fr)
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蔡金昌
姚瑞
朱琳玲
吕延岭
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展讯通信(上海)有限公司
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Publication of WO2022127477A1 publication Critical patent/WO2022127477A1/zh

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/026Measuring blood flow
    • 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
    • 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

Definitions

  • the present application relates to the technical field of controlling smart playback terminals, and in particular to a method, apparatus, storage medium and smart wearable device for controlling smart playback terminals.
  • the present application provides a method, device, storage medium and smart wearable device for controlling a smart playback terminal, which can enable users to dynamically adjust the audio and video playback of the smart playback terminal connected to the smart wearable device in different sleep states.
  • the state can solve the problem that the audio and video continue to be played during sleep because the audio and video are not turned off before going to bed, so that the user can get a healthy sleep and can also save the energy consumption of the device.
  • an embodiment of the present application provides a method for controlling a smart playback terminal, which is applied to a smart wearable device, where the smart wearable device includes a sensor, and the method includes:
  • the audio and video playback state and system power saving mode of the smart playback terminal connected to the smart wearable device are adjusted.
  • the acquiring sensor information collected by the sensor includes:
  • the physical sign sensing information includes the user's heart rate, body temperature, and blood flow rate at different time points every day
  • the motion sensing information includes motion time point, motion frequency, motion amplitude, and motion acceleration.
  • the method further includes:
  • the user's living habit information is generated.
  • determining the current sleep state of the user according to the sensor information and pre-established user living habit information including:
  • Whether the user is in a sleep state is determined according to the user's current heart rate, current body temperature and current blood flow rate obtained from the sensor information, as well as the corresponding sign threshold in the standard sleep state, and the corresponding sign valve in the standard sleep state Values include heart rate threshold, body temperature threshold, and blood flow threshold;
  • the degree of the user's sleep state is determined according to the current motion frequency, current motion amplitude, and current motion acceleration of the user obtained from the sensor information, and according to the sleep state
  • the degree determines the current sleep state of the user, and the sleep state degree includes lightness or depth.
  • the user's living habit information includes: exercise time point, exercise heart rate, exercise body temperature, exercise blood flow rate value range, exercise frequency, exercise amplitude, exercise acceleration value range, sleep duration, sleep heart rate, sleep body temperature, sleep blood Flow rate value range, motion frequency during sleep, motion amplitude during sleep, and sleep acceleration value range.
  • the method before the determining of the current sleep state of the user, the method further includes:
  • the user's current heart rate, current body temperature, current blood flow rate, current exercise frequency, current exercise amplitude, and current exercise acceleration value are compared with corresponding items in the user's living habit information to determine the user's current sleep state.
  • the current sleep state includes a non-sleep state, a light sleep state or a deep sleep state
  • the adjusting the audio and video playback status and system power saving mode of the smart playback terminal connected to the smart wearable device based on the current sleep status includes:
  • the audio and video playback state of the smart playback terminal connected to the smart wearable device remains unchanged, and the system power saving mode of the smart playback terminal is kept as the original system setting model;
  • the current sleep state includes a light sleep state
  • the current sleep state includes a deep sleep state
  • an embodiment of the present application provides a device for controlling an intelligent playback terminal, and the device includes:
  • an acquisition module for acquiring sensor information collected by the sensor
  • a determining module configured to determine the current sleep state of the user according to the sensor information and pre-established user living habit information
  • An adjustment module configured to adjust the audio and video playback status and system power saving mode of the smart playback terminal connected to the smart wearable device based on the current sleep status.
  • an embodiment of the present application provides a storage medium, where the storage medium includes a stored program, wherein when the program runs, the device where the storage medium is located is controlled to execute the above-mentioned method and system saving for controlling an intelligent playback terminal power mode.
  • an embodiment of the present application provides a smart wearable device, including a memory and a processor, where the memory is used to store information including program instructions, the processor is used to control the execution of the program instructions, and the program instructions are The processor loads and executes the steps of the above-mentioned method for controlling an intelligent playback terminal.
  • the sensor information collected by the sensor is acquired, the current sleep state of the user is determined according to the sensor information and the pre-established user living habit information, and based on the current sleep state, the
  • the audio and video playback status and system power saving mode of the smart playback terminal connected to the smart wearable device can enable users to dynamically adjust the audio and video playback status and system power-saving mode of the smart playback terminal connected to the smart wearable device in different sleep states. Power saving mode, so that users can get a healthy sleep while also saving the energy consumption of the device.
  • Fig. 1 is an architecture diagram of a system for controlling an intelligent playback terminal provided by an embodiment of the present application
  • FIG. 2 is a flowchart of a method for controlling an intelligent playback terminal provided by an embodiment of the present application
  • FIG. 3 is a schematic structural diagram of a device for controlling an intelligent playback terminal provided by an embodiment of the present application
  • FIG. 4 is a schematic diagram of a smart wearable device according to an embodiment of the present application.
  • the present application considers that the smart wearable device is relatively fixed during operation and should not be dropped, and can contact human skin. It is more accurate to collect the user's movement characteristics, heart rate and body temperature and other physical characteristics through smart wearable devices.
  • the sleep state can be accurately transmitted to the smart phone terminal, and the smart terminal can not only control the playback of video but also control the playback of audio and video. It can be used by users of bluetooth headsets, wired headsets and speak playback.
  • the system power saving mode of the wearable device and the playback terminal is dynamically adjusted with the change of the user's sleep state; it enables the user to get a healthy sleep and also saves the energy consumption of the device.
  • FIG. 1 is a structural diagram of a system for controlling an intelligent playback terminal provided by an embodiment of the present application. As shown in FIG. 1 , the system includes: a smart wearable device 100 and a smart playback terminal 200 .
  • the smart wearable device 100 includes a motion sensing module 101, a main controller module 102, a vital sign sensing module 103, an information storage module 104, and a wireless communication module 105.
  • the smart wearable device 100 may include a smart watch, a Bluetooth bracelet, etc.
  • smart wearable devices such as Bluetooth headsets, Bluetooth watches, and Bluetooth bracelets, the user's movement characteristics, body temperature, heart rate and other physical characteristics are monitored.
  • the motion sensing module 101 is used to collect motion sensing information, that is, the user's motion information, and transmit the collected motion sensing information to the main controller module 102 for processing and storage, wherein the motion collected by the module
  • the sensing information will be used as one of the main information for subsequent judgment of the user's sleep state.
  • the motion sensing information includes motion time, motion frequency, motion amplitude, motion acceleration, and the like.
  • the vital sign sensing module 103 is used to collect vital sign sensing information, that is, the vital sign information of the user, and transmit the collected vital sign sensing information to the main controller module 102 for processing and storage, wherein the vital sign sensing information collected by this module is It will be used as one of the main information for subsequent judgment of the user's sleep state.
  • the vital sign sensing information may include the user's heart rate, body temperature, and blood flow rate at different time points every day.
  • the sign sensing module 103 may be placed outside the smart wearable device 100 near the skin, so as to collect the user's sign information more accurately.
  • the information storage module 104 is used for storing vital sign sensing information and motion sensing information.
  • the main controller module 102 is configured to generate the user's living habit information and store the user's living habit information according to the physical sign sensing information and motion sensing information collected historically. Among them, the user's living habit information will be used as one of the main information for subsequent judgment of the user's sleep state, wherein the user's living habit information may include exercise time point, exercise heart rate, exercise body temperature, exercise blood flow value range, exercise frequency, exercise amplitude, exercise Acceleration value range, sleep duration, sleep heart rate, sleep body temperature, sleep blood flow value range, exercise frequency during sleep, motion amplitude during sleep, and sleep acceleration value range.
  • the way of generating the user's living habit information may include: when the user wears and uses the smart wearable device, starts to collect the vital sign sensing information and motion sensing information; obtains the living habit by analyzing and processing the collected vital sign sensing information and motion sensing information information value, and use the living habit information value as the user's living habit information. It should be noted that with the increase of the use time of the wearable device, it will become more accurate, and at the same time, it will be able to assist judgment more accurately.
  • the wireless communication module 105 is used to synchronize the information such as the audio and video playback status and volume on the smart playback terminal to the main controller module 102, send the control playback information determined by the main controller module 102 to the smart playback terminal 200, and send the user's current information to the smart playback terminal 200.
  • the sleep state is synchronized to the smart playback terminal 100.
  • the main controller module 102 is used to store the motion sensing module 101 and the vital sign sensing module 103 in the information storage module 104, generate user living habit information according to the historically collected vital sign sensing information and motion sensing information, and store the user Living habit information, and storing the living habit information in the information storage module 104 .
  • the main controller module 102 is further configured to determine the current sleep state of the user according to the sensor information and pre-established user living habit information, wherein the current sleep state may include: no sleep state, light sleep state or deep sleep state .
  • the wireless communication module 105 is further configured to acquire information such as audio and video playback status and volume of the smart playback terminal 100, so that the main controller module 102 adjusts the audio and video playback status according to the user's current sleep status.
  • the specific process of "the main controller module 102 adjusts the audio and video playback state according to the user's current sleep state” may include that the main controller module 102 determines whether it is necessary to control the audio and video according to the user's current sleep state and audio and video playback state. For example, keep the audio and video playback state unchanged when the user is not sleeping; generate a command to reduce the audio and video playback volume when the user is in a light sleep state; generate a stop audio and video playback command when the user is in a deep sleep state, and determine the The specific control command is then sent to the smart playback terminal 200 through the wireless communication module 105, and the playback control of audio and video is realized on the smart playback terminal 200.
  • the main controller module 102 is also used to synchronize the current sleep state of the user to the smart play terminal 200 through the wireless communication module 105, and dynamically adjust the system of the smart wearable device 100 and the smart play terminal 200 with the change of the user's sleep state Power saving mode.
  • the smart wearable device 100 and the smart playback terminal 200 can keep the system power saving mode as the original setting; when the user is in a light sleep state, the smart wearable device 100 and the smart playback terminal 200 can The system power saving mode is adjusted to the system power saving mode; when the user is in a deep sleep state, the smart wearable device 100 and the smart playback terminal 200 can adjust the system power saving mode to extreme power saving or Sleep mode.
  • the smart playback terminal 200 includes a smart device containing audio and video playback and wireless communication modules; common smart playback terminals 200 include smart phones, smart tablets, and smart Bluetooth speakers. Device for video playback and wireless communication module.
  • the smart playback terminal 200 is used for synchronizing the current audio and video playback status information to the smart wearable device. Receive the specific playback control command sent by the wearable device and execute the corresponding playback control command. According to the user's sleep state synchronized by the wearable smart device, the system power saving mode is dynamically adjusted.
  • the user can dynamically adjust the audio and video playback state in different sleep states, so that the user can get a healthy sleep while saving the energy consumption of the device.
  • the following is a control intelligence based on the above system. Play the terminal method and introduce:
  • FIG. 2 is a flowchart of a method for controlling an intelligent playback terminal provided by an embodiment of the application. As shown in FIG. 2 , the method is applied to a smart wearable device, and the smart wearable device includes a sensor,
  • the method includes:
  • Step 101 Acquire sensor information collected by the sensor.
  • the sensor information includes physical sign sensing information and motion sensing information, wherein the physical sign sensing information includes the user's heart rate, body temperature and blood flow rate at different time points every day, and the motion sensing information includes exercise time point, motion frequency, motion amplitude, and motion acceleration.
  • the sensors correspond to the motion sensing module 101 and the sign sensing module 103 in the above-mentioned system, so that motion sensing information (the user's motion information) and sign sensing information (the user's signs) can be collected through the sensors. information).
  • motion sensing information the user's motion information
  • sign sensing information the user's signs
  • the subsequent steps can be used as one of the main information of the user's sleep state.
  • Step 102 Determine the current sleep state of the user according to the sensor information and pre-established user living habit information.
  • the user's living habit information is used to indicate the user's behavior and habit information in daily life.
  • the user's living habit information may include exercise time point, exercise heart rate, exercise body temperature, exercise blood flow value range, exercise frequency, exercise amplitude , exercise acceleration value range, sleep duration, sleep heart rate, sleep body temperature, sleep blood flow value range, exercise frequency during sleep, exercise amplitude during sleep, and sleep acceleration value range. Therefore, before step 102, it is necessary to generate user living habit information according to the historically collected physical sign sensing information and motion sensing information.
  • the method of generating the user's living habit information may include: when the user wears and uses the smart wearable device, starts to collect the vital sign sensing information and motion sensing information; analyzes and processes the collected vital sign sensing information and motion sensing information until The living habit information value, and the living habit information value is used as the user's living habit information. It should be noted that with the increase of the use time of the wearable device, it will become more accurate, and at the same time, it will be able to assist judgment more accurately.
  • the user's living habit information can be stored through the information storage module in the system, so as to facilitate extraction and use each time the method is executed.
  • step 102 may specifically include:
  • Step 1021 Determine whether the user is in a sleep state according to the user's current heart rate, current body temperature, and current blood flow rate obtained from the sensor information, as well as the corresponding sign threshold value in a standard sleep state.
  • the physical sign sensing information in the sensor information includes the user's current heart rate, current body temperature and current blood flow rate, so the user's current heart rate, current body temperature and current blood flow rate can be obtained from the sensor information.
  • the thresholds of corresponding signs in the standard sleep state include a heart rate threshold, a body temperature threshold and a blood flow rate threshold.
  • the acquired current heart rate of the user when the acquired current heart rate of the user is greater than the heart rate threshold in a standard sleep state, it indicates that the user is not currently in a sleep state.
  • the acquired current body temperature and current blood flow rate of the user are within the range of the body temperature threshold and the blood flow rate threshold in the standard sleep state, it indicates that the current user is in the sleep state.
  • Step 1022 If it is determined that the user is in a non-sleep state, determine the current sleep state of the user as a non-sleep state.
  • Step 1023 If it is determined that the user is in a sleep state, determine the degree of the user's sleep state according to the current motion frequency, current motion amplitude, and current motion acceleration of the user obtained from the sensor information, and determine the degree of the user's sleep state according to the sensor information.
  • the sleep state degree determines the current sleep state of the user, and the sleep state degree includes lightness or depth.
  • the motion sensing information in the sensor information includes the user's current motion frequency, current motion amplitude, and current motion acceleration, so the user's current motion frequency, current motion amplitude, The current motion acceleration is performed, and a sleep state degree of the user is determined, wherein the sleep state degree includes lightness or depth, and the current sleep state of the user is determined according to the sleep state degree.
  • the acquired current exercise frequency of the user is less than the preset first preset range value, it indicates that the user is in a deep sleep state, and when the acquired current exercise frequency of the user is greater than the preset first preset range value and less than At the second preset range value, it indicates that the user is in a light sleep state.
  • the current exercise frequency when the user is in a deep sleep state, the current exercise frequency is low, the current exercise amplitude is small, and the current exercise acceleration is small, and when the user is in a light sleep state, compared with the deep sleep state, the current exercise frequency is more, and the current movement acceleration is small.
  • the larger the motion range the larger the current motion acceleration.
  • the method further includes: comparing the user's current heart rate, current body temperature, current blood flow rate, current exercise frequency, The current motion amplitude and the current motion acceleration value are respectively compared with the corresponding items in the user's living habit information to determine the current sleep state of the user.
  • the user's living habits information includes: exercise time point, exercise heart rate, exercise body temperature, exercise blood flow rate value range, exercise frequency, exercise amplitude, exercise acceleration value range, sleep duration, sleep heart rate, sleep body temperature, sleep Blood flow rate value range, exercise frequency during sleep, motion amplitude during sleep, and sleep acceleration value range.
  • the method of determining the user's current sleep state first, according to the user's current heart rate, current body temperature and current blood flow rate obtained from the sensor information, as well as the corresponding sign thresholds in the standard sleep state, determine the user's current sleep state.
  • the acceleration values are compared with the corresponding items in the user's living habit information to determine the current sleep state of the user, that is, to obtain a final accurate and effective sleep state determination, which can further ensure the accuracy of the determined user's current sleep state. sex.
  • Step 103 Based on the current sleep state, adjust the audio and video playback state and system power saving mode of the smart playback terminal connected to the smart wearable device.
  • the current sleep state includes a non-sleep state, a light sleep state or a deep sleep state.
  • the smart wearable device obtains the audio and video playback state of the smart playback terminal through wireless technologies such as Bluetooth, so as to subsequently adjust the audio and video playback status and System power saving mode.
  • step 103 may specifically include:
  • Step 1031 When the current sleep state includes a non-sleep state, the audio and video playback state of the smart playback terminal connected to the smart wearable device remains unchanged, and the system power saving mode of the smart playback terminal is kept as system Original setting mode.
  • the audio and video playback state of the smart playback terminal connected to the smart wearable device can be kept unchanged, that is, the audio and video continue to be played, and the audio and video volume adopts the system default volume .
  • the smart wearable device can obtain a command to control playback by combining the user's current sleep state and the audio and video playback state of the smart playback terminal, and then send the command to control playback to the smart playback terminal, so that the smart wearable device Adjust accordingly according to the command to control playback.
  • Step 1032 When the current sleep state includes a light sleep state, reduce the volume of the audio and video playback state of the smart playback terminal connected to the smart wearable device, and adjust the system power saving mode of the smart playback terminal to system Power saving mode.
  • the smart wearable device can obtain a command to control playback by combining the user's current sleep state and the audio and video playback state of the smart playback terminal, and then send the command to control playback to the smart playback terminal, so that the smart wearable device Adjust accordingly according to the command to control playback. For example, taking the command to control playback including keep playback and lower volume as an example, when the user is in a light sleep state, the smart wearable device sends the control command of "keep playback, lower volume" to the smart playback terminal, so that the smart playback The terminal can lower its own audio and video to continue playing based on the control instruction of "keep playing, lower the volume", and lower the volume of its own audio and video playback state.
  • Step 1033 When the current sleep state includes a deep sleep state, adjust the audio and video playback state of the smart playback terminal connected to the smart wearable device to stop playing, and adjust the system power saving mode of the smart playback terminal. For extreme system power saving mode or Sleep mode.
  • the smart wearable device when the user is in a deep sleep state, sends the control command of "stop playback" to the smart playback terminal, so that the smart playback terminal can Based on the "stop playing" control instruction, it stops its own audio and video playback.
  • the audio and video of the smart playback terminal connected to the smart wearable device in addition to adjusting the audio and video of the smart playback terminal connected to the smart wearable device based on the determination of the current sleep state of the user, it can also be determined based on the current sleep state of the user. status, adjust the system power saving mode of smart wearable devices and smart playback terminals.
  • the system power saving modes of the smart wearable device and the smart playback terminal are dynamically adjusted as the user's sleep state changes. For example, when the user is not sleeping, the smart wearable device and the smart playback terminal can keep the system power saving mode as the original setting; when the user is in a light sleep state, the smart wearable device and the smart playback terminal can keep the system power saving mode Adjust to the system power saving mode; when the user is in a deep sleep state, the smart wearable device 100 and the smart playback terminal 200 can adjust the system power saving mode to the extreme system power saving mode or the Sleep mode.
  • the sensor information collected by the sensor is acquired, the current sleep state of the user is determined according to the sensor information and the pre-established user living habit information, and based on the current sleep state, the
  • the audio and video playback status and system power saving mode of the smart playback terminal connected to the smart wearable device can enable users to dynamically adjust the audio and video playback status and system power-saving mode of the smart playback terminal connected to the smart wearable device in different sleep states. Power saving mode, so that users can get a healthy sleep while also saving the energy consumption of the device.
  • FIG. 3 is a schematic structural diagram of a device for controlling an intelligent playback terminal provided by an embodiment of the present application. As shown in FIG. 3 , the device includes:
  • an acquisition module configured to acquire sensor information collected by the sensor
  • a determination module 12 configured to determine the current sleep state of the user according to the sensor information and pre-established user living habit information
  • the adjustment module 13 is configured to adjust the audio and video playback state and system power saving mode of the smart playback terminal connected to the smart wearable device based on the current sleep state.
  • the acquisition module 11 is specifically configured to acquire the physical sign sensing information and motion sensing information collected by the sensor, where the physical sign sensing information includes the user's heart rate, body temperature, and blood flow rate at different time points every day,
  • the motion sensing information includes motion time point, motion frequency, motion amplitude, and motion acceleration.
  • the apparatus further includes: a generating module 14 .
  • the generating module 14 is configured to generate user living habit information according to the historically collected physical sign sensing information and motion sensing information.
  • the determining module 12 is specifically configured to determine the user according to the user's current heart rate, current body temperature, and current blood flow rate obtained from the sensor information, as well as the corresponding sign thresholds in a standard sleep state. Whether the user is in a sleep state, the corresponding sign thresholds in the standard sleep state include a heart rate threshold, a body temperature threshold and a blood flow rate threshold; if it is determined that the user is in a non-sleep state, the current sleep state of the user is determined as a non-sleep state ; If it is determined that the user is in a sleep state, determine the degree of sleep state of the user according to the acquisition of the user's current motion frequency, current motion amplitude, current motion acceleration and other values from the sensor information. The sleep state degree determines the current sleep state of the user, and the sleep state degree includes lightness or depth.
  • the user's living habit information includes: exercise time point, exercise heart rate, exercise body temperature, exercise blood flow rate value range, exercise frequency, exercise amplitude, exercise acceleration value range, sleep duration, sleep heart rate, sleep body temperature, The range of blood flow velocity values during sleep, the frequency of motion during sleep, the amplitude of motion during sleep, and the range of sleep acceleration values.
  • the determining module 12 is specifically configured to compare the user's current heart rate, current body temperature, current blood flow rate, current exercise frequency, current exercise amplitude, and current exercise acceleration value with the user's living habit information, respectively. The corresponding items are compared to determine the current sleep state of the user.
  • the current sleep state includes a non-sleep state, a light sleep state, or a deep sleep state
  • the adjustment module 13 is specifically configured to connect with the smart wearable device when the current sleep state includes a non-sleep state
  • the audio and video playback state of the smart playback terminal remains unchanged, and the system power-saving mode of the smart playback terminal is kept as the system's original setting mode;
  • the current sleep state includes a light sleep state, lowering and The audio and video playback state volume of the smart playback terminal connected to the smart wearable device, and the system power saving mode of the smart playback terminal is adjusted to the system power saving mode;
  • the current sleep state includes a deep sleep state
  • the The audio and video playback state of the smart playback terminal connected to the smart wearable device is adjusted to stop playback, and the system power saving mode of the smart playback terminal is adjusted to the extreme system power saving mode or the Sleep mode.
  • the sensor information collected by the sensor is acquired, the current sleep state of the user is determined according to the sensor information and the pre-established user living habit information, and based on the current sleep state, the
  • the audio and video playback status and system power saving mode of the smart playback terminal connected to the smart wearable device can enable users to dynamically adjust the audio and video playback status and system power-saving mode of the smart playback terminal connected to the smart wearable device in different sleep states. Power saving mode, so that users can get a healthy sleep while also saving the energy consumption of the device.
  • An embodiment of the present application provides a storage medium, where the storage medium includes a stored program, wherein, when the program runs, the device where the storage medium is located is controlled to perform the steps of the above embodiment of the method for controlling an intelligent playback terminal.
  • the storage medium includes a stored program
  • the device where the storage medium is located is controlled to perform the steps of the above embodiment of the method for controlling an intelligent playback terminal.
  • An embodiment of the present application provides a smart wearable device, including a memory and a processor, where the memory is used to store information including program instructions, the processor is used to control the execution of the program instructions, and the above-mentioned control intelligence is realized when the program instructions are loaded and executed by the processor Play the steps of the terminal method.
  • a smart wearable device including a memory and a processor, where the memory is used to store information including program instructions, the processor is used to control the execution of the program instructions, and the above-mentioned control intelligence is realized when the program instructions are loaded and executed by the processor Play the steps of the terminal method.
  • FIG. 4 is a schematic diagram of a smart wearable device according to an embodiment of the present application.
  • the smart wearable device 4 of this embodiment includes: a processor 41 , a memory 42 , and a computer program 43 stored in the memory 42 and executable on the processor 41 , and the computer program 43 is executed by the processor 41
  • the method for controlling the intelligent playback terminal in the embodiment is implemented at the same time, and in order to avoid repetition, it will not be repeated here.
  • the computer program is executed by the processor 41, the functions applied to control each model/unit in the intelligent playback terminal device in the embodiment are realized. To avoid repetition, they will not be repeated here.
  • the smart wearable device 4 includes, but is not limited to, a processor 41 and a memory 42 .
  • FIG. 4 is only an example of the smart wearable device 4, and does not constitute a limitation on the smart wearable device 4. It may include more or less components than the one shown, or combine some components, or different components, for example, the smart wearable device 4 may also include input and output devices, network access devices, buses, and the like.
  • the so-called processor 41 may be a central processing unit (Central Processing Unit, CPU), or other general-purpose processors, digital signal processors (Digital Signal Processor, DSP), application specific integrated circuits (Application Specific Integrated Circuit, ASIC), Field-Programmable Gate Array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
  • a general purpose processor may be a microprocessor or the processor may be any conventional processor or the like.
  • the memory 42 may be an internal storage unit of the smart wearable device 4 , such as a hard disk or a memory of the smart wearable device 4 .
  • the memory 42 can also be an external storage device of the smart wearable device 4, such as a plug-in hard disk equipped on the smart wearable device 4, a smart memory card (Smart Media Card, SMC), a secure digital (Secure Digital, SD) card, flash memory card (Flash Card) etc.
  • the memory 42 may also include both an internal storage unit of the smart wearable device 4 and an external storage device.
  • the memory 42 is used to store computer programs and other programs and data required by the smart wearable device 4 .
  • the memory 42 may also be used to temporarily store data that has been or will be output.
  • the disclosed system, apparatus and method may be implemented in other manners.
  • the apparatus embodiments described above are only illustrative.
  • the division of units is only a logical function division.
  • multiple units or components may be combined or may be Integration into another system, or some features can be ignored, or not implemented.
  • the shown or discussed mutual coupling or direct coupling or communication connection may be through some interfaces, indirect coupling or communication connection of devices or units, and may be in electrical, mechanical or other forms.
  • Units described as separate components may or may not be physically separated, and components shown as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution in this embodiment.
  • each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically alone, or two or more units may be integrated into one unit.
  • the above-mentioned integrated unit may be implemented in the form of hardware, or may be implemented in the form of hardware plus software functional units.
  • the above-mentioned integrated units implemented in the form of software functional units can be stored in a computer-readable storage medium.
  • the above-mentioned software functional unit is stored in a storage medium, and includes several instructions to make a computer device (which may be a personal computer, a server, or a network device, etc.) or a processor (Processor) to execute the methods described in the various embodiments of the present application. some steps.
  • the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), magnetic disk or optical disk and other media that can store program codes .

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Abstract

本申请实施例提供的一种控制智能播放终端方法、装置、存储介质和智能穿戴设备的技术方案中,获取所述传感器采集的传感器信息,根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,能够实现用户在不同睡眠状态下,动态调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,从而使得用户得到健康睡眠的同时也可以节省设备的能耗。

Description

控制智能播放终端方法、装置、存储介质和智能穿戴设备 技术领域
本申请涉及控制智能播放终端技术领域,具体地涉及一种控制智能播放终端方法、装置、存储介质和智能穿戴设备。
背景技术
在相关技术中,通常是采用目前市面上部分手机支持通过面部检测来实现视频的播放与暂停,或者通过蓝牙耳机来检测判断并进行播放的控制,然而这种方式针对于在用户进入睡眠状态后,则很难再对音视频播放状态进行控制。
发明内容
有鉴于此,本申请提供一种控制智能播放终端方法、装置、存储介质和智能穿戴设备,能够实现用户在不同睡眠状态下,动态调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态,能够解决解决睡前因未关闭播放的音视频而导致睡眠中音视频继续放的问题,从而使得用户得到健康睡眠的同时也可以节省设备的能耗。
一方面,本申请实施例提供了一种控制智能播放终端方法,应用于智能穿戴设备,所述智能穿戴设备包括传感器,所述方法包括:
获取所述传感器采集的传感器信息;
根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态;
基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
可选地,所述获取所述传感器采集的传感器信息,包括:
获取所述传感器获采集的体征传感信息和运动传感信息,所述体征传感信息包括每天不同时间点内用户的心率、体温以及血液流速,所述运动传感信息包括运动时间点、运动频率、运动幅度以及运动加速度。
可选地,在所述根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态之前,还包括:
根据历史采集的体征传感信息和运动传感信息,生成用户生活习惯信息。
可选地,所述根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,包括:
根据从所述传感器信息中获取的用户的当前心率、当前体温和当前血液流速,以及标准睡眠状态下对应体征阀值,确定出所述用户是否处于睡眠状态,所述标准睡眠状态下对应体征阀值包括心率阈值、体温阈值以及血液流速阈值;
若确定出所述用户处于未睡眠状态,将所述用户的当前睡眠状态确定为未睡眠状态;
若确定出所述用户处于睡眠状态,根据从所述传感器信息中获取所述用户的当前运动频率、当前运动幅度、当前运动加速度,确定出所述用户的睡眠状态程度,并根据所述睡眠状态程度确定出所述用户的当前睡眠状态,所述睡眠状态程度包括浅度或者深度。
可选地,所述用户生活习惯信息包括:运动时间点,运动心率、运动体温、运动血液流速值范围、运动频率、运动幅度、运动加速度值范围、睡眠时长、睡眠心率、睡眠体温、睡眠血液流速值范围、睡眠时的运动频率、睡眠时的运动幅度以及睡眠加速度值范围。
可选地,在所述确定出用户的当前睡眠状态之前,还包括:
将所述用户的当前心率、当前体温、当前血液流速、当前运动频率、当前运动幅度以及当前运动加速度值分别与所述用户生活习惯信息中对应项进行对比,以确定出用户的当前睡眠状态。
可选地,所述当前睡眠状态包括未睡眠状态、浅度睡眠状态或者深度睡觉状态;
所述基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,包括:
当所述当前睡眠状态包括非睡眠状态时,与所述智能穿戴设备连接的智能播放终端的音视频播放状态保持不变,并将所述智能播放终端的系统省电模式保持为系统原定设置模式;
当所述当前睡眠状态包括浅度睡眠状态时,降低与所述智能穿戴设备连接的智能播放终端的音视频播放状态音量,并将所述智能播放终端的系统省电模式调整为系统省电模式;
当所述当前睡眠状态包括深度睡眠状态时,将与所述智能穿戴设备连接的智能播放终端的音视频播放状态调整为停止播放,并将所述智能播放终端的系统省电模式调整为极度系统省电模式或Sleep模式。
另一方面,本申请实施例提供了一种控制智能播放终端装置,所述装置包括:
获取模块,用于获取所述传感器采集的传感器信息;
确定模块,用于根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态;
调节模块,用于基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
另一方面,本申请实施例提供了一种存储介质,所述存储介质包括存储的程序,其中,在所述程序运行时控制所述存储介质所在设备执行上述的控制智能播放终端方法和系统省电模式。
另一方面,本申请实施例提供了一种智能穿戴设备,包括存储器和处理器,所述存储器用于存储包括程序指令的信息,所述处理器用于控制程序指令的执行,所述程序指令被处理器加载并执行上述的控制智能播放终端方法的步骤。
本申请实施例提供的技术方案中,获取所述传感器采集的传感器信息,根据所述 传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,能够实现用户在不同睡眠状态下,动态调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,从而使得用户得到健康睡眠的同时也可以节省设备的能耗。
附图说明
图1是本申请一实施例所提供的一种控制智能播放终端系统的架构图;
图2是本申请一实施例所提供的一种控制智能播放终端方法的流程图;
图3是本申请一实施例所提供的一种控制智能播放终端装置的结构示意图;
图4为本申请一实施例提供的一种智能穿戴设备的示意图。
具体实施方式
为了更好的理解本申请的技术方案,下面结合附图对本申请实施例进行详细描述。
应当明确,所描述的实施例仅仅是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其它实施例,都属于本申请保护的范围。
在本申请实施例中使用的术语是仅仅出于描述特定实施例的目的,而非旨在限制本申请。在本申请实施例和所附权利要求书中所使用的单数形式的“一种”、“所述”和“该”也旨在包括多数形式,除非上下文清楚地表示其他含义。
应当理解,本文中使用的术语“和/或”仅仅是一种描述关联对象的关联关系,表示可以存在三种关系,例如,甲和/或乙,可以表示:单独存在甲,同时存在甲和乙,单独存在乙这三种情况。另外,本文中字符“/”,一般表示前后关联对象是一种“或”的关系。
针对上述现有技术的缺点,本申请考虑到智能穿戴设备在运行中相对固定不宜掉落,且能够接触人体皮肤。通过智能穿戴设备收集用户的运动特征和心率体温等身体特征比较准确。通过成熟的无线技术可以将睡眠状态准确传输到智能手机终端,智能终端不仅可以控制视频的播放还可以控制音视频的播放。对蓝牙耳机、有线耳机和speak播放的用户均可以使用。随着用户的睡眠状态变化动态调整穿戴设备和播放终端的系统省电模式;能够让用户得到健康睡眠的同时也可以节省设备的能耗。
图1为本申请一实施例提供的一种控制智能播放终端系统的架构图,如图1所示,该系统包括:智能穿戴设备100以及智能播放终端200。
其中,智能穿戴设备100包括运动传感模块101、主控制器模块102、体征传感模块103、信息存储模块104、无线通信模块105,智能穿戴设备100可包括智能手表、蓝牙手环等,通过蓝牙耳机、蓝牙手表、蓝牙手环等智能穿戴设备中监听用户的运动特征、体温心率等身体特征。
具体地,运动传感模块101用于收集运动传感信息,即用户的运动信息,将收集到的运动传感信息传给主控制器模块102进行处理和存储,其中,该模块所收集的运 动传感信息将作为后续判断用户睡眠状态的主要信息之一。其中,运动传感信息包括运动的时间点、运动频率、运动幅度以及运动加速度等。
体征传感模块103用于收集体征传感信息,即用户的体征信息,将收集到的体征传感信息传给主控制器模块102进行处理和存储,其中,该模块所收集的体征传感信息将作为后续判断用户睡眠状态的主要信息之一。其中,体征传感信息可包括每天不同时间点内用户的心率、体温以及血液流速等。
在实际应用中,可将体征传感模块103置于智能穿戴设备100外靠近皮肤处,以便于更准确的收集用户的体征信息。
信息存储模块104用于存储体征传感信息和运动传感信息。
主控制器模块102用于根据历史采集的体征传感信息和运动传感信息,生成用户生活习惯信息,并存储用户生活习惯信息。其中,用户生活习惯信息将作为后续判断用户睡眠状态的主要信息之一,其中,用户生活习惯信息可包括运动时间点,运动心率、运动体温、运动血液流速值范围、运动频率、运动幅度、运动加速度值范围、睡眠时长、睡眠心率、睡眠体温、睡眠血液流速值范围、睡眠时的运动频率、睡眠时的运动幅度以及睡眠加速度值范围。
生成用户生活习惯信息的方式可包括:用户穿戴并使用该智能穿戴设备时开始收集体征传感信息和运动传感信息;通过对收集体征传感信息和运动传感信息进行分析、处理得到生活习惯信息值,并将该生活习惯信息值作为用户生活习惯信息。需要说明的是,随着穿戴设备的使用时间的增长将变得更加准确,同时也能更精准的辅助判断。
无线通信模块105用于将智能播放终端上音视频的播放状态和音量等信息同步到主控制器模块102,将主控制器模块102判定的控制播放信息发送到智能播放终端200,并将用户当前的睡眠状态同步到智能播放终端100。
主控制器模块102用于将运动传感模块101、体征传感模块103存储到信息存储模块104中,根据历史采集的体征传感信息和运动传感信息,生成用户生活习惯信息,并存储用户生活习惯信息,并将生活习惯信息存储到信息存储模块104。
主控制器模块102还用于根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,其中,当前睡眠状态可包括:未睡眠状态、浅度睡眠状态或者深度睡眠状态。
无线通信模块105还用于获取智能播放终端100的音视频播放状态和音量等信息,以使得主控制器模块102根据用户的当前睡眠状态,对音视频播放状态进行调整。
其中,“主控制器模块102根据用户的当前睡眠状态,对音视频播放状态进行调整”的具体过程可包括,主控制器模块102通过用户的当前睡眠状态和音视频播放状态判定是否需要控制音视频播,例如,用户处于未睡眠状态时保持音视频播放状态不变;用户处于浅度睡眠状态时生成降低音视频播放音量的命令;用户处于深度睡眠状态时生成停止音视频播放命令,并将判定后具体的控制命令通过无线通信模块105发送到智能播放终端200,并在智能播放终端200上实现对音视频的播放控制。
进一步地,主控制器模块102还用于将用户的当前睡眠状态通过无线通信模块105同步到智能播放终端200,并随着用户睡眠状态的变化动态调整智能穿戴设备100和智能播放终端200的系统省电模式。例如,当用户处于未睡眠状态时,智能穿戴设备 100和智能播放终端200可以将系统省电模式保持为原定设置;当用户处于浅睡眠状态时,智能穿戴设备100和智能播放终端200可以将系统省电模式调整到系统省电模式;当用户处于深度睡眠状态时,智能穿戴设备100和智能播放终端200可以将系统省电模式调整到极度省电或Sleep模式。
智能播放终端200包括含有音视频的播放和无线通信模块的智能设备;常见的智能播放终端200包括智能手机、智能平板、智能蓝牙音箱,具体的智能播放终端不限于此,也可以是集成了音视频播放和无线通信模块的装置。
智能播放终端200用于将当前音视频播放状态信息同步到智能穿戴设备端。接收穿戴设备发送过来具体的播放控制命令并执行对应的播放控制命令。根据穿戴智能设备同步得到的用户睡眠状态并动态调整系统省电模式。
基于上述控制智能播放终端系统,能够实现用户在不同睡眠状态下,动态调整音视频播放状态,从而使得用户得到健康睡眠的同时也可以节省设备的能耗,下列对基于上述系统的一种控制智能播放终端方法,进行介绍:
图2为本申请一实施例提供的一种控制智能播放终端方法的流程图,如图2所示,该方法应用于智能穿戴设备,所述智能穿戴设备包括传感器,
所述方法包括:
步骤101、获取所述传感器采集的传感器信息。
在该步骤中,传感器信息包括体征传感信息和运动传感信息,其中,所述体征传感信息包括每天不同时间点内用户的心率、体温以及血液流速,所述运动传感信息包括运动时间点、运动频率、运动幅度以及运动加速度。
本申请实施例中,传感器对应于上述系统中的运动传感模块101和体征传感模块103,从而通过传感器,能够采集运动传感信息(用户的运动信息)和体征传感信息(用户的体征信息)。通过采集传感器信息,以便后续步骤作为用户睡眠状态的主要信息之一。
步骤102、根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态。
在该步骤中,用户生活习惯信息用于指示用户日常生活中的行为习惯信息,例如,用户生活习惯信息可包括运动时间点,运动心率、运动体温、运动血液流速值范围、运动频率、运动幅度、运动加速度值范围、睡眠时长、睡眠心率、睡眠体温、睡眠血液流速值范围、睡眠时的运动频率、睡眠时的运动幅度以及睡眠加速度值范围。因此,需要在步骤102之前,需要根据历史采集的体征传感信息和运动传感信息,生成用户生活习惯信息。其中,生成用户生活习惯信息的方式可包括:用户穿戴并使用该智能穿戴设备时开始收集体征传感信息和运动传感信息;通过对收集体征传感信息和运动传感信息进行分析、处理等到生活习惯信息值,并将该生活习惯信息值作为用户生活习惯信息。需要说明的是,随着穿戴设备的使用时间的增长将变得更加准确,同时也能更精准的辅助判断。其中,可通过上述系统中的信息存储模块存储该用户生活习惯信息,便于每次执行该方法时提取使用。
本申请实施例中,步骤102可具体包括:
步骤1021、根据从所述传感器信息中获取的用户的当前心率、当前体温和当前血 液流速,以及标准睡眠状态下对应体征阀值,确定出所述用户是否处于睡眠状态。
在该步骤中,传感器信息中的体征传感信息中包括用户的当前心率、当前体温和当前血液流速,因此可从所述传感器信息中获取的用户的当前心率、当前体温和当前血液流速。所述标准睡眠状态下对应体征阀值包括心率阈值、体温阈值以及血液流速阈值。
本申请实施例中,例如,当获取的用户的当前心率要大于标准睡眠状态下心率阈值,则表明用户当前未处于睡眠状态。例如,当获取的用户的当前体温和当前血液流速处于标准睡眠状态下体温阈值以及血液流速阈值范围内,则表明当前用户处于睡眠状态。
步骤1022、若确定出所述用户处于未睡眠状态,将所述用户的当前睡眠状态确定为未睡眠状态。步骤1023、若确定出所述用户处于睡眠状态,根据从所述传感器信息中获取所述用户的当前运动频率、当前运动幅度、当前运动加速度,确定出所述用户的睡眠状态程度,并根据所述睡眠状态程度确定出所述用户的当前睡眠状态,所述睡眠状态程度包括浅度或者深度。
在该步骤中,传感器信息中的运动传感信息中包括用户的当前运动频率、当前运动幅度、当前运动加速度,因此可从所述传感器信息中获取所述用户的当前运动频率、当前运动幅度、当前运动加速度,并确定出所述用户的睡眠状态程度,其中,所述睡眠状态程度包括浅度或者深度,再根据所述睡眠状态程度确定出所述用户的当前睡眠状态。
本申请实施例中,例如,当确定出所述用户处于睡眠状态之后,还需要确定用户处于哪种程度的睡眠状态,以便根据不同程度的睡眠状态,调整音视频播放状态。例如,当获取所述用户的当前运动频率小于预设第一预设范围值时,表明用户处于深度睡眠状态,当获取所述用户的当前运动频率大于预设第一预设范围值,且小于第二预设范围值时,表明用户处于浅度睡眠状态。可理解为,当用户处于深度睡眠状态时,当前运动频率少、当前运动幅度小,当前运动加速度小,而用户处于浅度睡眠状态时,相对深度睡眠状态而言,当前运动频率较多、当前运动幅度较大,当前运动加速度较大。
进一步地,本申请实施例中,在步骤1021-步骤1023之后,即在确定出用户的当前睡眠状态之前,还包括:将所述用户的当前心率、当前体温、当前血液流速、当前运动频率、当前运动幅度以及当前运动加速度值分别与所述用户生活习惯信息中对应项进行对比,以确定出用户的当前睡眠状态。
在该步骤中,所述用户生活习惯信息包括:运动时间点,运动心率、运动体温、运动血液流速值范围、运动频率、运动幅度、运动加速度值范围、睡眠时长、睡眠心率、睡眠体温、睡眠血液流速值范围、睡眠时的运动频率、睡眠时的运动幅度以及睡眠加速度值范围。
本申请实施例中,通过再次将将所述用户的当前心率、当前体温、当前血液流速、当前运动频率、当前运动幅度以及当前运动加速度值分别与所述用户生活习惯信息中对应项进行对比,进一步确保了所确定用户的当前睡眠状态的准确性。
也就是说,确定出用户的当前睡眠状态的方式:首先根据从所述传感器信息中获 取的用户的当前心率、当前体温和当前血液流速,以及标准睡眠状态下对应体征阀值,确定出所述用户是否处于睡眠状态(包括未睡眠或者睡眠);其次,根据从所述传感器信息中获取所述用户的当前运动频率、当前运动幅度、当前运动加速度,确定出所述用户的睡眠状态程度,并根据所述睡眠状态程度确定出所述用户的当前睡眠状态(浅度睡眠或者深度睡眠);最后将所述用户的当前心率、当前体温、当前血液流速、当前运动频率、当前运动幅度以及当前运动加速度值分别与所述用户生活习惯信息中对应项进行对比,以确定出用户的当前睡眠状态,即得到最终的准确有效的睡眠状态判定,从而能够进一步确保了所确定用户的当前睡眠状态的准确性。
步骤103、基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
在该步骤中,所述当前睡眠状态包括未睡眠状态、浅度睡眠状态或者深度睡觉状态。在步骤103之前,智能穿戴设备通过蓝牙等无线技术获取智能播放终端的音视频播放状态,以便后续基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
本申请实施例中,步骤103可具体包括:
步骤1031、当所述当前睡眠状态包括非睡眠状态时,与所述智能穿戴设备连接的智能播放终端的音视频播放状态保持不变,并将所述智能播放终端的系统省电模式保持为系统原定设置模式。
在该步骤中,当用户处于非睡眠状态时,可保持与所述智能穿戴设备连接的智能播放终端的音视频播放状态保持不变,即保持音视频继续播放,以及音视频音量采用系统默认音量。
在实际应用中,智能穿戴设备可通过结合用户的当前睡眠状态和智能播放终端的音视频播放状态得到控制播放的命令,再将所述控制播放的命令发送至智能播放终端,以使得智能穿戴设备根据该控制播放的命令进行相应调节。
步骤1032、当所述当前睡眠状态包括浅度睡眠状态时,降低与所述智能穿戴设备连接的智能播放终端的音视频播放状态音量,并将所述智能播放终端的系统省电模式调整为系统省电模式。
在该步骤中,当用户处于浅度睡眠状态时,保持音视频继续播放,但是需要降低与所述智能穿戴设备连接的智能播放终端的音视频播放状态音量,避免影响到用户休息。
在实际应用中,智能穿戴设备可通过结合用户的当前睡眠状态和智能播放终端的音视频播放状态得到控制播放的命令,再将所述控制播放的命令发送至智能播放终端,以使得智能穿戴设备根据该控制播放的命令进行相应调节。例如,以控制播放的命令包括保持播放,降低音量为例,当用户处于浅度睡眠状态时,智能穿戴设备将“保持播放,降低音量”的控制指令下发至智能播放终端,以使得智能播放终端能够基于该“保持播放,降低音量”的控制指令降低自身保持音视频继续播放,并降低自身音视频播放状态音量。
步骤1033、当所述当前睡眠状态包括深度睡眠状态时,将与所述智能穿戴设备连接的智能播放终端的音视频播放状态调整为停止播放,并将所述智能播放终端的系统 省电模式调整为极度系统省电模式或Sleep模式。
在该步骤中,当用户处于深度睡眠状态时,可停止播放音视频,避免影响到用户休息。
在实际应用中,例如,以控制播放的命令包括停止播放为例,当用户处于深度睡眠状态时,智能穿戴设备将“停止播放”的控制指令下发至智能播放终端,以使得智能播放终端能够基于该“停止播放”的控制指令停止自身音视频播放。
同理,本申请实施例中,除了能够基于确定出用户的当前睡眠状态时,对与所述智能穿戴设备连接的智能播放终端的音视频进行调整的同时,还能够基于确定出用户的当前睡眠状态,调整智能穿戴设备以及智能播放终端的系统省电模式。
作为一种可选方案在步骤1031-步骤1033中,随着用户睡眠状态的变化动态调整智能穿戴设备和智能播放终端的系统省电模式。例如,当用户处于未睡眠状态时,智能穿戴设备和智能播放终端可以将系统省电模式保持为原定设置;当用户处于浅睡眠状态时,智能穿戴设备和智能播放终端可以将系统省电模式调整到系统省电模式;当用户处于深度睡眠状态时,智能穿戴设备100和智能播放终端200可以将系统省电模式调整到极度系统省电模式或Sleep模式。
通过上述方式,能够在智能穿戴设备和智能播放终端同步睡眠状态,在浅睡眠中减小音视频播放音量,在深睡中停止音视频播放,并根据睡眠状态动态调整两个系统的系统省电模式,节省能耗的同时保障用户的睡眠健康。
本申请实施例提供的技术方案中,获取所述传感器采集的传感器信息,根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,能够实现用户在不同睡眠状态下,动态调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,从而使得用户得到健康睡眠的同时也可以节省设备的能耗。
图3是本申请一实施例所提供的一种控制智能播放终端装置的结构示意图,如图3所示,所述装置包括:
获取模块11,用于获取所述传感器采集的传感器信息;
确定模块12,用于根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态;
调节模块13,用于基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
本申请实施例中,获取模块11具体用于获取所述传感器获采集的体征传感信息和运动传感信息,所述体征传感信息包括每天不同时间点内用户的心率、体温以及血液流速,所述运动传感信息包括运动时间点、运动频率、运动幅度以及运动加速度。
本申请实施例中,该装置还包括:生成模块14。
生成模块14,用于根据历史采集的体征传感信息和运动传感信息,生成用户生活习惯信息。
本申请实施例中,所述确定模块12具体用于根据从所述传感器信息中获取的用户的当前心率、当前体温和当前血液流速,以及标准睡眠状态下对应体征阀值,确定出 所述用户是否处于睡眠状态,所述标准睡眠状态下对应体征阀值包括心率阈值、体温阈值以及血液流速阈值;若确定出所述用户处于未睡眠状态,将所述用户的当前睡眠状态确定为未睡眠状态;若确定出所述用户处于睡眠状态,根据从所述传感器信息中获取所述用户的当前运动频率、当前运动幅度、当前运动加速度等值,确定出所述用户的睡眠状态程度,并根据所述睡眠状态程度确定出所述用户的当前睡眠状态,所述睡眠状态程度包括浅度或者深度。
本申请实施例中,所述用户生活习惯信息包括:运动时间点,运动心率、运动体温、运动血液流速值范围、运动频率、运动幅度、运动加速度值范围、睡眠时长、睡眠心率、睡眠体温、睡眠血液流速值范围、睡眠时的运动频率、睡眠时的运动幅度以及睡眠加速度值范围。
本申请实施例中,所述确定模块12具体用于将所述用户的当前心率、当前体温、当前血液流速、当前运动频率、当前运动幅度以及当前运动加速度值分别与所述用户生活习惯信息中对应项进行对比,以确定出用户的当前睡眠状态。
本申请实施例中,所述当前睡眠状态包括未睡眠状态、浅度睡眠状态或者深度睡觉状态;调节模块13具体用于当所述当前睡眠状态包括非睡眠状态时,与所述智能穿戴设备连接的智能播放终端的音视频播放状态保持不变,并将所述智能播放终端的系统省电模式保持为系统原定设置模式;当所述当前睡眠状态包括浅度睡眠状态时,降低与所述智能穿戴设备连接的智能播放终端的音视频播放状态音量,并将所述智能播放终端的系统省电模式调整为系统省电模式;当所述当前睡眠状态包括深度睡眠状态时,将与所述智能穿戴设备连接的智能播放终端的音视频播放状态调整为停止播放,并将所述智能播放终端的系统省电模式调整为极度系统省电模式或Sleep模式。
本申请实施例提供的技术方案中,获取所述传感器采集的传感器信息,根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,能够实现用户在不同睡眠状态下,动态调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式,从而使得用户得到健康睡眠的同时也可以节省设备的能耗。
本申请实施例提供了一种存储介质,存储介质包括存储的程序,其中,在程序运行时控制存储介质所在设备执行上述控制智能播放终端方法的实施例的各步骤,具体描述可参见上述控制智能播放终端方法的实施例。
本申请实施例提供了一种智能穿戴设备,包括存储器和处理器,存储器用于存储包括程序指令的信息,处理器用于控制程序指令的执行,程序指令被处理器加载并执行时实现上述控制智能播放终端方法的步骤。具体描述可参见上述控制智能播放终端方法的实施例。
图4为本申请实施例提供的一种智能穿戴设备的示意图。如图4所示,该实施例的智能穿戴设备4包括:处理器41、存储器42以及存储在存储42中并可在处理器41上运行的计算机程序43,该计算机程序43被处理器41执行时实现实施例中的应用于控制智能播放终端方法,为避免重复,此处不一一赘述。或者,该计算机程序被处理器41执行时实现实施例中应用于控制智能播放终端装置中各模型/单元的功能,为避 免重复,此处不一一赘述。
智能穿戴设备4包括,但不仅限于,处理器41、存储器42。本领域技术人员可以理解,图4仅仅是智能穿戴设备4的示例,并不构成对智能穿戴设备4的限定,可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件,例如智能穿戴设备4还可以包括输入输出设备、网络接入设备、总线等。
所称处理器41可以是中央处理单元(Central Processing Unit,CPU),还可以是其他通用处理器、数字信号处理器(Digital Signal Processor,DSP)、专用集成电路(Application Specific Integrated Circuit,ASIC)、现场可编程门阵列(Field-Programmable Gate Array,FPGA)或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件等。通用处理器可以是微处理器或者该处理器也可以是任何常规的处理器等。
存储器42可以是智能穿戴设备4的内部存储单元,例如智能穿戴设备4的硬盘或内存。存储器42也可以是智能穿戴设备4的外部存储设备,例如智能穿戴设备4上配备的插接式硬盘,智能存储卡(Smart Media Card,SMC),安全数字(Secure Digital,SD)卡,闪存卡(Flash Card)等。进一步地,存储器42还可以既包括智能穿戴设备4的内部存储单元也包括外部存储设备。存储器42用于存储计算机程序以及智能穿戴设备4所需的其他程序和数据。存储器42还可以用于暂时地存储已经输出或者将要输出的数据。
所属领域的技术人员可以清楚地了解到,为描述的方便和简洁,上述描述的系统,装置和单元的具体工作过程,可以参考前述方法实施例中的对应过程,在此不再赘述。
在本申请所提供的几个实施例中,应该理解到,所揭露的系统,装置和方法,可以通过其它的方式实现。例如,以上所描述的装置实施例仅仅是示意性的,例如,单元的划分,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,例如,多个单元或组件可以结合或者可以集成到另一个系统,或一些特征可以忽略,或不执行。另一点,所显示或讨论的相互之间的耦合或直接耦合或通信连接可以是通过一些接口,装置或单元的间接耦合或通信连接,可以是电性,机械或其它的形式。
作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部单元来实现本实施例方案的目的。
另外,在本申请各个实施例中的各功能单元可以集成在一个处理单元中,也可以是各个单元单独物理存在,也可以两个或两个以上单元集成在一个单元中。上述集成的单元既可以采用硬件的形式实现,也可以采用硬件加软件功能单元的形式实现。
上述以软件功能单元的形式实现的集成的单元,可以存储在一个计算机可读取存储介质中。上述软件功能单元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装置(可以是个人计算机,服务器,或者网络装置等)或处理器(Processor)执行本申请各个实施例所述方法的部分步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
以上所述仅为本申请的较佳实施例而已,并不用以限制本申请,凡在本申请的精 神和原则之内,所做的任何修改、等同替换、改进等,均应包含在本申请保护的范围之内。

Claims (10)

  1. 一种控制智能播放终端方法,其特征在于,应用于智能穿戴设备,所述智能穿戴设备包括传感器,所述方法包括:
    获取所述传感器采集的传感器信息;
    根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态;
    基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
  2. 根据权利要求1所述的方法,其特征在于,所述获取所述传感器采集的传感器信息,包括:
    获取所述传感器获采集的体征传感信息和运动传感信息,所述体征传感信息包括每天不同时间点内用户的心率、体温以及血液流速,所述运动传感信息包括运动时间点、运动频率、运动幅度以及运动加速度。
  3. 根据权利要求1所述的方法,其特征在于,在所述根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态之前,还包括:
    根据历史采集的体征传感信息和运动传感信息,生成用户生活习惯信息。
  4. 根据权利要求3所述的方法,其特征在于,所述根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态,包括:
    根据从所述传感器信息中获取的用户的当前心率、当前体温和当前血液流速,以及标准睡眠状态下对应体征阀值,确定出所述用户是否处于睡眠状态,所述标准睡眠状态下对应体征阀值包括心率阈值、体温阈值以及血液流速阈值;
    若确定出所述用户处于未睡眠状态,将所述用户的当前睡眠状态确定为未睡眠状态;
    若确定出所述用户处于睡眠状态,根据从所述传感器信息中获取所述用户的当前运动频率、当前运动幅度、当前运动加速度,确定出所述用户的睡眠状态程度,并根据所述睡眠状态程度确定出所述用户的当前睡眠状态,所述睡眠状态程度包括浅度或者深度。
  5. 根据权利要求4所述的方法,其特征在于,所述用户生活习惯信息包括:运动时间点,运动心率、运动体温、运动血液流速值范围、运动频率、运动幅度、运动加速度值范围、睡眠时长、睡眠心率、睡眠体温、睡眠血液流速值范围、睡眠时的运动频率、睡眠时的运动幅度以及睡眠加速度值范围。
  6. 根据权利要求5所述的方法,其特征在于,在所述确定出用户的当前睡眠状态之前,还包括:
    将所述用户的当前心率、当前体温、当前血液流速、当前运动频率、当前运动幅度以及当前运动加速度值分别与所述用户生活习惯信息中对应项进行对比,以确定出用户的当前睡眠状态。
  7. 根据权利要求1所述的方法,其特征在于,所述当前睡眠状态包括未睡眠状态、浅度睡眠状态或者深度睡觉状态;
    所述基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音 视频播放状态和系统省电模式,包括:
    当所述当前睡眠状态包括非睡眠状态时,与所述智能穿戴设备连接的智能播放终端的音视频播放状态保持不变,并将所述智能播放终端的系统省电模式保持为系统原定设置模式;
    当所述当前睡眠状态包括浅度睡眠状态时,降低与所述智能穿戴设备连接的智能播放终端的音视频播放状态音量,并将所述智能播放终端的系统省电模式调整为系统省电模式;
    当所述当前睡眠状态包括深度睡眠状态时,将与所述智能穿戴设备连接的智能播放终端的音视频播放状态调整为停止播放,并将所述智能播放终端的系统省电模式调整为极度系统省电模式或Sleep模式。
  8. 一种控制智能播放终端装置,其特征在于,包括:
    获取模块,用于获取所述传感器采集的传感器信息;
    确定模块,用于根据所述传感器信息以及预先建立的用户生活习惯信息,确定出用户的当前睡眠状态;
    调节模块,用于基于所述当前睡眠状态,调整与所述智能穿戴设备连接的智能播放终端的音视频播放状态和系统省电模式。
  9. 一种存储介质,所述存储介质包括存储的程序,其中,在所述程序运行时控制所述存储介质所在设备执行1至7任意一项所述的控制智能播放终端方法。
  10. 一种智能穿戴设备,包括存储器和处理器,所述存储器用于存储包括程序指令的信息,所述处理器用于控制程序指令的执行,其特征在于:所述程序指令被处理器加载并执行时实现权利要求1至7任意一项所述的控制智能播放终端方法。
PCT/CN2021/130991 2020-12-15 2021-11-16 控制智能播放终端方法、装置、存储介质和智能穿戴设备 WO2022127477A1 (zh)

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