WO2017101523A1 - 可穿戴设备的控制方法及装置 - Google Patents
可穿戴设备的控制方法及装置 Download PDFInfo
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- WO2017101523A1 WO2017101523A1 PCT/CN2016/097886 CN2016097886W WO2017101523A1 WO 2017101523 A1 WO2017101523 A1 WO 2017101523A1 CN 2016097886 W CN2016097886 W CN 2016097886W WO 2017101523 A1 WO2017101523 A1 WO 2017101523A1
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- Prior art keywords
- vibration
- multimedia data
- wearable device
- indication
- mark
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/28—Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/28—Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
- H04L12/2803—Home automation networks
- H04L12/2807—Exchanging configuration information on appliance services in a home automation network
- H04L12/281—Exchanging configuration information on appliance services in a home automation network indicating a format for calling an appliance service function in a home automation network
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L12/00—Data switching networks
- H04L12/28—Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
- H04L12/2803—Home automation networks
- H04L12/2816—Controlling appliance services of a home automation network by calling their functionalities
Definitions
- the present application relates to the field of video and audio playback technologies, and in particular, to a method and an apparatus for controlling a wearable device.
- Wearable devices such as smart helmets, smart glasses, etc., as an important accessory for the terminal, can be connected via Universal Serial Bus (USB) interface, Mobile High-Definition Link (MHL) interface or Bluetooth Wired or wirelessly connected to the terminal.
- USB Universal Serial Bus
- MHL Mobile High-Definition Link
- Bluetooth Wired wirelessly connected to the terminal.
- the terminal can transmit the multimedia data to the wearable device through a connection with the wearable device.
- the wearable device can only realize the output of multimedia data, such as playing video data, outputting audio data, etc., so the type of the output signal of the wearable device is relatively simple, which affects the output effect of the multimedia data.
- the present invention provides a control method and device for a wearable device, which overcomes the technical problem that the output signal of the wearable device is relatively simple and affects the output effect of the multimedia data in the prior art.
- the embodiment of the present application provides a control method of a wearable device, including: in a process in which a terminal plays a first multimedia data synchronously with a connected wearable device, the first multimedia The vibration mark in the data is detected; if the vibration mark is detected in the first multimedia data, a vibration indication is sent to the wearable device, so that the wearable device vibrates according to the vibration indication .
- detecting the vibration mark in the first multimedia data including:
- the vibration mark in the first multimedia data including: setting the vibration mark in the header file; and compressing and encoding the second multimedia data and the header file Obtaining the first multimedia data.
- detecting, by the vibration flag in the first multimedia data, the audio channel of the first multimedia data is decoded to obtain the vibration flag.
- the vibration mark in the multimedia data comprising: creating an audio channel for the first multimedia data, setting the vibration mark in the audio channel; and the audio channel and the The second multimedia data is encoded to obtain the first multimedia data.
- the vibration indication includes at least one of a vibration start and end time, a vibration number of times, and a vibration type information.
- an embodiment of the present application provides a method for controlling a wearable device, including: receiving a vibration indication sent by a connected terminal; wherein the vibration indication is that the wearable device plays synchronously with the terminal.
- the terminal In the process of the first multimedia data, the terminal sends out when the vibration mark is detected in the first multimedia data; and vibrates according to the vibration indication.
- the vibration indication includes at least one of a vibration start and end time, a vibration number of times, and a vibration type information.
- performing vibration according to the vibration indication comprises: controlling at least one vibration motor to perform vibration according to the vibration indication.
- the embodiment of the present application provides a control device for a wearable device, including: a detecting module, configured to: when the terminal plays the first multimedia data synchronously with the connected wearable device, The vibration mark in the first multimedia data is detected; the sending module is configured to: if the vibration mark is detected in the first multimedia data, send a vibration indication to the wearable device, to facilitate the The wearable device vibrates according to the vibration indication.
- the detecting module is specifically configured to: extract a header file of the first multimedia data; and detect whether the vibration flag is carried in the header file.
- the device further includes: a setting module, configured to set the vibration flag in the header file; and a first encoding module, configured to compress and encode the second multimedia data and the header file, Obtaining the first multimedia data.
- a setting module configured to set the vibration flag in the header file
- a first encoding module configured to compress and encode the second multimedia data and the header file, Obtaining the first multimedia data.
- the device further includes: a decoding module, configured to decode an audio channel of the first multimedia data to obtain the vibration flag.
- a decoding module configured to decode an audio channel of the first multimedia data to obtain the vibration flag.
- the device further includes: a creating module, configured to create an audio channel for the first multimedia data, set the vibration flag in the audio channel; and a second encoding module, the audio channel and the The second multimedia data is encoded to obtain the first multimedia data.
- a creating module configured to create an audio channel for the first multimedia data, set the vibration flag in the audio channel
- a second encoding module configured to encode the audio channel and the The second multimedia data is encoded to obtain the first multimedia data.
- the vibration indication includes at least one of a vibration start and end time, a vibration number of times, and a vibration type information.
- the embodiment of the present application provides a control device for a wearable device, including: a receiving module, configured to receive a vibration indication sent by the connected terminal; wherein the vibration indication is in the wearable device and the And the sounding module is configured to perform vibration according to the vibration indication when the terminal synchronously plays the first multimedia data, when the terminal detects the vibration mark in the first multimedia data.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- the vibration module is configured to: control the at least one vibration motor to perform vibration according to the vibration indication.
- the method and device for controlling a wearable device provided by the embodiment of the present application, in the process of playing the first multimedia data synchronously with the connected wearable device, according to the vibration mark in the first multimedia data,
- the wearable device transmits the vibration indication to enable the wearable device to vibrate to realize the output of the vibration signal, which improves the diversity of the wearable device output signal compared with the prior art technology that can only output the multimedia data.
- FIG. 1 is a flowchart of a method for controlling a wearable device according to an embodiment of the present application
- FIG. 2 is a schematic structural diagram of a control system of a wearable device according to an embodiment of the present application
- FIG. 3 is a flowchart of another method for controlling a wearable device according to an embodiment of the present application.
- FIG. 4 is a flowchart of another method for controlling a wearable device according to an embodiment of the present application.
- FIG. 5 is a flowchart of another method for controlling a wearable device according to an embodiment of the present application.
- FIG. 6 is a schematic diagram of a control device for a wearable device according to an embodiment of the present application.
- FIG. 7 is a schematic diagram of another apparatus for controlling a wearable device according to an embodiment of the present application.
- FIG. 8 is a schematic diagram of another apparatus for controlling a wearable device according to an embodiment of the present application.
- FIG. 9 is a schematic diagram of another apparatus for controlling a wearable device according to an embodiment of the present application.
- FIG. 10 is a schematic diagram of a hardware structure of an electronic device for performing a method for controlling a wearable device according to an embodiment of the present application.
- FIG. 1 is a flowchart of a method for controlling a wearable device according to an embodiment of the present disclosure. As shown in FIG. 1 , the method for controlling a wearable device in this embodiment may include the following steps:
- the vibration mark in the first multimedia data is detected during a process in which the terminal plays the first multimedia data synchronously with the connected wearable device.
- the execution subject of this embodiment is a terminal.
- the wearable device as an important accessory of the terminal, may be, for example, a smart helmet, smart glasses, etc., and the user connects the wearable device with the terminal through a USB interface, an MHL interface, or Bluetooth.
- the terminal such as a mobile phone or a tablet computer, can transmit the multimedia data to the wearable device through the MHL protocol while playing the multimedia data, so that the wearable device and the terminal simultaneously play the multimedia data.
- the terminal sends the played first multimedia data to the wearable device, causes the wearable device to play the first multimedia data in synchronization with the terminal, and the user listens to the audio signal sent by the wearable device through the earphone on the wearable device.
- the vibration motor can be installed on the wearable device while the vibration mark is set in the first multimedia data, and when the terminal plays the first multimedia data simultaneously with the wearable device, the terminal detects the first multimedia data band.
- the vibration mark is set in advance in the frame corresponding to the first multimedia data and the explosion scenario, when the smart helmet is used.
- the mobile phone detects whether there is a vibration mark.
- the terminal when the terminal detects the vibration flag set by the first multimedia data, the terminal sends a vibration indication to the wearable device.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- a vibration motor is mounted on the wearable device.
- the vibration motor on the wearable device vibrates according to the vibration start and end time, the number of vibrations, and the vibration type information included in the vibration instruction.
- the vibration type may include long vibration, short vibration, and heartbeat vibration.
- the vibration flag is set in advance in the corresponding frame of the first multimedia data playing explosion episode.
- the mobile phone detects that a certain frame has a vibration mark, and when the frame is played, sends a long vibration command to the smart helmet, and the smart helmet can vibrate, thereby making the user feel the whole body.
- the vibration generated by the explosion can also be set to multiple long vibrations and short vibrations according to the specific circumstances, so as to show the existence of a chain explosion, so that the playback effect is more true. real.
- FIG. 2 is a schematic structural diagram of a control system of a wearable device according to an embodiment of the present application.
- the controllable device of the present invention When the controllable device of the present invention is used to control the wearable device, the mobile phone 21 and the smart helmet 22 are connected through the USB interface, so that the mobile phone 21 and the smart helmet 22 play multimedia data synchronously, and the user uses the earphone 23 To listen to the audio data played by the smart helmet 22.
- the smart helmet 22 respectively vibrates the motor 24 on the front, rear, left and right.
- the vibration indication is sent to the smart helmet 22, and the smart helmet 22 according to the vibration indication Vibration is performed, thus improving the playback effect of the smart helmet 22.
- the terminal does not transmit the vibration indication, and the wearable device does not vibrate when playing the first multimedia data.
- the terminal plays the first multimedia data synchronously with the connected wearable device, sending a vibration indication to the wearable device according to the vibration mark in the first multimedia data
- the wearable device can be vibrated to realize the output of the vibration signal, and the diversity of the output signal of the wearable device is improved compared with the prior art technology that can only output the multimedia data.
- FIG. 3 is a flowchart of a method for controlling another wearable device according to an embodiment of the present application.
- the control method of the wearable device of the present embodiment further introduces the technical solution of the present application in more detail on the basis of the foregoing embodiment.
- the control method of the wearable device in this embodiment may specifically include the following steps:
- the execution subject of this embodiment is a terminal.
- multimedia data is a data with an encoded format formed by compressing and combining files such as a header file, a video file, and an audio file, for example, an audio video interlaced format (Audio Video). Interleaved, AVI), Advanced Streaming Format (ASF), Windows Media Video (WMV) format, 3GP, high compression video format (Real Video) and flash video (Flash Video, FLV) Multimedia data in an encoded format.
- Audio Video Audio Video
- AVI Advanced Streaming Format
- WMV Windows Media Video
- 3GP high compression video format
- Real Video Real Video
- flash Video Flash Video
- the process of decoding the first multimedia data to obtain a header file, a video file, an audio file, and the like.
- the information about the first multimedia data is recorded in the header file, for example, the file frame index, the size and position of each frame, and the synchronization information of the video file and the audio file.
- the vibration flag is set at the specified frame so that when the frame is played, the terminal transmits a vibration command to the wearable device.
- the data before the encoding of the first multimedia data is the second multimedia data, specifically including the video file and the audio file.
- the second multimedia data cannot be directly played, and the audio file and the video file must be synthesized by compression encoding.
- the second multimedia data and the header file containing the vibration mark are compression-encoded by using an encoding tool, for example, a video recording software on the terminal or a Windows video and audio production software, to obtain the first multimedia data.
- the first multimedia data needs to be decoded to extract a header file of the first multimedia data.
- Players commonly used in everyday life such as Real Player, Windows Media Player, and Kmplayer, are equivalent to decoders, that is, in terminals. The process in which the installed player decodes the first multimedia data while playing the first multimedia data.
- the player in the process of decoding the first multimedia data, first extracts a header file of the first multimedia data to obtain a file frame index, a size and a position of each frame recorded in the header file, and Information such as synchronization information between video files and audio files.
- the terminal sends the multimedia data to the wearable device through the MHL protocol while playing the multimedia data, so that the terminal and the wearable device simultaneously play the multimedia data.
- a vibration motor can be mounted on the wearable device.
- a vibration flag is set in the header file of the first multimedia data, and when the terminal plays the first multimedia data simultaneously with the wearable device, the terminal detects whether the first multimedia data has a position with a vibration mark. . If yes, the terminal sends a vibration to the wearable device when playing the frame corresponding to the vibration mark Instructions.
- the terminal as a mobile phone and the wearable device as a smart helmet as an example
- the vibration mark is set in advance at the first multimedia data.
- the mobile phone detects whether the vibration flag is carried in the header file of the first multimedia data.
- the terminal when the terminal detects the vibration flag set by the first multimedia data, the terminal sends a vibration indication to the wearable device.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- a vibration motor is mounted on the wearable device.
- the vibration motor on the wearable device vibrates according to the vibration start and end time, the number of vibrations, and the vibration type information included in the vibration instruction.
- Vibration types include long vibrations, short vibrations, and heartbeat vibrations.
- the terminal as a mobile phone and the wearable device as a smart helmet there is an explosion scenario in the first multimedia data, and a vibration flag is set in advance in the frame corresponding to the explosion scenario in the first multimedia data.
- the smart helmet and the mobile phone play the first multimedia data synchronously, the mobile phone detects that there is a vibration mark in the header file of the first multimedia data, and when the first multimedia data is played to the frame corresponding to the explosion scenario, The smart helmet sends a long vibration command, so that the user can feel the earthquake feeling when the earthquake is felt.
- the vibration mark at the earthquake situation can be set to multiple long vibrations and short vibrations according to the specific circumstances, so as to show the existence of the serial explosion and play. The effect is more real.
- long vibration is vibration for 10 seconds
- short vibration is vibration for 3 seconds
- heartbeat vibration is vibration for 20 times
- the terminal is a mobile phone
- the wearable device is a smart helmet, for example, when the first multimedia data is played to the 20th.
- the mobile phone sends a vibration command to the smart helmet for 10 seconds:
- the terminal does not transmit the vibration indication, and the wearable device does not vibrate when playing the first multimedia data.
- the vibration mark in the header file of the volume data sends a vibration indication to the wearable device, so that the wearable device can vibrate and realize the output of the vibration signal, which is improved compared with the technical solution that can only output multimedia data in the prior art.
- the diversity of output signals of wearable devices in the process of playing the first multimedia data synchronously with the connected wearable device by setting the vibration mark in the header file of the first multimedia data, according to the first multimedia.
- FIG. 4 is a flowchart of a method for controlling another wearable device according to an embodiment of the present application.
- the control method of the wearable device of the present embodiment further introduces the technical solution of the present application in more detail on the basis of the foregoing embodiments.
- the control method of the wearable device in this embodiment may specifically include the following steps:
- the execution subject of this embodiment is a terminal.
- the playing of the first multimedia data is a process of outputting a video signal and an audio signal, wherein the video signal is transmitted through a video channel, and the audio signal is transmitted through the audio channel. That is to say, in the process of making the first multimedia data, a video channel for outputting a video signal and an audio channel for outputting an audio signal are synthesized.
- the technical solution of the embodiment separately creates an audio channel for the first multimedia data, so as to set the vibration flag, so that when the audio channel is decoded, the vibration flag can be detected when decoding the first multimedia data. .
- the position of the set vibration mark corresponds to a position corresponding to an episode such as an explosion, a crash, a shot, or an earthquake, and may be corresponding according to time.
- the first multimedia data is played at the 20th minute and 30 seconds.
- the plot of the explosion for 10 seconds correspondingly, sets the vibration mark at the 20th minute and 30 seconds of the created audio channel playback.
- S402. Encode the audio channel and the second multimedia data to obtain the first multimedia data.
- the data before the encoding of the first multimedia data is the second multimedia data, specifically including the video file and the audio file.
- the second multimedia data cannot be played directly and must be compression encoded.
- the second multimedia data and the header file are compression-encoded by using an encoding tool, for example, a video recording software on the terminal or a Windows video and audio production software, to obtain the first multimedia data.
- an encoding tool for example, a video recording software on the terminal or a Windows video and audio production software
- the tone created in step S301 is The frequency channel is compression-encoded together with the second multimedia data and the header file to obtain the first multimedia data.
- the terminal sends the multimedia data to the wearable device through the MHL protocol while playing the multimedia data, so that the terminal and the wearable device simultaneously play the multimedia data.
- the terminal sends the played first multimedia data to the wearable device, causes the wearable device to play the first multimedia data synchronously with the terminal, and the user listens to the audio signal sent by the wearable device through the earphone on the wearable device.
- the vibration motor can be installed on the wearable device while the vibration mark is set in the first multimedia data, and when the terminal plays the first multimedia data simultaneously with the wearable device, the terminal detects the first multimedia data. Location with vibration marks.
- the terminal as a mobile phone and the wearable device as a smart helmet as an example
- the vibration mark is set in advance at the first multimedia data.
- the mobile phone detects whether there is a vibration mark.
- the specific implementation method is: decoding the first multimedia data, for example, a player such as Real Player, Windows Media Player, and Kmplayer, which is equivalent to a decoder, that is, the player installed in the terminal plays the first time.
- a player such as Real Player, Windows Media Player, and Kmplayer
- it is a process of decoding the first multimedia data.
- a tool parse for decomposing the video signal and the audio signal of the first multimedia data is provided, and at the same time, the audio channel and the video channel are set in the player, and the audio signal of the player is in the first multimedia data.
- the video signal is decomposed, the video signal of the first multimedia data is transmitted through the video channel, and the audio signal is transmitted through the audio channel.
- the terminal transmits a vibration indication when decoding the audio channel to the position where the audio mark is set.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- a vibration motor is mounted on the wearable device.
- the vibration motor on the wearable device vibrates according to the vibration start and end time, the number of vibrations, and the vibration type information included in the vibration instruction.
- Vibration types include long vibrations, short vibrations, and heartbeat vibrations.
- the vibration mark is set in advance at the first multimedia data.
- the mobile phone detects the presence of the vibration mark, sends a long vibration command to the smart helmet, so that the user feels the earthquake generated during the earthquake, and can also take the earthquake according to the specific situation.
- the vibration mark is set to multiple long vibrations and short vibrations to show the presence of aftershocks, making the playback effect more realistic.
- long vibration is vibration for 10 seconds
- short vibration is vibration for 3 seconds
- heartbeat vibration is vibration for 20 times
- the terminal is a mobile phone
- the wearable device is a smart helmet.
- the phone sends a vibration command to the smart helmet:
- an audio channel is created for the first multimedia data, and the vibration flag is set in the created audio channel, and the terminal plays the first multimedia data synchronously with the connected wearable device. Transmitting a vibration indication to the wearable device according to the vibration mark in the audio channel of the first multimedia data, so that the wearable device can vibrate to realize the output of the vibration signal, and only the multimedia data can be output in the prior art. Compared with the technical solution, the diversity of the output signals of the wearable device is improved.
- FIG. 5 is a flowchart of a method for controlling a wearable device according to an embodiment of the present disclosure. As shown in FIG. 5, the control method of the wearable device in this embodiment may specifically include the following steps:
- the wearable device receives the vibration indication sent by the connected terminal.
- the vibration indication is sent when the terminal detects the vibration mark in the first multimedia data in the process that the wearable device plays the first multimedia data synchronously with the terminal.
- the execution subject of the embodiment is a wearable device.
- the wearable device as an important accessory of the terminal, may be, for example, a smart helmet, smart glasses, etc., and the user connects the wearable device with the terminal through a USB interface, an MHL interface, or Bluetooth.
- the terminal such as a mobile phone or a tablet computer, transmits the multimedia data to the wearable device through the MHL protocol while playing the multimedia data, so that the wearable device and the terminal simultaneously play the multimedia data.
- the terminal sends the played first multimedia data to the wearable device, causes the wearable device to play the first multimedia data in synchronization with the terminal, and the user listens to the audio signal sent by the wearable device through the earphone on the wearable device.
- the vibration motor can be installed on the wearable device while the vibration mark is set in the first multimedia data, and when the terminal plays the first multimedia data simultaneously with the wearable device, the terminal detects the first multimedia data band. When there is a vibration mark, a vibration indication is sent to the wearable device.
- the terminal as a mobile phone and the wearable device as a smart helmet as an example
- the vibration mark is set in advance in the frame corresponding to the first multimedia data and the explosion scenario, when the smart helmet is used.
- the first multimedia data is played synchronously with the mobile phone
- the mobile phone detects that there is a vibration mark
- the mobile phone sends a vibration indication to the smart helmet.
- the wearable device vibrates according to the vibration indication.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- S502 specifically includes: the processor of the wearable device controls the at least one vibration motor to vibrate according to the vibration indication.
- At least one vibration motor is mounted on the wearable device.
- the wearable device receives the vibration command, the four vibration motors on the wearable device vibrate according to the vibration start and end time, the number of vibrations, and the vibration type information included in the vibration indication.
- Vibration types include long vibrations, short vibrations, and heartbeat vibrations.
- a vibration motor is respectively arranged on the front, the rear, the left and the right of the smart helmet, and the first multimedia data has an explosion episode, which is pre-in the first multimedia.
- the corresponding frame of the volume data playback explosion plot sets the vibration marker.
- the terminal plays the first multimedia data synchronously with the connected wearable device, sending a vibration indication to the wearable device according to the vibration mark in the first multimedia data
- the wearable device can be vibrated to realize the output of the vibration signal, and the diversity of the output signal of the wearable device is improved compared with the prior art technology that can only output the multimedia data.
- FIG. 6 is a schematic diagram of a control device for a wearable device according to an embodiment of the present application.
- the control device 60 of the wearable device of the present embodiment may specifically include a detection module 601 and a sending module 602.
- the detecting module 601 is configured to detect a vibration mark in the first multimedia data in a process in which the terminal synchronously plays the first multimedia data with the connected wearable device;
- the sending module 602 is configured to: if the vibration flag is detected in the first multimedia data, send a vibration indication to the wearable device, so that the wearable device vibrates according to the vibration indication.
- the vibration indication includes information on the start and end time of the vibration, the number of vibrations, and the type of vibration.
- the control mechanism of the wearable device of the present embodiment is the same as the implementation mechanism of the control method of the wearable device of the embodiment shown in FIG. 1 by using the above-mentioned module. For details, refer to FIG. 1 above. The description of the illustrated embodiment will not be repeated here.
- FIG. 7 is a schematic diagram of another apparatus for controlling a wearable device according to an embodiment of the present application.
- the control device of the wearable device of the present embodiment further introduces the present application in more detail on the basis of the embodiment shown in FIG. 6 .
- the control device 60 of the wearable device of the embodiment further includes:
- the detecting module 601 is specifically configured to:
- the device in this embodiment further includes:
- a setting module 603, configured to set a vibration mark in the header file
- the first encoding module 604 is configured to compress and encode the second multimedia data and the header file to obtain the first multimedia data.
- control device for the wearable device of the present embodiment is the same as that of the control method for the wearable device of the embodiment shown in FIG. 3 by using the above-mentioned module.
- control method for the wearable device of the embodiment shown in FIG. 3 by using the above-mentioned module.
- FIG. 3 refers to FIG. 3 above.
- the description of the illustrated embodiment will not be repeated here.
- FIG. 8 is a schematic diagram of another apparatus for controlling a wearable device according to an embodiment of the present application.
- the control device of the wearable device of the present embodiment further introduces the present application in more detail on the basis of the embodiment shown in FIG. 6 .
- the control device 60 of the wearable device of the embodiment further includes:
- the decoding module 605 is configured to decode the audio channel of the first multimedia data to obtain a vibration flag.
- the device in this embodiment further includes:
- a creating module 606, configured to create an audio channel for the first multimedia data, and set a vibration flag in the audio channel
- the second encoding module 607 encodes the audio channel and the second multimedia data to obtain the first multimedia data.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- the control mechanism of the wearable device of the present embodiment is the same as the implementation mechanism of the control method of the wearable device of the embodiment shown in FIG. 4 by using the above-mentioned module. For details, refer to FIG. 4 above. The description of the illustrated embodiment will not be repeated here.
- FIG. 9 is a schematic diagram of a control device for another wearable device according to an embodiment of the present application.
- the control device 90 of the wearable device of the present embodiment may specifically include a receiving module 901 and a vibration module 902 .
- the receiving module 901 is configured to receive, by the wearable device, a vibration indication sent by the connected terminal, where the vibration indication is that the terminal is in the first multimedia data in a process that the wearable device plays the first multimedia data synchronously with the terminal. Issued when a vibration marker is detected;
- the vibration module 902 is configured to vibrate the wearable device according to the vibration indication.
- vibration module 902 is specifically configured to:
- the processor of the wearable device controls the at least one vibration motor to vibrate according to the vibration indication.
- the vibration indication includes vibration start and end time, number of vibrations, and vibration type information.
- the control mechanism 90 of the wearable device of the present embodiment is the same as the implementation mechanism of the control method of the wearable device of the embodiment shown in FIG. 5 by using the above-mentioned module. For details, refer to FIG. 5 above. The description of the illustrated embodiment will not be repeated here.
- FIG. 10 is a schematic diagram of a hardware structure of an electronic device for performing a method for controlling a wearable device according to an embodiment of the present disclosure. As shown in FIG. 10, the electronic device 100 includes:
- One or more processors 1001 and a memory 1002, one processor 1001 is taken as an example in FIG.
- the processor 1001 and the memory 1002 may be connected by a bus or other means, as exemplified by a bus connection in FIG.
- the memory 1002 is a non-volatile computer readable storage medium, and can be used for storing non-volatile software programs, non-volatile computer-executable programs, and modules, as in the control method of the wearable device in the embodiment of the present application.
- Program instructions/modules eg, the various modules shown in Figures 6 through 9.
- the processor 1001 performs various functional applications and data processing of the control devices 60, 90 of the wearable device by executing non-volatile software programs, instructions, and modules stored in the memory 1002, that is, implementing the above-described method embodiments.
- the memory 1002 may include a high speed random access memory, and may also include a nonvolatile memory such as at least one magnetic disk storage device, flash memory device, or other nonvolatile solid state storage device.
- memory 1002 can optionally include memory remotely disposed relative to processor 1001, which can be coupled to processor 1001 via a network. Examples of such networks include, but are not limited to, the Internet, intranets, local area networks, mobile communication networks, and combinations thereof.
- the program instructions/modules are stored in the memory 1002, and when executed by the one or more processors 1001, perform a control method of the wearable device in any of the above method embodiments, for example, performing the above described diagram Method step S101 and step S102 in 1, method step S301 to step S305 in FIG. 3, method step S401 to step S404 in FIG. 4, and method step S501 in FIG. And step S502; the functions of the modules 601-602 in FIG. 6, the functions of the modules 601-604 in FIG. 7, the functions of the modules 601, 602, 605, 606, and 607 in FIG. 8, and the functions in FIG.
- the electronic device 100 of the embodiment of the present application exists in various forms, and performs the method steps S101 and S102 in FIG. 1, the method steps S301 to S305 in FIG. 3, and the method steps S401 to S404 in FIG. And implementing the functions of the modules 601-602 in FIG. 6, the functions of the modules 601-604 in FIG. 7, the functions of the modules 601, 602, 605, 606, and 607 in FIG. 8, the electronic device 100 includes but is not limited to :
- Mobile communication devices These devices are characterized by mobile communication functions and are mainly aimed at providing voice and data communication.
- Such terminals include: smart phones (such as iPhone), multimedia phones, functional phones, and low-end phones.
- Ultra-mobile personal computer equipment This type of equipment belongs to the category of personal computers, has computing and processing functions, and generally has mobile Internet access.
- Such terminals include: PDAs, MIDs, and UMPC devices, such as the iPad.
- Portable entertainment devices These devices can display and play video content, and generally have mobile Internet access. Such devices include: video players, handheld game consoles, as well as smart toys and portable car navigation devices.
- the electronic device 100 of the embodiment of the present application exists in various forms.
- the electronic device 100 is a wearable device.
- Embodiments of the present application also provide a non-volatile computer storage medium storing computer-executable instructions that are executed by one or more processors, such as one of FIG.
- the apparatus 1001 may be configured to enable the one or more processors to perform the control method of the wearable device in any of the foregoing method embodiments, for example, to perform the method steps S101 and S102 in FIG. 1 described above, the method in FIG. Step S301 to step S305, method step S401 to step S404 in FIG. 4, method step S501 and step S502 in FIG. 5, the functions of the modules 601-602 in FIG. 6 and the functions of the modules 601-604 in FIG. 7 are implemented. , modules 601, 602, 605 in FIG. 8, The functions of 606 and 607, the functions of modules 901-902 in FIG.
- modules described as separate components may or may not be physically separate, and the components displayed as modules may or may not be physical units, ie It can be located in one place or it can be 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.
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Abstract
本申请提供了一种可穿戴设备的控制方法及装置,该方法包括:在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对第一多媒体数据中的振动标记进行检测;若在第一多媒体数据中检测到振动标记,向可穿戴设备发送振动指示,以便于可穿戴设备根据所述振动指示进行振动。本申请的技术方案,在第一多媒体数据检测到的振动标记,向可穿戴设备发送振动指示,使的可穿戴设备能够振动,使得可穿戴设备能够在输出多媒体数据的同时还能输出振动信号,提高了可穿戴设备输出信号的多样性。
Description
本申请要求于2015年12月15日提交中国专利局,申请号为2015109534579,发明名称为“可穿戴设备的控制方法及装置”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本申请涉及影音播放技术领域,尤其涉及一种可穿戴设备的控制方法及装置。
随着终端的普及,越来越多与终端相关的功能配件也随之完善。可穿戴设备如智能头盔、智能眼镜等,作为终端的一个重要配件,可以通过通用串行总线(Universal Serial Bus,USB)接口、移动终端高清影音标准(Mobile High-Definition Link,MHL)接口或者蓝牙与终端进行有线连接或者无线连接。终端可以通过与可穿戴设备之间的连接,将多媒体数据发送给可穿戴设备。
然而,现有技术中,可穿戴设备只能实现多媒体数据的输出,如播放视频数据、输出音频数据等,因此可穿戴设备输出信号的种类比较单一,影响多媒体数据的输出效果。
发明内容
本申请提供一种可穿戴设备的控制方法及装置,以克服现有技术中可穿戴设备输出信号的种类比较单一,影响多媒体数据的输出效果的技术问题。
在第一方面,本申请实施例提供一种可穿戴设备的控制方法,包括:在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对所述第一多媒体数据中的振动标记进行检测;若在所述第一多媒体数据中检测到所述振动标记,向所述可穿戴设备发送振动指示,以便于所述可穿戴设备根据所述振动指示进行振动。
可选地,对所述第一多媒体数据中的振动标记进行检测,包括:
提取所述第一多媒体数据的头文件;
检测所述头文件中是否携带所述振动标记。
可选地,对所述第一多媒体数据中的振动标记进行检测之前,包括:在所述头文件中设置所述振动标记;将第二多媒体数据和所述头文件进行压缩编码,以获得所述第一多媒体数据。
可选地,所述第一多媒体数据中的振动标记进行检测,包括:对所述第一多媒体数据的音频通道进行解码,得到所述振动标记。
可选地,对所述多媒体数据中的振动标记进行检测之前,包括:为第一多媒体数据创建音频通道,在所述音频通道中设置所述振动标记;将所述音频通道与所述第二多媒体数据进行编码,以获得所述第一多媒体数据。
可选地,所述振动指示包含振动起止时间、振动次数和振动类型信息中至少一个。
在第二方面,本申请实施例提供一种可穿戴设备的控制方法,包括:接收所连接的终端发送的振动指示;其中,所述振动指示为在所述可穿戴设备与所述终端同步播放第一多媒体数据的过程中,所述终端在所述第一多媒体数据中检测到振动标记时发出的;根据所述振动指示进行振动。
可选地,所述振动指示包含振动起止时间、振动次数和振动类型信息中至少一个。
可选地,根据所述振动指示进行振动,包括:根据所述振动指示控制至少一个振动马达进行振动。
在第三方面,本申请实施例提供一种可穿戴设备的控制装置,包括:检测模块,用于在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对所述第一多媒体数据中的振动标记进行检测;发送模块,用于若在所述第一多媒体数据中检测到所述振动标记,向所述可穿戴设备发送振动指示,以便于所述可穿戴设备根据所述振动指示进行振动。
可选地,所述检测模块,具体用于:提取所述第一多媒体数据的头文件;检测所述头文件中是否携带所述振动标记。
可选地,所述装置还包括:设置模块,用于在所述头文件中设置所述振动标记;第一编码模块,用于将第二多媒体数据和所述头文件进行压缩编码,以获得所述第一多媒体数据。
可选地,所述装置还包括:解码模块,用于对所述第一多媒体数据的音频通道进行解码,得到所述振动标记。
可选地,所述装置还包括:创建模块,用于为第一多媒体数据创建音频通道,在所述音频通道中设置所述振动标记;第二编码模块,将所述音频通道与所述第二多媒体数据进行编码,以获得所述第一多媒体数据。
可选地,所述振动指示包含振动起止时间、振动次数和振动类型信息中至少一个。
在第四方面,本申请实施例提供一种可穿戴设备的控制装置,包括:接收模块,用于接收所连接的终端发送的振动指示;其中,所述振动指示为在可穿戴设备与所述终端同步播放第一多媒体数据的过程中,所述终端在所述第一多媒体数据中检测到振动标记时发出的;振动模块,用于根据所述振动指示进行振动。
可选地,所述振动指示包含振动起止时间、振动次数和振动类型信息。
可选地,所述振动模块,用于:根据所述振动指示控制至少一个振动马达进行振动。
本申请实施例提供的可穿戴设备的控制方法及装置,在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,根据在第一多媒体数据中的振动标记,向可穿戴设备发送振动指示,以使得可穿戴设备能够进行振动,实现振动信号的输出,与现有技术中只能输出多媒体数据的技术方案相比,提高了可穿戴设备输出信号的多样性。
一个或多个实施例通过与之对应的附图中的图片进行示例性说明,这些示例性说明并不构成对实施例的限定,附图中具有相同参考数字标号的元件表示为类似的元件,除非有特别申明,附图中的图不构成比例限制。
图1为本申请实施例提供一种可穿戴设备的控制方法的流程图;
图2为本申请实施例提供一种可穿戴设备的控制系统的架构示意图;
图3是本申请实施例提供另一种可穿戴设备的控制方法的流程图;
图4是本申请实施例提供另一种可穿戴设备的控制方法的流程图;
图5为本申请实施例提供另一种可穿戴设备的控制方法的流程图;
图6为本申请实施例提供一种可穿戴设备的控制装置的示意图;
图7为本申请实施例提供另一种可穿戴设备的控制装置的示意图;
图8为本申请实施例提供另一种可穿戴设备的控制装置的示意图;
图9为本申请实施例提供另一种可穿戴设备的控制装置的示意图;以及
图10是本申请实施例提供的执行可穿戴设备的控制方法的电子设备的硬件结构示意图。
为使本申请实施例的目的、技术方案和优点更加清楚,下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例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作出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
图1为本申请实施例提供一种可穿戴设备的控制方法的流程图,如图1所示,本实施例的可穿戴设备的控制方法,具体可以包括如下步骤:
S101,在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对第一多媒体数据中的振动标记进行检测。
具体地,本实施例的执行主体是终端。
随着终端的迅速发展,越来越多的功能配件也被开发出来。例如,可穿戴设备,作为终端的重要配件,可以是如智能头盔、智能眼镜等,用户将可穿戴设备与终端通过USB接口、MHL接口或者蓝牙进行连接。
终端,如手机或者平板电脑等,在播放多媒体数据的同时,可以通过MHL协议将多媒体数据发送至可穿戴设备,使可穿戴设备和终端同时播放该多媒体数据。终端将所播放的第一多媒体数据发送至可穿戴设备,使可穿戴设备与终端同步播放第一多媒体数据,用户通过可穿戴设备上的耳机收听可穿戴设备发出的音频信号。
但是用户在观看视频信号和收听音频信号时,对于第一多媒体数据中的一些情节,例如爆炸、撞车、开枪或地震等情节,没有切身的体验。因此,可以在可穿戴设备上安装振动马达,同时在第一多媒体数据中设置振动标记,当终端与可穿戴设备同时播放第一多媒体数据时,终端检测第一多媒体数据带有振动标记的位置。以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在爆炸的情节,预先在第一多媒体数据与爆炸情节相对应的帧处设定振动标记,当智能头盔和手机同步播放第一多媒体数据时,手机检测是否存在振动标记。
S102,若在第一多媒体数据中检测到振动标记,向可穿戴设备发送振动指示,以便于可穿戴设备根据振动指示进行振动。
具体地,终端检测到第一多媒体数据设置的振动标记时,向可穿戴设备发送振动指示。
在一些实施例中,振动指示包含振动起止时间、振动次数和振动类型信息。
具体地,在可穿戴设备上安装振动马达。当可穿戴设备接收到振动指令时,可穿戴设备上的振动马达,根据振动指示所包含的振动起止时间、振动次数和振动类型信息进行振动。
其中,振动类型可以包括长振动、短振动和心跳式振动。
以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在爆炸的情节,预先在第一多媒体数据播放爆炸情节的相对应的帧设定振动标记。当智能头盔和手机同步播放第一多媒体数据时,手机检测到某一帧带有振动标记,当播放该帧时向智能头盔发送长振动指令,智能头盔可以进行振动,从而使用户切身感受到爆炸时产生的震感,也可以根据具体情节将爆炸情况处的振动标记设置成多次长振动和短振动,以示存在连环爆炸的情节,使播放效果更加真
实。
如图2所示,图2为本申请实施例提供一种可穿戴设备的控制系统的架构示意图。在采用本实施例所述的可穿戴设备的控制方法实现控制可穿戴设备时,将手机21与智能头盔22通过USB接口进行连接,使手机21与智能头盔22同步播放多媒体数据,用户使用耳机23来收听智能头盔22播放的音频数据。智能头盔22上在前、后、左和右分别设备振动马达24,当手机21上播放第一多媒体播放数据到振动标记处时,向智能头盔22发送振动指示,智能头盔22根据振动指示进行振动,这样,提高了智能头盔22的播放效果。
本领域技术人员应该可以理解,若在第一多媒体数据中未检测到振动标记,则终端不发送振动指示,可穿戴设备在播放第一多媒体数据时不发生振动。
本实施例的技术方案,在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,根据在第一多媒体数据中的振动标记,向可穿戴设备发送振动指示,以使得可穿戴设备能够进行振动,实现振动信号的输出,与现有技术中只能输出多媒体数据的技术方案相比,提高了可穿戴设备输出信号的多样性。
图3是本申请实施例提供另一种可穿戴设备的控制方法的流程图,本实施例的可穿戴设备的控制方法在上述实施例的基础上,进一步更加详细地介绍本申请的技术方案。如图3所示,本实施例的可穿戴设备的控制方法,具体可以包括如下步骤:
S301,在头文件中设置振动标记。
本实施例的执行主体是终端。
具体地,本领域技术人员应该可以知道,通常所说的多媒体数据是将头文件、视频文件和音频文件等文件压缩合成在一起形成的具有编码格式的数据,例如,音频视频交错格式(Audio Video Interleaved,AVI)、增强流媒体格式(Advanced Streaming Format,ASF)、窗口媒体视频(Windows Media Video,WMV)格式、3GP、高压缩比的视频格式(Real Video)及闪光视频(Flash Video,FLV)等编码格式的多媒体数据。
当播放第一多媒体数据时,对第一多媒体数据进行解码,获得头文件、视频文件和音频文件等的过程。
其中,头文件中记录了关于第一多媒体数据的信息,例如,文件帧索引、每帧的大小和位置和视频文件与音频文件的同步信息。在本实施例中,还在头文件中记录帧的信息时,在指定的帧处设定振动标记,以便于当播放到该帧时,终端发送振动指令给可穿戴设备。
S302,将第二多媒体数据和头文件进行压缩编码,以获得第一多媒体数据。
具体地,未对第一多媒体数据进行编码前的数据为第二多媒体数据,具体包括视频文件和音频文件。第二多媒体数据并不能直接播放,必须经过压缩编码将音频文件和视频文件合成在一起。采用编码工具,例如,终端上的视频录制软件或者windows影音视频制作软件等,将第二多媒体数据和含有振动标记的头文件进行压缩编码,获得第一多媒体数据。
S303,提取第一多媒体数据的头文件。
具体地,需要播放第一多媒体数据时,需要将第一多媒体数据进行解码,以提取所第一多媒体数据的头文件。人们日常生活中常的播放器,例如,实时播放器(Real Player)、窗口媒体播放器(Windows Media Player)和万能播放器(Kmplayer)等播放器,其相当于解码器,也就是说,终端中安装的播放器在播放第一多媒体数据时,其对第一多媒体数据进行解码的过程。
本实施例中,播放器在对第一多媒体数据进行解码的过程中,先提取第一多媒体数据的头文件,以获得头文件中记载的文件帧索引、每帧大小和位置和视频文件与音频文件的同步信息等信息。
S304,检测头文件中是否携带振动标记。
具体地,终端在播放多媒体数据的同时,通过MHL协议将多媒体数据发送至可穿戴设备,使终端和可穿戴设备同时播放该多媒体数据。但是用户在观看视频信号和收听音频信号时,对于第一多媒体数据中的一些情节,例如爆炸、撞车、开枪或地震等情节,却没有很好的切身的体验。因此,可以在可穿戴设备上安装振动马达。
本实施例在第一多媒体数据的头文件中设置振动标记,当终端与可穿戴设备同时播放第一多媒体数据时,终端检测到第一多媒体数据是否带有振动标记的位置。若是,当播放到与振动标记对应的帧时,终端向可穿戴设备发送振动
指示。
以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在爆炸的情节,预先在第一多媒体数据处设定振动标记。当智能头盔和手机同步播放第一多媒体数据时,手机检测第一多媒体数据的头文件中,是否携带了振动标记。
S305,若在第一多媒体数据中检测到振动标记,向可穿戴设备发送振动指示,以便于可穿戴设备根据振动指示进行振动。
具体地,终端检测到第一多媒体数据设置的振动标记时,向可穿戴设备发送振动指示。
进一步地,振动指示包含振动起止时间、振动次数和振动类型信息。
具体地,在可穿戴设备上安装振动马达。当可穿戴设备接收到振动指令时,可穿戴设备上的振动马达,根据振动指示所包含的振动起止时间、振动次数和振动类型信息进行振动。
振动类型包括长振动、短振动和心跳式振动。
以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在爆炸的情节,预先在第一多媒体数据中与爆炸情节相对应的帧设置振动标记。当智能头盔和手机同步播放第一多媒体数据时,手机检测第一多媒体数据的头文件中存在振动标记,当播放第一多媒体数据至与爆炸情节相对应的帧时,向智能头盔发送长振动指令,使用户切身感受到地震时产生的震感,也可以根据具体情节将地震情况处的振动标记设置成多次长振动和短振动,以示存在连环爆炸的情节,使播放效果更加真实。
例如,长振动为振动10秒,短振动为振动3秒,心跳式振动为振动20次,以终端是手机,可穿戴设备是智能头盔为例,当所播放的第一多媒体数据至第20分37秒时有爆炸情节时,爆炸持续10秒,则此时手机向智能头盔发送振动10秒的振动指令:
MHL_Send_command(“cmd=vibrator:10s”)://下发振动命令10s命令到头盔。
本领域技术人员应该可以理解,若在第一多媒体数据中未检测到振动标记,则终端不发送振动指示,可穿戴设备在播放第一多媒体数据时不发生振动。
本实施例的技术方案,通过在第一多媒体数据的头文件中设置振动标记,在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,根据在第一多媒体数据的头文件中的振动标记,向可穿戴设备发送振动指示,以使得可穿戴设备能够进行振动,实现振动信号的输出,与现有技术中只能输出多媒体数据的技术方案相比,提高了可穿戴设备输出信号的多样性。
图4是本申请实施例提供另一种可穿戴设备的控制方法的流程图,本实施例的可穿戴设备的控制方法在上述实施例的基础上,进一步更加详细地介绍本申请的技术方案。如图4所示,本实施例的可穿戴设备的控制方法,具体可以包括如下步骤:
S401,为第一多媒体数据创建音频通道,在音频通道中设置振动标记。
具体地,本实施例的执行主体是终端。
第一多媒体数据的播放是输出视频信号和音频信号的过程,其中,视频信号是通过视频通道传输,音频信号通过音频通道传输。也就是说,在进行第一多媒体数据的制作过程中,合成了用于输出视频信号的视频通道和用于输出音频信号的音频通道。
本实施例的技术方案为第一多媒体数据另外创建一个音频通道,以用于设定振动标记,从而在为第一多媒体数据解码时,对音频通道解码时,能够检测到振动标记。
所设置的振动标记的位置与剧中例如爆炸、撞车、开枪或地震等情节相对应的位置,具体可以根据时间相对应,例如,第一多媒体数据在播放第20分30秒时有爆炸10秒的情节,则相应地,在所创建的音频通道播放第20分30秒处设置振动标记。
S402,将音频通道与第二多媒体数据进行编码,以获得第一多媒体数据。
具体地,未对第一多媒体数据进行编码前的数据为第二多媒体数据,具体包括视频文件和音频文件。第二多媒体数据并不能直接播放,必须经过压缩编码。采用编码工具,例如,终端上的视频录制软件或者windows影音视频制作软件等,将第二多媒体数据和头文件进行压缩编码,获得第一多媒体数据。本实施例在对第二多媒体数据和头文件进行压缩编码时,将在步骤S301创建的音
频通道与第二多媒体数据和头文件一起进行压缩编码,从而获得第一多媒体数据。
S403,对第一多媒体数据的音频通道进行解码,得到振动标记。
具体地,终端在播放多媒体数据的同时,通过MHL协议将多媒体数据发送至可穿戴设备,使终端和可穿戴设备同时播放该多媒体数据。终端将所播放的第一多媒体数据发送至可穿戴设备,使可穿戴设备与终端同步播放第一多媒体数据,用户通过可穿戴设备上的耳机听可穿戴设备发出的音频信号。
但是用户在观看视频信号和收听音频信号时,对于第一多媒体数据中的一些情节,例如爆炸、撞车、开枪或地震等情节,却没有很好的体验。因此,可以在可穿戴设备上安装振动马达,同时在第一多媒体数据中设置振动标记,当终端与可穿戴设备同时播放第一多媒体数据时,终端检测到第一多媒体数据带有振动标记的位置。
以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在地震的情节,预先在第一多媒体数据处设定振动标记。当智能头盔和手机同步播放第一多媒体数据时,手机检测是否存在振动标记。
具体的实现方法为,将第一多媒体数据进行解码,例如,Real Player、Windows Media Player和Kmplayer等播放器,相当于解码器,也就是说,终端中安装的播放器在播放第一多媒体数据时,是对第一多媒体数据进行解码的过程。
在播放器中,设置有用于分解第一多媒体数据的视频信号和音频信号的工具parse,同时播放器中设置有音频通道和视频通道,播放器在对第一多媒体数据的音频信号和视频信号进行分解之后,将第一多媒体数据的视频信号通过视频通道传输,将音频信号通过音频通道传输,当解码另外设置的音频通道时,检测到其中设置有振动信号,通知终端的处理器,以使终端的处理器向可穿戴设备发送振动指示。
S404,若在第一多媒体数据中检测到振动标记,向可穿戴设备发送振动指示,以便于可穿戴设备根据振动指示进行振动。
人们日常生活中常的播放器,例如,Real Player、Windows Media Player和
Kmplayer等播放器,实际上相当于解码器,也就是说播放器在播放第一多媒体数据时,实际是对第一多媒体数据进行解码的过程。当播放器播放第一多媒体数据时,在对音频通道解码至设置音频标记的位置时,终端发送振动指示。
进一步地,振动指示包含振动起止时间、振动次数和振动类型信息。
具体地,在可穿戴设备上安装振动马达。当可穿戴设备接收到振动指令时,可穿戴设备上的振动马达,根据振动指示所包含的振动起止时间、振动次数和振动类型信息进行振动。振动类型包括长振动、短振动和心跳式振动。
以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在地震的情节,预先在第一多媒体数据处设定振动标记。当智能头盔和手机同步播放第一多媒体数据时,手机检测到存在振动标记,向智能头盔发送长振动指令,使用户切身感受到地震时产生的震感,也可以根据具体情节将地震情况处的振动标记设置成多次长振动和短振动,以示存在余震的情况,使播放效果更加真实。
例如,长振动为振动10秒,短振动为振动3秒,心跳式振动为振动20次,以终端是手机,可穿戴设备是智能头盔为例,当所播放的视频中有爆炸情节时,爆炸持续10秒,则手机向智能头盔发送振动指令:
MHL_Send_command(“cmd=vibrator:10s”);//下发振动命令10s命令到头盔。
本实施例的技术方案,为第一多媒体数据创建音频通道,将振动标记设置于所创建的音频通道中,在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,根据在第一多媒体数据的音频通道中的振动标记,向可穿戴设备发送振动指示,以使得可穿戴设备能够进行振动,实现振动信号的输出,与现有技术中只能输出多媒体数据的技术方案相比,提高了可穿戴设备输出信号的多样性。
图5为本申请实施例提供另一种可穿戴设备的控制方法的流程图,如图5所示,本实施例的可穿戴设备的控制方法,具体可以包括如下步骤:
S501,可穿戴设备接收所连接的终端发送的振动指示。
其中,振动指示为在可穿戴设备与终端同步播放第一多媒体数据的过程中,终端在第一多媒体数据中检测到振动标记时发出的。
具体地,本实施例的执行主体是可穿戴设备。
随着终端的迅速发展,越来越多的功能配件也被开发出来。例如,可穿戴设备,作为终端的重要配件,可以是如智能头盔、智能眼镜等,用户将可穿戴设备与终端通过USB接口、MHL接口或者蓝牙进行连接。
终端,如手机或者平板电脑等,在播放多媒体数据的同时,通过MHL协议将多媒体数据发送至可穿戴设备,使可穿戴设备和终端同时播放该多媒体数据。终端将所播放的第一多媒体数据发送至可穿戴设备,使可穿戴设备与终端同步播放第一多媒体数据,用户通过可穿戴设备上的耳机收听可穿戴设备发出的音频信号。
但是用户在观看视频信号和收听音频信号时,对于第一多媒体数据中的一些情节,例如爆炸、撞车、开枪或地震等情节,没有切身的体验。因此,可以在可穿戴设备上安装振动马达,同时在第一多媒体数据中设置振动标记,当终端与可穿戴设备同时播放第一多媒体数据时,终端检测第一多媒体数据带有振动标记时,向可穿戴设备发送振动指示。
以终端是手机,可穿戴设备是智能头盔为例,第一多媒体数据中存在爆炸的情节,预先在第一多媒体数据与爆炸情节相对应的帧处设定振动标记,当智能头盔和手机同步播放第一多媒体数据时,手机检测存在振动标记时,向智能头盔发送振动指示。
S502,可穿戴设备根据振动指示进行振动。
进一步地,振动指示包含振动起止时间、振动次数和振动类型信息。
具体地,S502具体包括:可穿戴设备的处理器根据振动指示控制至少一个振动马达进行振动。
具体地,在可穿戴设备上安装至少一个振动马达。当可穿戴设备接收到振动指令时,可穿戴设备上的四个振动马达,根据振动指示所包含的振动起止时间、振动次数和振动类型信息进行振动。
振动类型包括长振动、短振动和心跳式振动。
以终端是手机,可穿戴设备是智能头盔为例,在智能头盔的前、后、左和右分别设置有振动马达,第一多媒体数据中存在爆炸的情节,预先在第一多媒
体数据播放爆炸情节的相对应的帧设定振动标记。当智能头盔和手机同步播放第一多媒体数据时,手机检测到某一帧带有振动标记,当播放该帧时向智能头盔发送进行长振动的振动指示,智能头盔接收到该振动指示时,向智能头盔上安装的振动成达发送振动指令,使振动马达根据振动指示进行振动,从而指使用户切身感受到爆炸时产生的震感,使播放效果更加真实。
本实施例的技术方案,在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,根据在第一多媒体数据中的振动标记,向可穿戴设备发送振动指示,以使得可穿戴设备能够进行振动,实现振动信号的输出,与现有技术中只能输出多媒体数据的技术方案相比,提高了可穿戴设备输出信号的多样性。
图6为本申请实施例提供一种可穿戴设备的控制装置的示意图,如图6所示,本实施例的可穿戴设备的控制装置60,具体可以包括检测模块601和发送模块602。
检测模块601,用于在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对第一多媒体数据中的振动标记进行检测;
发送模块602,用于若在第一多媒体数据中检测到振动标记,向可穿戴设备发送振动指示,以便于可穿戴设备根据振动指示进行振动。
振动指示包含振动起止时间、振动次数和振动类型信息。
本实施例的可穿戴设备的控制装置60,通过采用上述模块实现控制可穿戴设备的实现机制与上述图1所示实施例的可穿戴设备的控制方法的实现机制相同,详细可以参考上述图1所示实施例的记载,在此不再赘述。
图7为本申请实施例提供另一种可穿戴设备的控制装置的示意图,本实施例的可穿戴设备的控制装置在如图6所示的实施例的基础上,进一步更加详细地介绍本申请的技术方案。如图7所示,本实施例的可穿戴设备的控制装置60,进一步包括:
检测模块601,具体用于:
提取第一多媒体数据的头文件;
检测头文件中是否携带振动标记。
进一步地,本实施例所述的装置还包括:
设置模块603,用于在头文件中设置振动标记;
第一编码模块604,用于将第二多媒体数据和头文件进行压缩编码,以获得第一多媒体数据。
本实施例的可穿戴设备的控制装置60,通过采用上述模块实现控制可穿戴设备的实现机制与上述图3所示实施例的可穿戴设备的控制方法的实现机制相同,详细可以参考上述图3所示实施例的记载,在此不再赘述。
图8为本申请实施例提供另一种可穿戴设备的控制装置的示意图,本实施例的可穿戴设备的控制装置在如图6所示的实施例的基础上,进一步更加详细地介绍本申请的技术方案。如图8所示,本实施例的可穿戴设备的控制装置60,进一步包括:
解码模块605,用于对第一多媒体数据的音频通道进行解码,得到振动标记。
进一步地,本实施例所述的装置,还包括:
创建模块606,用于为第一多媒体数据创建音频通道,在音频通道中设置振动标记;
第二编码模块607,将音频通道与第二多媒体数据进行编码,以获得第一多媒体数据。
进一步地,振动指示包含振动起止时间、振动次数和振动类型信息。
本实施例的可穿戴设备的控制装置60,通过采用上述模块实现控制可穿戴设备的实现机制与上述图4所示实施例的可穿戴设备的控制方法的实现机制相同,详细可以参考上述图4所示实施例的记载,在此不再赘述。
图9为本申请实施例提供另一种可穿戴设备的控制装置的示意图,如图9所示,本实施例的可穿戴设备的控制装置90,具体可以包括接收模块901和振动模块902。
接收模块901,用于可穿戴设备接收所连接的终端发送的振动指示;其中,振动指示为在可穿戴设备与终端同步播放第一多媒体数据的过程中,终端在第一多媒体数据中检测到振动标记时发出的;
振动模块902,用于可穿戴设备根据振动指示进行振动。
进一步地,振动模块902,具体用于:
可穿戴设备的处理器根据振动指示控制至少一个振动马达进行振动。
进一步地,振动指示包含振动起止时间、振动次数和振动类型信息。
本实施例的可穿戴设备的控制装置90,通过采用上述模块实现控制可穿戴设备的实现机制与上述图5所示实施例的可穿戴设备的控制方法的实现机制相同,详细可以参考上述图5所示实施例的记载,在此不再赘述。
图10是本申请实施例提供的执行可穿戴设备的控制方法的电子设备的硬件结构示意图,如图10所示,该电子设备100包括:
一个或多个处理器1001以及存储器1002,图10中以一个处理器1001为例。
处理器1001和存储器1002可以通过总线或者其他方式连接,图10中以通过总线连接为例。
存储器1002作为一种非易失性计算机可读存储介质,可用于存储非易失性软件程序、非易失性计算机可执行程序以及模块,如本申请实施例中的可穿戴设备的控制方法对应的程序指令/模块(例如,附图6至9所示的各个模块)。处理器1001通过运行存储在存储器1002中的非易失性软件程序、指令以及模块,从而执行可穿戴设备的控制装置60,90的各种功能应用以及数据处理,即实现上述方法实施例可穿戴设备的控制方法以及上述装置实施例的各个模块的功能。
存储器1002可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。在一些实施例中,存储器1002可选包括相对于处理器1001远程设置的存储器,这些远程存储器可以通过网络连接至处理器1001。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
所述程序指令/模块存储在所述存储器1002中,当被所述一个或者多个处理器1001执行时,执行上述任意方法实施例中的可穿戴设备的控制方法,例如,执行以上描述的图1中的方法步骤S101和步骤S102,图3中的方法步骤S301至步骤S305,图4中的方法步骤S401至步骤S404,和图5中的方法步骤S501
和步骤S502;也可实现图6中的模块601-602的功能,图7中的模块601-604的功能,图8中的模块601、602、605、606以及607的功能,图9中的模块901-902的功能。
本申请实施例的电子设备100以多种形式存在,在执行图1中的方法步骤S101和步骤S102,图3中的方法步骤S301至步骤S305,和图4中的方法步骤S401至步骤S404,和实现图6中的模块601-602的功能,图7中的模块601-604的功能,图8中的模块601、602、605、606以及607的功能时,上述电子设备100包括但不限于:
(1)移动通信设备:这类设备的特点是具备移动通信功能,并且以提供话音、数据通信为主要目标。这类终端包括:智能手机(例如iPhone)、多媒体手机、功能性手机,以及低端手机等。
(2)超移动个人计算机设备:这类设备属于个人计算机的范畴,有计算和处理功能,一般也具备移动上网特性。这类终端包括:PDA、MID和UMPC设备等,例如iPad。
(3)便携式娱乐设备:这类设备可以显示和播放视频内容,一般也具备移动上网特性。该类设备包括:视频播放器,掌上游戏机,以及智能玩具和便携式车载导航设备。
(4)互联网智能电视,这类设备可以在线播放视频内容。
(5)其他具有视频播放功能和上网功能的电子设备。
本申请实施例的电子设备100以多种形式存在,在执行图5中的方法步骤S501和步骤S502,和图9中的模块901-902的功能时,上述电子设备100为可穿戴设备。
本申请实施例还提供了一种非易失性计算机存储介质,所述计算机存储介质存储有计算机可执行指令,该计算机可执行指令被一个或多个处理器执行,例如图10中的一个处理器1001,可使得上述一个或多个处理器可执行上述任意方法实施例中的可穿戴设备的控制方法,例如,执行以上描述的图1中的方法步骤S101和步骤S102,图3中的方法步骤S301至步骤S305,图4中的方法步骤S401至步骤S404,图5中的方法步骤S501和步骤S502,实现图6中的模块601-602的功能,图7中的模块601-604的功能,图8中的模块601、602、605、
606以及607的功能,图9中的模块901-902的功能。
以上所描述的装置或设备实施例仅仅是示意性的,其中所述作为分离部件说明的模块可以是或者也可以不是物理上分开的,作为模块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模块上。可以根据实际的需要选择其中的部分或者全部模块来实现本实施例方案的目的。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到各实施方式可借助软件加通用硬件平台的方式来实现,当然也可以通过硬件。基于这样的理解,上述技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品可以存储在计算机可读存储介质中,如ROM/RAM、磁碟、光盘等,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)执行各个实施例或者实施例的某些部分所述的方法。
最后应说明的是:以上实施例仅用以说明本申请的技术方案,而非对其限制;在本申请的思路下,以上实施例或者不同实施例中的技术特征之间也可以进行组合,步骤可以以任意顺序实现,并存在如上所述的本申请的不同方面的许多其它变化,为了简明,它们没有在细节中提供;尽管参照前述实施例对本申请进行了详细的说明,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申请各实施例技术方案的范围。
Claims (18)
- 一种可穿戴设备的控制方法,其特征在于,包括:在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对所述第一多媒体数据中的振动标记进行检测;若在所述第一多媒体数据中检测到所述振动标记,向所述可穿戴设备发送振动指示,以便于所述可穿戴设备根据所述振动指示进行振动。
- 根据权利要求1所述的方法,其特征在于,对所述第一多媒体数据中的振动标记进行检测,包括:提取所述第一多媒体数据的头文件;检测所述头文件中是否携带所述振动标记。
- 根据权利要求2所述的方法,其特征在于,对所述第一多媒体数据中的振动标记进行检测之前,包括:在所述头文件中设置所述振动标记;将第二多媒体数据和所述头文件进行压缩编码,以获得所述第一多媒体数据。
- 根据权利要求1所述的方法,其特征在于,所述对第一多媒体数据中的振动标记进行检测,包括:对所述第一多媒体数据的音频通道进行解码,得到所述振动标记。
- 根据权利要求4所述的方法,其特征在于,对所述多媒体数据中的振动标记进行检测之前,包括:为第一多媒体数据创建音频通道,在所述音频通道中设置所述振动标记;将所述音频通道与所述第二多媒体数据进行编码,以获得所述第一多媒体数据。
- 根据权利要求1至5中任一所述的方法,其特征在于,所述振动指示包含振动起止时间、振动次数和振动类型信息中至少一个。
- 一种可穿戴设备的控制方法,其特征在于,包括:接收所连接的终端发送的振动指示;其中,所述振动指示为在所述可穿戴设备与所述终端同步播放第一多媒体数据的过程中,所述终端在所述第一多媒体数据中检测到振动标记时发出的;根据所述振动指示进行振动。
- 根据权利要求7所述的方法,其特征在于,所述振动指示包含振动起止时间、振动次数和振动类型信息中至少一个。
- 根据权利要求7或8所述的方法,其特征在于,根据所述振动指示进行振动,包括:根据所述振动指示控制至少一个振动马达进行振动。
- 一种可穿戴设备的控制装置,其特征在于,包括:检测模块,用于在终端与所连接的可穿戴设备同步播放第一多媒体数据的过程中,对所述第一多媒体数据中的振动标记进行检测;发送模块,用于若在所述第一多媒体数据中检测到所述振动标记,向所述可穿戴设备发送振动指示,以便于所述可穿戴设备根据所述振动指示进行振动。
- 根据权利要求10所述的装置,其特征在于,所述检测模块,具体用于:提取所述第一多媒体数据的头文件;检测所述头文件中是否携带所述振动标记。
- 根据权利要求11所述的装置,其特征在于,所述装置还包括:设置模块,用于在所述头文件中设置所述振动标记;第一编码模块,用于将第二多媒体数据和所述头文件进行压缩编码,以获得所述第一多媒体数据。
- 根据权利要求10所述的装置,其特征在于,所述装置还包括:解码模块,用于对所述第一多媒体数据的音频通道进行解码,得到所述振 动标记。
- 根据权利要求13所述的装置,其特征在于,所述装置还包括:创建模块,用于为第一多媒体数据创建音频通道,在所述音频通道中设置所述振动标记;第二编码模块,将所述音频通道与所述第二多媒体数据进行编码,以获得所述第一多媒体数据。
- 根据权利要求10至14中任一所述的装置,其特征在于,所述振动指示包含振动起止时间、振动次数和振动类型信息中至少一个。
- 一种可穿戴设备的控制装置,其特征在于,包括:接收模块,用于接收所连接的终端发送的振动指示;其中,所述振动指示为在可穿戴设备与所述终端同步播放第一多媒体数据的过程中,所述终端在所述第一多媒体数据中检测到振动标记时发出的;振动模块,用于根据所述振动指示进行振动。
- 根据权利要求16所述的装置,其特征在于,所述振动指示包含振动起止时间、振动次数和振动类型信息。
- 根据权利要求16或17所述的装置,其特征在于,所述振动模块,具体用于:根据所述振动指示控制至少一个振动马达进行振动。
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Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN110196629A (zh) * | 2018-02-27 | 2019-09-03 | 优酷网络技术(北京)有限公司 | 虚拟现实界面展示控制方法及装置 |
| CN111158470A (zh) * | 2019-12-17 | 2020-05-15 | 瑞声科技(新加坡)有限公司 | 控制输出振动信号的方法、装置、计算机设备及存储介质 |
| CN113055739A (zh) * | 2019-12-26 | 2021-06-29 | 青岛海尔多媒体有限公司 | 用于气味特征数据发送、接收的方法、影音播放设备、穿戴设备 |
| US12543000B2 (en) | 2021-10-19 | 2026-02-03 | Samsung Electronics Co., Ltd. | Wearable device for providing multi-modality and operation method thereof |
Families Citing this family (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN105871664A (zh) * | 2015-12-15 | 2016-08-17 | 乐视致新电子科技(天津)有限公司 | 可穿戴设备的控制方法及装置 |
| CN111494962A (zh) * | 2019-01-31 | 2020-08-07 | 致伸科技股份有限公司 | 游戏系统 |
| CN115211820B (zh) * | 2021-04-15 | 2026-02-10 | Oppo广东移动通信有限公司 | 电子配件的唤醒方法、装置、可穿戴设备及电子配件 |
| CN115814401A (zh) * | 2022-12-30 | 2023-03-21 | 苏州端云创新科技有限公司 | 振动控制方法、设备、头戴显示设备、系统及存储介质 |
Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN101409797A (zh) * | 2008-11-26 | 2009-04-15 | 中兴通讯股份有限公司 | 一种多媒体广播特效播放方法及特效播放终端 |
| CN103927205A (zh) * | 2014-03-28 | 2014-07-16 | 方小祥 | 基于脚本触发震动的手持设备视频播放方法 |
| CN104423701A (zh) * | 2013-08-23 | 2015-03-18 | 意美森公司 | 体育事件的触感使能的观看 |
| CN104780403A (zh) * | 2014-03-28 | 2015-07-15 | 方小祥 | 基于脚本的体感视频提供系统及方法 |
| CN105143996A (zh) * | 2013-03-15 | 2015-12-09 | 苹果公司 | 使用无线设备来促进与用户账户的交易 |
| CN105871664A (zh) * | 2015-12-15 | 2016-08-17 | 乐视致新电子科技(天津)有限公司 | 可穿戴设备的控制方法及装置 |
Family Cites Families (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10013857B2 (en) * | 2011-12-21 | 2018-07-03 | Qualcomm Incorporated | Using haptic technologies to provide enhanced media experiences |
| CN102929386B (zh) * | 2012-09-16 | 2019-01-25 | 吴东辉 | 一种动感重现虚拟现实的方法及系统 |
| CN103793063B (zh) * | 2014-03-11 | 2016-06-08 | 哈尔滨工业大学 | 多通道增强现实系统 |
| CN104503084A (zh) * | 2014-12-31 | 2015-04-08 | 青岛歌尔声学科技有限公司 | 具有震动功能的头戴显示器 |
| CN105007369A (zh) * | 2015-06-11 | 2015-10-28 | 广东欧珀移动通信有限公司 | 一种信息提醒的方法及移动终端 |
| CN204745623U (zh) * | 2015-06-11 | 2015-11-11 | 苏州百源软件设计有限公司 | 可穿戴虚拟现实运动头盔及可穿戴虚拟动作游戏系统 |
| CN104857704A (zh) * | 2015-06-11 | 2015-08-26 | 苏州百源软件设计有限公司 | 可穿戴虚拟现实运动头盔及可穿戴虚拟动作游戏系统 |
| CN105468152B (zh) * | 2015-11-24 | 2019-02-19 | 小米科技有限责任公司 | 基于可穿戴设备的终端操作控制方法、装置和设备 |
-
2015
- 2015-12-15 CN CN201510953457.9A patent/CN105871664A/zh active Pending
-
2016
- 2016-09-02 WO PCT/CN2016/097886 patent/WO2017101523A1/zh not_active Ceased
Patent Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN101409797A (zh) * | 2008-11-26 | 2009-04-15 | 中兴通讯股份有限公司 | 一种多媒体广播特效播放方法及特效播放终端 |
| CN105143996A (zh) * | 2013-03-15 | 2015-12-09 | 苹果公司 | 使用无线设备来促进与用户账户的交易 |
| CN104423701A (zh) * | 2013-08-23 | 2015-03-18 | 意美森公司 | 体育事件的触感使能的观看 |
| CN103927205A (zh) * | 2014-03-28 | 2014-07-16 | 方小祥 | 基于脚本触发震动的手持设备视频播放方法 |
| CN104780403A (zh) * | 2014-03-28 | 2015-07-15 | 方小祥 | 基于脚本的体感视频提供系统及方法 |
| CN105871664A (zh) * | 2015-12-15 | 2016-08-17 | 乐视致新电子科技(天津)有限公司 | 可穿戴设备的控制方法及装置 |
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN110196629A (zh) * | 2018-02-27 | 2019-09-03 | 优酷网络技术(北京)有限公司 | 虚拟现实界面展示控制方法及装置 |
| CN111158470A (zh) * | 2019-12-17 | 2020-05-15 | 瑞声科技(新加坡)有限公司 | 控制输出振动信号的方法、装置、计算机设备及存储介质 |
| CN111158470B (zh) * | 2019-12-17 | 2024-02-23 | 瑞声科技(新加坡)有限公司 | 控制输出振动信号的方法、装置、计算机设备及存储介质 |
| CN113055739A (zh) * | 2019-12-26 | 2021-06-29 | 青岛海尔多媒体有限公司 | 用于气味特征数据发送、接收的方法、影音播放设备、穿戴设备 |
| US12543000B2 (en) | 2021-10-19 | 2026-02-03 | Samsung Electronics Co., Ltd. | Wearable device for providing multi-modality and operation method thereof |
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| Publication number | Publication date |
|---|---|
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