WO2022262529A1 - 控制方法、装置、电子设备及存储介质 - Google Patents

控制方法、装置、电子设备及存储介质 Download PDF

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Publication number
WO2022262529A1
WO2022262529A1 PCT/CN2022/094461 CN2022094461W WO2022262529A1 WO 2022262529 A1 WO2022262529 A1 WO 2022262529A1 CN 2022094461 W CN2022094461 W CN 2022094461W WO 2022262529 A1 WO2022262529 A1 WO 2022262529A1
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Prior art keywords
bluetooth
processor
wearable device
state
application
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PCT/CN2022/094461
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English (en)
French (fr)
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张一凡
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Oppo广东移动通信有限公司
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Publication of WO2022262529A1 publication Critical patent/WO2022262529A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L67/00Network arrangements or protocols for supporting network services or applications
    • H04L67/01Protocols
    • H04L67/133Protocols for remote procedure calls [RPC]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/80Services using short range communication, e.g. near-field communication [NFC], radio-frequency identification [RFID] or low energy communication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices

Definitions

  • the embodiment of the present application relates to the technical field of bluetooth, and specifically relates to a control method, device, electronic equipment, and storage medium.
  • a wearable device can integrate a Bluetooth function so as to realize Bluetooth communication with a mobile terminal.
  • wearable devices have a single processor, such as a high-performance central processing unit (CPU, Central Processing Unit) or a microcontroller unit (MCU, Micro Controller Unit), and a high-performance CPU can support more processing performance Highly demanding Bluetooth services, but their power consumption is high, and the microcontroller unit can only support some Bluetooth services that do not require high processing power, but their power consumption is low, and existing wearable devices cannot provide them according to the actual situation.
  • CPU central processing unit
  • MCU Micro Controller Unit
  • the embodiments of the present application are expected to provide a control method, device, electronic equipment, and storage medium.
  • An embodiment of the present application provides a control method applied to a wearable device, the wearable device includes a first processor and a second processor, the first processor is used to run the first system, and the second processor uses for operating the second system; the method comprising:
  • the first system In response to the bluetooth start instruction, in the first state, the first system starts a first bluetooth application; the first bluetooth application supports the first service; the second system starts a second bluetooth application; the second bluetooth The application supports the second service;
  • the first system starts the first Bluetooth application; the first Bluetooth application supports the first service; or, in the second state, the second system starts a third Bluetooth application ;
  • the third Bluetooth application supports the first service and the second service.
  • the response to the Bluetooth start instruction includes:
  • the second system receives a bluetooth start command; the bluetooth start command is used to instruct to start a bluetooth chip; and the bluetooth start command is sent to the first system;
  • the first system receives the Bluetooth activation instruction; responds to the Bluetooth activation instruction, and activates the Bluetooth chip.
  • the method also includes:
  • the first system receives Bluetooth data; and based on a current state, processes the Bluetooth data.
  • the processing of the Bluetooth data based on the current state includes:
  • the first system forwards the Bluetooth data to the second system, and the second system processes the Bluetooth data;
  • the first system forwards the bluetooth data to the routing module on the first processor, and the routing module determines the system to process the bluetooth data .
  • the said routing module determines the system for processing said bluetooth data, including:
  • bluetooth data is data related to the first service, then send the bluetooth data to the first system;
  • bluetooth data is data related to the second service, then send the bluetooth data to the second system.
  • the method also includes:
  • the routing module determines that the Bluetooth data is data related to the second service, the first system wake up the second system to process the bluetooth data by the second system
  • the wearable device includes a standard mode, a high performance mode and a low power consumption mode
  • the wearable device in the first state, works in a standard mode; in the second state, the wearable device works in a high-performance mode or a low-power consumption mode.
  • the wearable device works in a standard mode, including:
  • the wearable device receives a first instruction; the first instruction is used to instruct to switch to the standard mode; the wearable device switches to the standard mode in response to the first instruction;
  • the wearable device works in a high-performance mode or a low-power mode, including:
  • the wearable device receives a second instruction; the second instruction is used to instruct switching to a high-performance mode; the wearable device switches to a high-performance mode in response to the second instruction;
  • the wearable device receives a third instruction; the third instruction is used to instruct switching to a low power consumption mode; the wearable device switches to a low power consumption mode in response to the third instruction model.
  • the requirement of the second processor on the performance level is higher than that of the first processor on the performance level; the requirement of the first processor on the power consumption level is higher than that of the second processor on the power level requirements.
  • An embodiment of the present application provides a control device, which is applied to a wearable device, and the wearable device includes a first processor and a second processor, the first processor is used to run the first system, and the second processor uses For operating the second system, the device includes:
  • the first processing unit is configured to start a first Bluetooth application in a first state in response to a Bluetooth start instruction; the first Bluetooth application supports the first service; and start a second Bluetooth application; the second Bluetooth application supports second business;
  • the second processing unit is configured to start the first Bluetooth application in the second state; the first Bluetooth application supports the first service; or, in the second state, start a third Bluetooth application; the The third Bluetooth application supports the first service and the second service.
  • An embodiment of the present application provides an electronic device, including: a processor and a memory for storing a computer program that can run on the processor,
  • An embodiment of the present application provides a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, the steps of any one of the above methods are implemented.
  • the control method, device, electronic device, and storage medium provided in the embodiments of the present application are applied to wearable devices, the wearable device includes a first processor and a second processor, and the first processor is used to run the first system , the second processor is used to run the second system; the method includes: in response to a bluetooth start instruction, in a first state, the first system starts a first bluetooth application; the first bluetooth application supports the first business; the second system starts a second bluetooth application; the second bluetooth application supports a second service; in the second state, the first system starts the first bluetooth application; the first bluetooth application supports The first service; or, in the second state, the second system starts a third Bluetooth application; the third Bluetooth application supports the first service and the second service.
  • the wearable device has a dual-system Bluetooth function, and can determine whether the first system runs the Bluetooth application or the second system runs the Bluetooth application according to the current state, or, the Both the first system and the second system run Bluetooth applications. Since the services supported by the first Bluetooth application enabled by the first system are different from the services supported by the second Bluetooth application enabled by the second system, the wearable device It can provide Bluetooth function with high performance and low power consumption in combination with the actual situation.
  • FIG. 1 is a schematic diagram of a bluetooth solution in the related art
  • FIG. 2 is a schematic diagram of another bluetooth solution in the related art
  • Fig. 3a is a schematic diagram of a system architecture for the application of the control method provided by the embodiment of the present application;
  • Fig. 3b is a schematic diagram of another system architecture for the application of the control method provided by the embodiment of the present application.
  • FIG. 4 is a schematic diagram of the implementation flow of the control method of the embodiment of the present application.
  • FIG. 5 is a schematic diagram of a specific implementation flow chart of the control method of the embodiment of the present application.
  • FIG. 6 is a schematic diagram of a connection structure between the first processor and the second processor according to the embodiment of the present application.
  • FIG. 7 is a schematic diagram of a first Bluetooth application function implemented by a wearable device according to an embodiment of the present application.
  • FIG. 8 is a schematic diagram of a wearable device implementing a second Bluetooth application function according to an embodiment of the present application.
  • FIG. 9 is a schematic diagram of a specific implementation flow diagram of the control method of the embodiment of the present application.
  • FIG. 10 is a schematic diagram of a specific implementation flow chart of the control method of the embodiment of the present application III;
  • FIG. 11 is a schematic diagram of displaying working modes on a display interface of a wearable device according to an embodiment of the present application.
  • FIG. 12 is a schematic diagram of an implementation flow of a wearable device sending and receiving Bluetooth data according to an embodiment of the present application
  • Fig. 13 is a schematic diagram of the composition and structure of the control device of the embodiment of the present application.
  • FIG. 14 is a schematic diagram of the composition and structure of an electronic device according to an embodiment of the present application.
  • the dual-core system architecture supported by mainstream wearable devices is divided into high-performance processors (such as Qualcomm platform Qualcomm processors) and low-performance processors (such as MCU processors), and the high-performance processors run Android (Android) System, low-performance processor runs real-time operating system (RTOS, Real Time Operating System) system.
  • high-performance processors such as Qualcomm platform Qualcomm processors
  • low-performance processors such as MCU processors
  • RTOS Real Time Operating System
  • Bluetooth chip is connected to a high-performance processor
  • the Bluetooth application runs on the high-performance processor, so as to provide a high-performance user experience.
  • the Bluetooth chip is connected to the low-performance processor, and the Bluetooth application runs on the low-performance processor, so as to provide a user experience with low power consumption.
  • high performance and low power consumption cannot be achieved at the same time.
  • the Bluetooth chip is hung on a high-performance processor, which can make full use of the high-performance features of the high-performance processor, but it brings about increased power consumption.
  • the Bluetooth chip is hung on the low-performance processor, which can make full use of the low-power consumption characteristics of the low-performance processor, but the performance is relatively weak.
  • OTA Over the Air Technology
  • low-performance processors appear to have very low performance.
  • the high performance of a high-performance processor and the low power consumption of a low-performance processor cannot be utilized at the same time, and only one of the two can be used, resulting in a waste of resources.
  • the wearable device includes a first processor and a second processor; the first processor is used to run the first system, and the second processor is used to run the second system ;
  • the first system starts the first Bluetooth application; the first Bluetooth application supports the first service; the second system starts the second Bluetooth application; the second The Bluetooth application supports the second service; in the second state, the first system starts the first Bluetooth application; the first Bluetooth application supports the first service; or, in the second state, the first The second system starts a third Bluetooth application; the third Bluetooth application supports the first service and the second service.
  • Figure 3a is a schematic diagram of a system architecture for the application of the control method provided by the embodiment of the present application. As shown in Figure 3a, the system includes:
  • the bluetooth chip is mounted on the first processor.
  • the first processor is used to run the first system.
  • the second processor is used to run the second system.
  • the first processor may refer to a low-performance processor, that is, a relatively low-level single-chip microcomputer, which supports simple functions and has the advantage of extremely low power consumption and serves for battery life.
  • the second processor may refer to a high-performance processor, that is, a processor with a more advanced chip, more functional modules, and stronger processing capabilities, serving functions.
  • the requirement of the second processor on the performance level is higher than that of the first processor on the performance level; the requirement of the first processor on the power consumption level is higher than that of the second processor on the power level requirements.
  • FIG. 3b is a schematic diagram of another system architecture for the application of the control method provided by the embodiment of the present application. As shown in Figure 3b, the system includes:
  • the bluetooth chip is mounted on the second processor.
  • the first processor is used to run the first system.
  • the second processor is used to run the second system.
  • the wearable device adopts a dual-system architecture, that is, a hardware architecture based on two processor chips, each processor runs an independent operating system, and the two systems interact with each other to complete the Bluetooth function of the wearable device.
  • Fig. 4 is a schematic diagram of the implementation flow of the control method of the embodiment of the present application, the control method is applied to a wearable device; the wearable device includes a first processor and a second processor, and the first processor is used to run the first system, the second processor is used to run the second system; as shown in Figure 4, the method includes steps 401 to 402:
  • Step 401 In response to a Bluetooth start instruction, in a first state, the first system starts a first Bluetooth application; the first Bluetooth application supports a first service; the second system starts a second Bluetooth application; the The second Bluetooth application supports the second service.
  • the wearable device also includes a bluetooth chip.
  • the bluetooth chip can be mounted on the first processor to make full use of the low power consumption of the processor; it can also be mounted on the second processor to make full use of the high performance of the processor characteristic.
  • the wearable device may refer to a smart watch, and so on.
  • the Bluetooth activation instruction may refer to a user's touch operation instruction received by the wearable device, or may refer to an instruction for invoking a Bluetooth function within a system of the wearable device.
  • the wearable device may be in the first state or in the second state.
  • the wearable device may include three modes: a standard mode, a high performance mode and a low power consumption mode.
  • the wearable device works in a standard mode (also called a hybrid mode).
  • a standard mode also called a hybrid mode
  • the standard mode means that the Bluetooth application runs on the high-performance processor (the second processor) and the low-performance processor (the first processor) at the same time.
  • the first Bluetooth application opened by the first processor can be used for the second A business (such as receiving mobile phone message notifications, etc.), can also use the second Bluetooth application opened by the second processor to perform a second business (such as Bluetooth Internet access, downloading applications, OTA upgrades, etc.).
  • Step 402 In the second state, the first system starts the first Bluetooth application; the first Bluetooth application supports the first service; or, in the second state, the second system starts the first Bluetooth application; Three Bluetooth applications; the third Bluetooth application supports the first service and the second service.
  • the wearable device works in a high-performance mode or a low-power consumption mode.
  • the low power consumption mode refers to that the bluetooth application runs on a low-performance processor (the first processor). transmission of physiological data, etc.).
  • the high-performance mode means that the Bluetooth application runs on the high-performance processor (the second processor). Physiological data, etc.) and secondary services (call forwarding, Bluetooth Internet access, audio playback, downloading applications, OTA upgrades, etc.).
  • the Bluetooth application can run on the second processor (high-performance processor) to meet high-performance requirements; the Bluetooth application can also run on the first processor (low-performance processor) , to meet low power consumption requirements; of course, according to specific needs, Bluetooth applications can run on the second processor (high-performance processor) and the first processor (low-performance processor) at the same time, so as to make full use of the second processor (high performance processor) high performance and the first processor (low performance processor) low power consumption characteristics to provide better user experience.
  • the second processor high-performance processor
  • the first processor low-performance processor
  • RPC Remote Procedure Call
  • the following embodiments are described by taking the Bluetooth chip mounted on the first processor (low-performance processor) as an example.
  • Fig. 5 is a schematic diagram of a specific implementation flow of the control method of the embodiment of the present application; as shown in Fig. 5, the method includes steps 501 to 506:
  • Step 501 the second system receives a Bluetooth activation instruction; the Bluetooth activation instruction is used to instruct activation of a Bluetooth chip; the second system sends the Bluetooth activation instruction to the first system.
  • the first system may refer to an operating system running on the first processor (low-performance processor), such as an RTOS system.
  • the second system may refer to an operating system running on the second processor (high-performance processor), such as an Android system.
  • the user can trigger the button to turn on the Bluetooth on the display interface of the wearable device, so that the second system can receive the Bluetooth start instruction.
  • the second processor may send the Bluetooth start instruction to the first processor (low-performance processor) through a "dual-core communication device", as shown in FIG. 6 .
  • Step 502 The first system receives the Bluetooth start command; responds to the Bluetooth start command, and turns on the Bluetooth chip.
  • the turning on the Bluetooth chip may mean that the first system initializes the Bluetooth protocol stack.
  • Step 503 The first system judges the state of the wearable device; if the wearable device is in the first state, execute step 504.
  • the wearable device when the wearable device is in the first state, the wearable device can work in the standard mode.
  • Step 504 the first system opens a first Bluetooth application.
  • the opening of the first Bluetooth application by the first system may mean that the first system initializes the first service corresponding to the first Bluetooth application.
  • the wearable device can use the first Bluetooth application to perform the first service, such as receiving a message notification sent by a mobile phone, and displaying the received message notification on the display interface , as shown in Figure 7.
  • Step 505 the second system waits for the first system to turn on the bluetooth chip, and then judges the state of the wearable device; if the wearable device is in the first state, execute step 506.
  • Step 506 the second system opens a second Bluetooth application.
  • the opening of the second Bluetooth application by the second system may refer to the initialization of the second service corresponding to the second Bluetooth application by the second system.
  • the wearable device can use the second bluetooth application to carry out the second business, such as call forwarding, and transfer the mobile phone number, user name and other information displayed on the display interface, as shown in Figure 8.
  • the wearable device can work in a corresponding mode. If the wearable device works in the standard mode, the two characteristics of high performance and low power consumption can be taken into account.
  • Fig. 9 is a schematic diagram of a specific implementation process of the control method of the embodiment of the present application; as shown in Fig. 9, the method includes steps 901 to 904:
  • Step 901 the second system receives a Bluetooth activation instruction; the Bluetooth activation instruction is used to instruct activation of a Bluetooth chip; the second system sends the Bluetooth activation instruction to the first system.
  • Step 902 The first system receives the Bluetooth start instruction; responds to the Bluetooth start instruction, and turns on the Bluetooth chip.
  • the turning on the Bluetooth chip may mean that the first system initializes the Bluetooth protocol stack.
  • Step 903 The first system judges the state of the wearable device; if the wearable device is in the second state, execute step 904.
  • the wearable device when the wearable device is in the second state, the wearable device can work in a low power consumption mode.
  • Step 904 The first system opens a first Bluetooth application.
  • the opening of the first Bluetooth application by the first system may mean that the first system initializes the first service corresponding to the first Bluetooth application.
  • the wearable device can work in a corresponding mode. If the wearable device works in a low power consumption mode, the experience in terms of power consumption is better.
  • Fig. 10 is a schematic diagram of a specific implementation process of the control method of the embodiment of the present application; as shown in Fig. 10, the method includes steps 1001 to 1003:
  • Step 1001 the second system receives a Bluetooth activation instruction; the Bluetooth activation instruction is used to instruct activation of a Bluetooth chip; the second system sends the Bluetooth activation instruction to the first system.
  • Step 1002 the first system receives the bluetooth start command; and responds to the bluetooth start command, and turns on the bluetooth chip; the second system waits for the first system to turn on the bluetooth chip, and judges the state of the wearable device; If the wearable device is in the second state, step 1003 is executed.
  • the wearable device when the wearable device is in the second state, the wearable device can work in a high-performance mode.
  • Step 1003 the second system opens a third bluetooth application.
  • the opening of the third Bluetooth application by the second system may mean that the second system initializes the first service and the second service corresponding to the third Bluetooth application.
  • the wearable device can work in a corresponding mode. If the wearable device works in a high-performance mode, the performance experience will be better.
  • the user can also select a specified mode in the "Mode Management" option displayed on the display interface of the wearable device.
  • the wearable device when the wearable device is in the first state, If the first system detects that the current working mode is the standard mode, the first system opens the first Bluetooth application; if the second system detects that the current working mode is the standard mode, the second system opens the first bluetooth application. Two Bluetooth applications.
  • the wearable device is in the second state, if the first system detects that the current working mode is a low power consumption mode, the first system opens the first Bluetooth application.
  • the wearable device is in the second state, if the second system detects that the current working mode is a high-performance mode, the second system may open a third Bluetooth application.
  • the switch of "mode selection” can also be displayed on the display interface of the wearable device. In this way, when the user touches the button corresponding to the corresponding mode After the switch is turned on, the wearable device can detect the current working mode.
  • the wearable device receives a first instruction; the first instruction is used to instruct to switch to the standard mode; the wearable device switches to the standard mode in response to the first instruction ;
  • the wearable device receives a second instruction; the second instruction is used to instruct switching to a high-performance mode; the wearable device switches to a high-performance mode in response to the second instruction;
  • the wearable device receives a third instruction; the third instruction is used to instruct switching to a low power consumption mode; the wearable device switches to a low power consumption mode in response to the third instruction model.
  • Fig. 12 is a schematic diagram of the implementation flow of the wearable device sending and receiving Bluetooth data according to the embodiment of the present application; as shown in Fig. 12, the method includes steps 1201 to 1205:
  • Step 1201 the first system receives the bluetooth data and packs the data.
  • the first system in the wearable device is responsible for receiving Bluetooth data through the Bluetooth chip and grouping them into packets.
  • the bluetooth data may specifically refer to a notification message sent by a mobile terminal such as a mobile phone.
  • Step 1202 If the wearable device is in the second state, execute step 1203 or step 1204; if the wearable device is in the first state, execute step 1205.
  • Step 1203 The first system processes the Bluetooth data packet and displays it.
  • Step 1204 The first system forwards the Bluetooth data packet to the second system, and the second system processes the Bluetooth data packet and displays it.
  • Step 1205 the first system forwards the bluetooth data packet to the routing module on the first processor, so that the routing module determines a system for processing the bluetooth data packet.
  • the first system forwards the Bluetooth data to a routing module on the first processor. If the routing module determines that the Bluetooth data is data related to the first service, the Bluetooth data is processed by the first system.
  • the first system forwards the Bluetooth data to a routing module on the first processor. If the routing module determines that the Bluetooth data is data related to the second service, the Bluetooth data is processed by the second system.
  • the first system forwards the Bluetooth data to a routing module on the first processor.
  • the routing module determines that the Bluetooth data is data related to the second service, the first system Wake up the second system to process the bluetooth data by the second system.
  • the second system starts the Bluetooth application.
  • the first system starts the Bluetooth application.
  • the first processor low-performance processor
  • both the second system and the first system have started the bluetooth application, and after the first processor (low-performance processor) receives the data packet through the bluetooth chip, the first system only It cannot be judged whether it is sent to the second system or processed by itself, so it is necessary to introduce a software module called "routing module" on the first processor, and this software module determines that the system that processes the Bluetooth data is the first system Or the second system.
  • the first processor low-performance processor
  • the first processor when sending bluetooth data to a terminal such as a mobile phone, the first processor sends bluetooth data through the bluetooth chip; the second processor sends the bluetooth data to be sent to the first processor , for the first processor to send the Bluetooth data.
  • the wearable device has a dual-system Bluetooth function, and can determine whether the first system runs the Bluetooth application or the second system runs the Bluetooth application according to the current state of the wearable device, or , both the first processor and the second processor run a Bluetooth application, so that the wearable device can provide experience with high performance and low power consumption in combination with actual conditions.
  • the embodiment of the present application further provides a control device, which is set on a wearable device, and the wearable device includes a first processor and a second processor, and the first processor is used to A first system is run, and the second processor is used to run a second system.
  • Figure 13 is a schematic diagram of the composition and structure of the control device of the embodiment of the present application; as shown in Figure 13, the device includes:
  • the first processing unit 131 is configured to start a first Bluetooth application in a first state in response to a Bluetooth start instruction; the first Bluetooth application supports a first service; and start a second Bluetooth application; the second Bluetooth application support secondary business;
  • the second processing unit 132 is configured to start the first Bluetooth application in the second state; the first Bluetooth application supports the first service; or, in the second state, start the third Bluetooth application; The third Bluetooth application supports the first service and the second service.
  • the second processing unit 132 is further configured to receive a Bluetooth start command; the Bluetooth start command is used to instruct to start a Bluetooth chip; and send the Bluetooth start command to the first processing unit 131;
  • the first processing unit 131 is further configured to receive the Bluetooth activation instruction; and activate the Bluetooth chip in response to the Bluetooth activation instruction.
  • the first processing unit 131 is further configured to: receive Bluetooth data; and process the Bluetooth data based on a current state.
  • the first processing unit 131 is specifically configured to:
  • the Bluetooth data is forwarded to the second processing unit 132, and the Bluetooth data is processed by the second processing unit 132;
  • the bluetooth data is forwarded to a routing module on the first processor, and the routing module determines a system for processing the bluetooth data.
  • the routing module is configured to send the Bluetooth data to the first processing unit 131 if the Bluetooth data is data related to the first service, and the first The processing unit 131 processes the bluetooth data; if the bluetooth data is data related to the second service, the bluetooth data is sent to the second processing unit 132, and the second processing unit 132 Process the Bluetooth data.
  • the routing module is specifically configured to: when the first system is in the running state and the second system is in the dormant state, if it is determined that the Bluetooth data is data related to the second service, then by The first system wakes up the second system to process the bluetooth data by the second system.
  • the wearable device includes a standard mode, a high-performance mode and a low-power mode
  • the wearable device in the first state, works in a standard mode; in the second state, the wearable device works in a high-performance mode or a low-power consumption mode.
  • the wearable device works in a standard mode, including:
  • the wearable device receives a first instruction; the first instruction is used to instruct to switch to the standard mode; the wearable device switches to the standard mode in response to the first instruction;
  • the wearable device works in a high-performance mode or a low-power mode, including:
  • the wearable device receives a second instruction; the second instruction is used to instruct switching to a high-performance mode; the wearable device switches to a high-performance mode in response to the second instruction;
  • the wearable device receives a third instruction; the third instruction is used to instruct switching to a low power consumption mode; the wearable device switches to a low power consumption mode in response to the third instruction model.
  • the second processor has a higher requirement on the performance level than the first processor; the first processor has higher requirements on the power consumption level than the second processor The requirements of the device on the power consumption level.
  • the first processing unit 131, the second processing unit 132, and the routing module can be realized by a processor in the device; the processor can be a central processing unit (CPU, Central Processing Unit), digital signal processing Device (DSP, Digital Signal Processor), Microcontroller Unit (MCU, Microcontroller Unit) or Programmable Gate Array (FPGA, Field-Programmable Gate Array).
  • CPU Central Processing Unit
  • DSP Digital Signal Processor
  • MCU Microcontroller Unit
  • FPGA Field-Programmable Gate Array
  • FIG. 14 is a schematic diagram of the hardware composition structure of the terminal in the embodiment of the present application.
  • the electronic device 140 includes a memory 143 and a processor 142 And a computer program stored in the memory 143 and operable on the processor 142; when the processor 142 executes the program, implements the methods provided by one or more of the above technical solutions.
  • the electronic device 140 also includes a communication interface 141, which is used for information exchange with other devices; meanwhile, various components in the electronic device 140 are coupled together through the bus system 144. It can be appreciated that the bus system 144 is configured to enable connection communication between these components.
  • the bus system 144 includes not only a data bus, but also a power bus, a control bus, and a status signal bus.
  • the memory 143 in this embodiment may be a volatile memory or a non-volatile memory, and may also include both volatile and non-volatile memories.
  • the non-volatile memory can be read-only memory (ROM, Read Only Memory), programmable read-only memory (PROM, Programmable Read-Only Memory), erasable programmable read-only memory (EPROM, Erasable Programmable Read-Only Memory) Only Memory), Electrically Erasable Programmable Read-Only Memory (EEPROM, Electrically Erasable Programmable Read-Only Memory), Magnetic Random Access Memory (FRAM, ferromagnetic random access memory), Flash Memory (Flash Memory), Magnetic Surface Memory , CD, or CD-ROM (Compact Disc Read-Only Memory); magnetic surface storage can be disk storage or tape storage.
  • the volatile memory may be random access memory (RAM, Random Access Memory), which is used as an external cache.
  • RAM random access memory
  • RAM Random Access Memory
  • many forms of RAM are available, such as Static Random Access Memory (SRAM, Static Random Access Memory), Synchronous Static Random Access Memory (SSRAM, Synchronous Static Random Access Memory), Dynamic Random Access Memory Memory (DRAM, Dynamic Random Access Memory), synchronous dynamic random access memory (SDRAM, Synchronous Dynamic Random Access Memory), double data rate synchronous dynamic random access memory (DDRSDRAM, Double Data Rate Synchronous Dynamic Random Access Memory), enhanced Synchronous Dynamic Random Access Memory (ESDRAM, Enhanced Synchronous Dynamic Random Access Memory), Synchronous Link Dynamic Random Access Memory (SLDRAM, SyncLink Dynamic Random Access Memory), Direct Memory Bus Random Access Memory (DRRAM, Direct Rambus Random Access Memory ).
  • SRAM Static Random Access Memory
  • SSRAM Synchronous Static Random Access Memory
  • DRAM Dynamic Random Access Memory
  • SDRAM Synchronous Dynamic Random Access Memory
  • the methods disclosed in the foregoing embodiments of the present application may be applied to the processor 142 or implemented by the processor 142 .
  • the processor 142 may be an integrated circuit chip with signal processing capability. In the implementation process, each step of the above-mentioned method may be completed by an integrated logic circuit of hardware in the processor 142 or an instruction in the form of software.
  • the aforementioned processor 142 may be a general-purpose processor, DSP, or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, and the like.
  • the processor 142 may implement or execute various methods, steps, and logic block diagrams disclosed in the embodiments of the present application.
  • a general purpose processor may be a microprocessor or any conventional processor or the like.
  • the steps of the method disclosed in the embodiments of the present application may be directly implemented by a hardware decoding processor, or implemented by a combination of hardware and software modules in the decoding processor.
  • the software module may be located in a storage medium, and the storage medium is located in a memory, and the processor 142 reads the information in the memory, and completes the steps of the foregoing method in combination with its hardware.
  • the embodiment of the present application also provides a storage medium, specifically a computer storage medium, more specifically a computer-readable storage medium.
  • Computer instructions that is, computer programs, are stored therein, and when the computer instructions are executed by a processor, the methods provided by one or more of the above technical solutions are provided.
  • the disclosed methods and smart devices can be implemented in other ways.
  • the device embodiments described above are only illustrative.
  • the division of the units is only a logical function division.
  • the mutual coupling, or direct coupling, or communication connection between the various components shown or discussed may be through some interfaces, and the indirect coupling or communication connection of devices or units may be in electrical, mechanical or other forms. of.
  • the units described above as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units; Part or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
  • each functional unit in each embodiment of the present application can be integrated into one processing unit, or each unit can be used as a single unit, or two or more units can be integrated into one unit; the above-mentioned integration
  • the unit can be realized in the form of hardware or in the form of hardware plus software functional unit.
  • the above-mentioned integrated units of the present application are realized in the form of software function modules and sold or used as independent products, they can also be stored in a computer-readable storage medium.
  • the technical solution of the embodiment of the present application is essentially or the part that contributes to the prior art can be embodied in the form of a software product.
  • the computer software product is stored in a storage medium and includes several instructions for Make a computer device (which may be a personal computer, a terminal, or a network device, etc.) execute all or part of the methods described in the various embodiments of the present application.
  • the aforementioned storage medium includes: various media capable of storing program codes such as removable storage devices, ROM, RAM, magnetic disks or optical disks.

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Abstract

本申请实施例公开了一种控制方法、装置、电子设备及存储介质。其中,应用于可穿戴设备,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统,方法包括:响应于蓝牙启动指令,在第一状态下,所述第一系统启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;所述第二系统启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;在第二状态下,所述第一系统启动所述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,所述第二系统启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。

Description

控制方法、装置、电子设备及存储介质
相关申请的交叉引用
本申请基于申请号为202110661501.4、申请日为2021年06月15日的中国专利申请提出,并要求该中国专利申请的优先权,该中国专利申请的全部内容在此以全文引入的方式引入本申请。
技术领域
本申请实施例涉及蓝牙技术领域,具体涉及一种控制方法、装置、电子设备及存储介质。
背景技术
目前,随着可穿戴技术的快速发展,可穿戴设备集成的功能越来越强大。例如,可穿戴设备可以集成蓝牙功能,从而能够与移动终端实现蓝牙通信。通常,可穿戴设备具备的是单一处理器,例如高性能的中央处理器(CPU,Central Processing Unit)或者微控制器单元(MCU,Micro Controller Unit),高性能CPU能支持较多的对处理性能要求较高的蓝牙业务,但是其功耗较高,微控制器单元只能支持部分对处理能力要求不高的蓝牙业务,但是其功耗较低,现有的可穿戴设备无法根据实际情况提供兼顾高性能和低功耗的蓝牙功能。
发明内容
有鉴于此,本申请实施例期望提供一种控制方法、装置、电子设备及存储介质。
本申请的技术方案是这样实现的:
本申请实施例提供一种控制方法,应用于可穿戴设备,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统;所述方法包括:
响应于蓝牙启动指令,在第一状态下,所述第一系统启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;所述第二系统启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;
在第二状态下,所述第一系统启动所述第一蓝牙应用;所述第一蓝牙应用支持所述 第一业务;或者,在第二状态下,所述第二系统启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。
上述方案中,所述响应于蓝牙启动指令,包括:
所述第二系统接收蓝牙启动指令;所述蓝牙启动指令用于指示启动蓝牙芯片;将所述蓝牙启动指令发送给所述第一系统;
所述第一系统接收所述蓝牙启动指令;响应所述蓝牙启动指令,启动蓝牙芯片。
上述方案中,所述方法还包括:
所述第一系统接收蓝牙数据;并基于当前的状态,处理所述蓝牙数据。
上述方案中,所述基于当前的状态,处理所述蓝牙数据,包括:
在所述可穿戴设备处于第二状态的情况下,由所述第一系统处理所述蓝牙数据;
或者,
在所述可穿戴设备处于第二状态的情况下,所述第一系统将所述蓝牙数据转发给所述第二系统,由所述第二系统处理所述蓝牙数据;
或者,
在所述可穿戴设备处于第一状态的情况下,所述第一系统将所述蓝牙数据转发给所述第一处理器上的路由模块,由所述路由模块确定处理所述蓝牙数据的系统。
上述方案中,所述由所述路由模块确定处理所述蓝牙数据的系统,包括:
若所述蓝牙数据是与所述第一业务相关的数据,则将所述蓝牙数据发送至所述第一系统;
若所述蓝牙数据是与所述第二业务相关的数据,则将所述蓝牙数据发送至所述第二系统。
上述方案中,所述方法还包括:
在所述第一系统处于运行状态,所述第二系统处于休眠状态的情况下,如果所述路由模块确定所述蓝牙数据是与所述第二业务相关的数据,则由所述第一系统将所述第二系统唤醒,以由所述第二系统进行处理所述蓝牙数据
上述方案中,所述可穿戴设备包括标准模式、高性能模式和低功耗模式;
其中,在所述第一状态下,所述可穿戴设备工作在标准模式;在所述第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式。
上述方案中,
所述在所述第一状态下,所述可穿戴设备工作在标准模式,包括:
在所述第二状态下,所述可穿戴设备接收第一指令;所述第一指令用于指示切换至标准模式;所述可穿戴设备响应所述第一指令,切换至标准模式;
所述在所述第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式,包括:
在所述第一状态下,所述可穿戴设备接收第二指令;所述第二指令用于指示切换至高性能模式;所述可穿戴设备响应所述第二指令,切换至高性能模式;
或者,
在所述第一状态下,所述可穿戴设备接收第三指令;所述第三指令用于指示切换至低功耗模式;所述可穿戴设备响应所述第三指令,切换至低功耗模式。
上述方案中,所述第二处理器对性能级别的要求高于所述第一处理器对性能级别的要求;所述第一处理器对功耗级别的要求高于所述第二处理器对功耗级别的要求。
本申请实施例提供一种控制装置,应用于可穿戴设备,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统,所述装置包括:
第一处理单元,用于响应于蓝牙启动指令,在第一状态下,启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;并启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;
第二处理单元,用于在第二状态下,启动所述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。
本申请实施例提供一种电子设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
其中,所述处理器用于运行所述计算机程序时,执行所述程序时实现上述任一方法的步骤。
本申请实施例提供一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行所述程序时实现上述任一方法的步骤。
本申请实施例提供的控制方法、装置、电子设备及存储介质,应用于可穿戴设备,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统;所述方法包括:响应于蓝牙启动指令,在第一状态下,所述第一系统启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;所述第二系统启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;在第二状态下,所述第一系统启动所 述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,所述第二系统启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。采用本申请实施例的技术方案,可穿戴设备具备的是双系统蓝牙功能,并可以根据当前的状态确定是所述第一系统运行蓝牙应用还是所述第二系统运行蓝牙应用,或者,所述第一系统和所述第二系统均运行蓝牙应用,由于所述第一系统开启的第一蓝牙应用支持的业务和所述第二系统开启的第二蓝牙应用支持的业务不同,因此可穿戴设备可以结合实际情况提供兼顾高性能和低功耗的蓝牙功能。
附图说明
图1是相关技术中一种蓝牙方案的示意图;
图2是相关技术中又一种蓝牙方案的示意图;
图3a是本申请实施例提供的控制方法应用的一种系统架构示意图;
图3b是本申请实施例提供的控制方法应用的另外一种系统架构示意图;
图4为本申请实施例控制方法的实现流程示意图;
图5为本申请实施例控制方法的具体实现流程示意图一;
图6为本申请实施例所述第一处理器和所述第二处理器的连接结构示意图;
图7为本申请实施例可穿戴设备实现第一蓝牙应用功能的示意图;
图8为本申请实施例可穿戴设备实现第二蓝牙应用功能的示意图;
图9为本申请实施例控制方法的具体实现流程示意图二;
图10为本申请实施例控制方法的具体实现流程示意图三;
图11为本申请实施例在可穿戴设备的显示界面显示工作模式的示意图;
图12为本申请实施例可穿戴设备收发蓝牙数据的实现流程示意图;
图13为本申请实施例控制装置的组成结构示意图;
图14为本申请实施例电子设备的组成结构示意图。
具体实施方式
在对本申请实施例的技术方案进行详细说明之前,首先对相关技术进行介绍说明。
相关技术中,主流的可穿戴设备支持的双核系统架构中分高性能处理器(例如高通平台骁龙处理器)和低性能处理器(例如MCU处理器),高性能处理器运行安卓(Android)系统,低性能处理器运行实时操作(RTOS,Real Time Operating System) 系统。现有的双核系统,蓝牙方案有两种。第一种方案,如图1所示,蓝牙芯片挂在高性能处理器,并且蓝牙应用运行在高性能处理器,以提供高性能的用户体验。第二种方案,如图2所示,蓝牙芯片挂在低性能处理器,并且蓝牙应用运行在低性能处理器,以提供低功耗的用户体验。但是,高性能和低功耗两者不能兼得。
综上所述,针对第一种方案,蓝牙芯片挂在高性能处理器,可以充分利用高性能处理器的高性能特性,但是带来的却是功耗增加。在接收手机的消息通知这种场景下,更多的考虑是能耗,而不是性能。针对第二种方案,蓝牙芯片挂在低性能处理器,可以充分利用低性能处理器的低功耗特性,但是性能却相对比较弱。在下载APP、空中下载技术(OTA,Over the Air Technology)升级这种场景下,低性能处理器就显得性能很低。现有的双核设备中,不能同时利用高性能处理器的高性能和低性能处理器的低功耗特性,只能二选一,造成了资源浪费。
基于此,在本申请的各种实施例中,可穿戴设备包括第一处理器和第二处理器;所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统;响应于蓝牙启动指令,在第一状态下,所述第一系统启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;所述第二系统启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;在第二状态下,所述第一系统启动所述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,所述第二系统启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。
下面结合附图及具体实施例对本申请作进一步详细的说明。
以蓝牙芯片挂载在低性能处理器上为例进行说明,图3a是本申请实施例提供的控制方法应用的一种系统架构示意图,如图3a所示,系统包括:
蓝牙芯片,挂载在第一处理器。
第一处理器,用于运行第一系统。
第二处理器,用于运行第二系统。
可以理解的是,所述第一处理器可以是指低性能处理器,即芯片相对低级的单片机,支持的功能简单,优点是功耗极低,服务于续航。所述第二处理器可以是指高性能处理器,即芯片更为高级,功能模块更为丰富,处理能力更强的处理器,服务于功能。
也就是说,所述第二处理器对性能级别的要求高于所述第一处理器对性能级别的要求;所述第一处理器对功耗级别的要求高于所述第二处理器对功耗级别的要求。
以蓝牙芯片挂载在高性能处理器上为例进行说明,图3b是本申请实施例提供的控 制方法应用的又一种系统架构示意图,如图3b所示,系统包括:
蓝牙芯片,挂载在第二处理器。
第一处理器,用于运行第一系统。
第二处理器,用于运行第二系统。
可以理解的是,可穿戴设备采用的是双系统架构,即基于两个处理器芯片的硬件架构,每个处理器运行一个独立操作系统,两个系统间互相交互完成可穿戴设备的蓝牙功能。
图4为本申请实施例控制方法的实现流程示意图,所述控制方法应用于可穿戴设备;所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统;如图4所示,所述方法包括步骤401至步骤402:
步骤401:响应于蓝牙启动指令,在第一状态下,所述第一系统启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;所述第二系统启动第二蓝牙应用;所述第二蓝牙应用支持第二业务。
可以理解的是,所述可穿戴设备还包括蓝牙芯片。所述蓝牙芯片可以挂载在所述第一处理器上,以充分利用该处理器的低功耗特性;还可以挂载在所述第二处理器上,以充分利用该处理器的高性能特性。
可以理解的是,所述可穿戴设备可以是指智能手表,等等。
可以理解的是,所述蓝牙启动指令可以是指所述可穿戴设备接收的用户的触控操作指令,也可以是指所述可穿戴设备的系统内部调用蓝牙功能的指令。
可以理解的是,所述可穿戴设备可以处于第一状态,也可以处于第二状态。
可以理解的是,所述可穿戴设备可以包括标准模式、高性能模式和低功耗模式共三种模式。
具体地,在第一状态下,所述可穿戴设备工作在标准模式(又称为混动模式)。其中,
标准模式,是指蓝牙应用同时在高性能处理器(第二处理器)和低性能处理器(第一处理器)运行,此模式下,可以使用第一处理器开启的第一蓝牙应用进行第一业务(例如接收手机的消息通知等业务),也可以使用第二处理器开启的第二蓝牙应用进行第二业务(例如蓝牙上网、下载应用和OTA升级等业务)。
步骤402:在第二状态下,所述第一系统启动所述第一蓝牙应用;所述第一蓝牙应 用支持所述第一业务;或者,在第二状态下,所述第二系统启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。
可以理解的是,在第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式。其中,
低功耗模式,是指蓝牙应用在低性能处理器(第一处理器)运行,此模式下,可以使用第一处理器开启的第一蓝牙应用进行第一业务(例如接收手机的消息通知、传输生理数据等业务)。
高性能模式,是指蓝牙应用在高性能处理器(第二处理器)运行,此模式下,可使用第二处理器开启的第三蓝牙应用进行第一业务(例如接收手机的消息通知、传输生理数据等业务)和第二业务(来电转接、蓝牙上网、音频播放、下载应用和OTA升级等业务)。
可以理解的是,根据可穿戴设备的状态,蓝牙应用可以运行在第二处理器(高性能处理器),以满足高性能要求;蓝牙应用也可以运行在第一处理器(低性能处理器),以满足低功耗要求;当然也可以根据特定的需求,蓝牙应用同时运行在第二处理器(高性能处理器)和第一处理器(低性能处理器),从而充分利用第二处理器(高性能处理器)的高性能和第一处理器(低性能处理器)的低功耗特性,来提供更佳的用户体验。
需要说明的是,本申请实施例中,基于双系统的蓝牙共享方案,第二处理器(高性能处理器)与第一处理器(低性能处理器)通过调用远程函数装置(RPC,Remote Procedure Call)进行数据交互,可以实现由所述第一系统运行蓝牙应用,或者,由所述第二系统运行蓝牙应用,或者,所述第一系统和所述第二系统均运行蓝牙应用,从而兼顾了高性能和低功耗的要求。
下面的各个实施例以蓝牙芯片挂载在第一处理器(低性能处理器)上为例进行说明。
图5为本申请实施例控制方法的具体实现流程示意图;如图5所示,所述方法包括步骤501至步骤506:
步骤501:第二系统接收蓝牙启动指令;所述蓝牙启动指令用于指示启动蓝牙芯片;所述第二系统将所述蓝牙启动指令发送给第一系统。
可以理解的是,所述第一系统可以是指在所述第一处理器(低性能处理器)上运行的操作系统,如RTOS系统。所述第二系统可以是指在所述第二处理器(高性能处理器)上运行的操作系统,如Android系统。
可以理解的是,用户可以在可穿戴设备的显示界面触发打开蓝牙按钮,如此,所述第二系统可以接收到所述蓝牙启动指令。
可以理解的是,所述第二处理器(高性能处理器)可以通过“双核通讯装置”将所述蓝牙启动指令发送给第一处理器(低性能处理器),如图6所示。
步骤502:所述第一系统接收所述蓝牙启动指令;响应所述蓝牙启动指令,打开蓝牙芯片。
可以理解的是,所述打开蓝牙芯片可以是指所述第一系统初始化蓝牙协议栈。
步骤503:所述第一系统判断可穿戴设备的状态;若所述可穿戴设备处在第一状态,则执行步骤504。
可以理解的是,在所述可穿戴设备处于第一状态的情况下,所述可穿戴设备可以工作在标准模式。
步骤504:所述第一系统打开第一蓝牙应用。
可以理解的是,所述第一系统打开第一蓝牙应用可以是指所述第一系统初始化所述第一蓝牙应用对应的第一业务。
在所述第一系统打开第一蓝牙应用后,所述可穿戴设备可以使用所述第一蓝牙应用进行第一业务,如接收手机发送的消息通知,并将接收的消息通知显示在显示界面中,如图7所示。
步骤505:所述第二系统等待所述第一系统打开蓝牙芯片后,判断可穿戴设备的状态;若所述可穿戴设备处在第一状态,则执行步骤506。
步骤506:所述第二系统打开第二蓝牙应用。
可以理解的是,所述第二系统打开第二蓝牙应用可以是指所述第二系统初始化所述第二蓝牙应用对应的第二业务。
在所述第一系统打开第二蓝牙应用后,所述可穿戴设备可以使用所述第二蓝牙应用进行第二业务,如进行来电转接,并将来电转接的手机号码、用户名等信息显示在显示界面中,如图8所示。
可以理解的是,根据可穿戴设备的状态,所述可穿戴设备可以工作在对应的模式。若所述可穿戴设备工作在标准模式,则可以兼顾高性能和低功耗这两个特性。
图9为本申请实施例控制方法的具体实现流程示意图;如图9所示,所述方法包括步骤901至步骤904:
步骤901:第二系统接收蓝牙启动指令;所述蓝牙启动指令用于指示启动蓝牙芯片;所述第二系统将所述蓝牙启动指令发送给第一系统。
步骤902:所述第一系统接收所述蓝牙启动指令;响应所述蓝牙启动指令,打开蓝牙芯片。
可以理解的是,所述打开蓝牙芯片可以是指所述第一系统初始化蓝牙协议栈。
步骤903:所述第一系统判断可穿戴设备的状态;若所述可穿戴设备处于第二状态,则执行步骤904。
可以理解的是,在所述可穿戴设备处于第二状态的情况下,所述可穿戴设备可以工作在低功耗模式。
步骤904:所述第一系统打开第一蓝牙应用。
可以理解的是,所述第一系统打开第一蓝牙应用可以是指所述第一系统初始化所述第一蓝牙应用对应的第一业务。
可以理解的是,根据可穿戴设备的状态,所述可穿戴设备可以工作在对应的模式。若所述可穿戴设备工作在低功耗模式,则在功耗上的体验更佳。
图10为本申请实施例控制方法的具体实现流程示意图;如图10所示,所述方法包括步骤1001至步骤1003:
步骤1001:第二系统接收蓝牙启动指令;所述蓝牙启动指令用于指示启动蓝牙芯片;所述第二系统将所述蓝牙启动指令发送给第一系统。
步骤1002:所述第一系统接收所述蓝牙启动指令;并响应所述蓝牙启动指令,打开蓝牙芯片;所述第二系统等待所述第一系统打开蓝牙芯片后,判断可穿戴设备的状态;若所述可穿戴设备处在第二状态,则执行步骤1003。
可以理解的是,在所述可穿戴设备处于第二状态的情况下,所述可穿戴设备可以工作在高性能模式。
步骤1003:所述第二系统打开第三蓝牙应用。
可以理解的是,所述第二系统打开第三蓝牙应用可以是指所述第二系统初始化所述第三蓝牙应用对应的第一业务和第二业务。
可以理解的是,根据可穿戴设备的状态,所述可穿戴设备可以工作在对应的模式。若所述可穿戴设备工作在高性能模式,则在性能上的体验更佳。
需要说明的是,如图11所示,用户还可以在可穿戴设备的显示界面显示的“模式管理”选项中选择指定的模式,如此,在所述可穿戴设备处于第一状态的情况下,若所述第一系统检测当前的工作模式为标准模式,则所述第一系统打开第一蓝牙应用;若所述第二系统检测当前的工作模式为标准模式,则所述第二系统打开第二蓝牙应用。在所述可穿戴设备处于第二状态的情况下,若所述第一系统检测当前的工作模式为低功耗模式,则所述第一系统打开第一蓝牙应用。在所述可穿戴设备处于第二状态的情况下,若所述第二系统检测当前的工作模式为高性能模式,则所述第二系统可以打开第三蓝牙应用。
除了用户在可穿戴设备的显示界面显示的“模式管理”选项中选择指定的模式之外,还可以在可穿戴设备的显示界面显示“模式选择”的开关,如此,在用户触摸与相应模式对应的开关后,所述可穿戴设备可以检测出当前的工作模式。
具体地,在所述第二状态下,所述可穿戴设备接收第一指令;所述第一指令用于指示切换至标准模式;所述可穿戴设备响应所述第一指令,切换至标准模式;
或者,
在所述第一状态下,所述可穿戴设备接收第二指令;所述第二指令用于指示切换至高性能模式;所述可穿戴设备响应所述第二指令,切换至高性能模式;
或者,
在所述第一状态下,所述可穿戴设备接收第三指令;所述第三指令用于指示切换至低功耗模式;所述可穿戴设备响应所述第三指令,切换至低功耗模式。
图12为本申请实施例可穿戴设备收发蓝牙数据的实现流程示意图;如图12所示,所述方法包括步骤1201至步骤1205:
步骤1201:第一系统接收蓝牙数据,并进行数据组包。
可以理解的是,可穿戴设备中的第一系统负责通过蓝牙芯片接收蓝牙数据并组包。所述蓝牙数据具体可以是指移动终端如手机发送的通知消息等等。
步骤1202:若所述可穿戴设备处于第二状态,则执行步骤1203或者步骤1204;若所述可穿戴设备处于第一状态,则执行步骤1205。
步骤1203:所述第一系统处理所述蓝牙数据包,并进行展示。
步骤1204:所述第一系统将所述蓝牙数据包转发给第二系统,由所述第二系统处理所述蓝牙数据包,并进行展示。
步骤1205:所述第一系统将所述蓝牙数据包转发给第一处理器上的路由模块,以供所述路由模块确定处理所述蓝牙数据包的系统。
作为一种实施方式,在所述可穿戴设备处于第一状态的情况下,所述第一系统将所述蓝牙数据转发给第一处理器上的路由模块。如果所述路由模块确定所述蓝牙数据是与所述第一业务相关的数据,则由所述第一系统处理所述蓝牙数据。
作为第二种实施方式,在所述可穿戴设备处于第一状态的情况下,所述第一系统将所述蓝牙数据转发给第一处理器上的路由模块。如果所述路由模块确定所述蓝牙数据是与所述第二业务相关的数据,则由所述第二系统来处理所述蓝牙数据。
作为第三种实施方式,在所述可穿戴设备处于第一状态的情况下,所述第一系统将所述蓝牙数据转发给第一处理器上的路由模块。在所述第一系统处于运行状态,所述第二系统处于休眠状态的情况下,如果所述路由模块确定所述蓝牙数据是与所述第二业务相关的数据,则由所述第一系统将所述第二系统唤醒,以由所述第二系统进行处理所述蓝牙数据。
可以理解的是,在高性能模式下,只有第二系统启动蓝牙应用。在低功耗模式下,只有第一系统启动蓝牙应用。如此,在所述第一处理器(低性能处理器)通过蓝牙芯片接收到蓝牙数据后,所述第一系统可以根据运行模式,得知数据包是发给第二系统还是由自身处理。
而在标准模式下,第二系统和第一系统都启动了蓝牙应用,在所述第一处理器(低性能处理器)通过蓝牙芯片接收的数据包后,所述第一系统仅根据运行模式不能判断是发给第二系统还是由自身处理,因此需要在所述第一处理器上引入一个叫做“路由模块”的软件模块,由这个软件模块判断处理所述蓝牙数据的系统是第一系统还是第二系统。
需要说明的是,当发出蓝牙数据给终端如手机时,所述第一处理器通过所述蓝牙芯片发出蓝牙数据;所述第二处理器将待发送的蓝牙数据发送给所述第一处理器,以供所述第一处理器发出所述蓝牙数据。
采用本申请实施例的技术方案,可穿戴设备具备的是双系统蓝牙功能,并可以根据可穿戴设备当前的状态确定是所述第一系统运行蓝牙应用还是所述第二系统运行蓝牙应用,或者,所述第一处理器和所述第二处理器均运行蓝牙应用,从而可穿戴设备可以结合实际情况提供高性能和低功耗的体验。
为实现本申请实施例控制方法,本申请实施例还提供一种控制装置,设置在可穿戴 设备上,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统。图13为本申请实施例控制装置的组成结构示意图;如图13所示,所述装置包括:
第一处理单元131,用于响应于蓝牙启动指令,在第一状态下,启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;并启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;
第二处理单元132,用于在第二状态下,启动所述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。
在一实施例中,所述第二处理单元132,还用于接收蓝牙启动指令;所述蓝牙启动指令用于指示启动蓝牙芯片;将所述蓝牙启动指令发送给所述第一处理单元131;
所述第一处理单元131,还用于接收所述蓝牙启动指令;响应所述蓝牙启动指令,启动蓝牙芯片。
在一实施例中,所述第一处理单元131,还用于:接收蓝牙数据;并基于当前的状态,处理所述蓝牙数据。
在一实施例中,所述第一处理单元131,具体用于:
在所述可穿戴设备处于第二状态的情况下,处理所述蓝牙数据;
或者,
在所述可穿戴设备处于第二状态的情况下,将所述蓝牙数据转发给所述第二处理单元132,由所述第二处理单元132处理所述蓝牙数据;
或者,
在所述可穿戴设备处于第一状态的情况下,将所述蓝牙数据转发给第一处理器上的路由模块,由所述路由模块确定处理所述蓝牙数据的系统。
在一实施例中,所述路由模块,用于若所述蓝牙数据是与所述第一业务相关的数据,则将所述蓝牙数据发送至所述第一处理单元131,由所述第一处理单元131处理所述蓝牙数据;若所述蓝牙数据是与所述第二业务相关的数据,则将所述蓝牙数据发送至所述第二处理单元132,由所述第二处理单元132来处理所述蓝牙数据。
所述路由模块,具体用于:在所述第一系统处于运行状态,所述第二系统处于休眠状态的情况下,如果确定所述蓝牙数据是与所述第二业务相关的数据,则由所述第一系统将所述第二系统唤醒,以由所述第二系统进行处理所述蓝牙数据。
在一实施例中,所述可穿戴设备包括标准模式、高性能模式和低功耗模式;
其中,在所述第一状态下,所述可穿戴设备工作在标准模式;在所述第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式。
所述在所述第一状态下,所述可穿戴设备工作在标准模式,包括:
在所述第二状态下,所述可穿戴设备接收第一指令;所述第一指令用于指示切换至标准模式;所述可穿戴设备响应所述第一指令,切换至标准模式;
所述在所述第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式,包括:
在所述第一状态下,所述可穿戴设备接收第二指令;所述第二指令用于指示切换至高性能模式;所述可穿戴设备响应所述第二指令,切换至高性能模式;
或者,
在所述第一状态下,所述可穿戴设备接收第三指令;所述第三指令用于指示切换至低功耗模式;所述可穿戴设备响应所述第三指令,切换至低功耗模式。
在一实施例中,所述第二处理器对性能级别的要求高于所述第一处理器对性能级别的要求;所述第一处理器对功耗级别的要求高于所述第二处理器对功耗级别的要求。
实际应用时,所述第一处理单元131、第二处理单元132、路由模块可由所述装置中的处理器实现;所述处理器可以是中央处理器(CPU,Central Processing Unit)、数字信号处理器(DSP,Digital Signal Processor)、微控制单元(MCU,Microcontroller Unit)或可编程门阵列(FPGA,Field-Programmable Gate Array)。
需要说明的是:上述实施例提供的装置在进行控制时,仅以上述各程序模块的划分进行举例说明,实际应用时,可以根据需要而将上述处理分配由不同的程序模块完成,即将终端的内部结构划分成不同的程序模块,以完成以上描述的全部或者部分处理。另外,上述实施例提供的装置与控制方法实施例属于同一构思,其具体实现过程详见方法实施例,这里不再赘述。
基于上述设备的硬件实现,本申请实施例还提供了一种电子设备,图14为本申请实施例的终端的硬件组成结构示意图,如图14所示,电子设备140包括存储器143、处理器142及存储在存储器143上并可在处理器142上运行的计算机程序;所述处理器142执行所述程序时实现上述一个或多个技术方案提供的方法。
需要说明的是,所述处理器142执行所述程序时实现的具体步骤已在上文详述,这里不再赘述。
可以理解,电子设备140还包括通信接口141,所述通信接口141用于和其它设备 进行信息交互;同时,电子设备140中的各个组件通过总线系统144耦合在一起。可理解,总线系统144配置为实现这些组件之间的连接通信。总线系统144除包括数据总线之外,还包括电源总线、控制总线和状态信号总线等。
可以理解,本实施例中的存储器143可以是易失性存储器或非易失性存储器,也可包括易失性和非易失性存储器两者。其中,非易失性存储器可以是只读存储器(ROM,Read Only Memory)、可编程只读存储器(PROM,Programmable Read-Only Memory)、可擦除可编程只读存储器(EPROM,Erasable Programmable Read-Only Memory)、电可擦除可编程只读存储器(EEPROM,Electrically Erasable Programmable Read-Only Memory)、磁性随机存取存储器(FRAM,ferromagnetic random access memory)、快闪存储器(Flash Memory)、磁表面存储器、光盘、或只读光盘(CD-ROM,Compact Disc Read-Only Memory);磁表面存储器可以是磁盘存储器或磁带存储器。易失性存储器可以是随机存取存储器(RAM,Random Access Memory),其用作外部高速缓存。通过示例性但不是限制性说明,许多形式的RAM可用,例如静态随机存取存储器(SRAM,Static Random Access Memory)、同步静态随机存取存储器(SSRAM,Synchronous Static Random Access Memory)、动态随机存取存储器(DRAM,Dynamic Random Access Memory)、同步动态随机存取存储器(SDRAM,Synchronous Dynamic Random Access Memory)、双倍数据速率同步动态随机存取存储器(DDRSDRAM,Double Data Rate Synchronous Dynamic Random Access Memory)、增强型同步动态随机存取存储器(ESDRAM,Enhanced Synchronous Dynamic Random Access Memory)、同步连接动态随机存取存储器(SLDRAM,SyncLink Dynamic Random Access Memory)、直接内存总线随机存取存储器(DRRAM,Direct Rambus Random Access Memory)。本申请实施例描述的存储器旨在包括但不限于这些和任意其它适合类型的存储器。
上述本申请实施例揭示的方法可以应用于处理器142中,或者由处理器142实现。处理器142可能是一种集成电路芯片,具有信号的处理能力。在实现过程中,上述方法的各步骤可以通过处理器142中的硬件的集成逻辑电路或者软件形式的指令完成。上述的处理器142可以是通用处理器、DSP,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。处理器142可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通用处理器可以是微处理器或者任何常规的处理器等。结合本申请实施例所公开的方法的步骤,可以直接体现为硬件译码处理器执行完成,或者用译码处理器中的硬件及软件模块组合执行完成。软件模块可以位于存储介质中,该存储介 质位于存储器,处理器142读取存储器中的信息,结合其硬件完成前述方法的步骤。
本申请实施例还提供了一种存储介质,具体为计算机存储介质,更具体的为计算机可读存储介质。其上存储有计算机指令,即计算机程序,该计算机指令被处理器执行时上述一个或多个技术方案提供的方法。
在本申请所提供的几个实施例中,应该理解到,所揭露的方法和智能设备,可以通过其它的方式实现。以上所描述的设备实施例仅仅是示意性的,例如,所述单元的划分,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,如:多个单元或组件可以结合,或可以集成到另一个系统,或一些特征可以忽略,或不执行。另外,所显示或讨论的各组成部分相互之间的耦合、或直接耦合、或通信连接可以是通过一些接口,设备或单元的间接耦合或通信连接,可以是电性的、机械的或其它形式的。
上述作为分离部件说明的单元可以是、或也可以不是物理上分开的,作为单元显示的部件可以是、或也可以不是物理单元,即可以位于一个地方,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全部单元来实现本实施例方案的目的。
另外,在本申请各实施例中的各功能单元可以全部集成在一个处理单元中,也可以是各单元分别单独作为一个单元,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。
本领域普通技术人员可以理解:实现上述方法实施例的全部或部分步骤可以通过程序指令相关的硬件来完成,前述的程序可以存储于一计算机可读取存储介质中,该程序在执行时,执行包括上述方法实施例的步骤;而前述的存储介质包括:移动存储设备、ROM、RAM、磁碟或者光盘等各种可以存储程序代码的介质。
或者,本申请上述集成的单元如果以软件功能模块的形式实现并作为独立的产品销售或使用时,也可以存储在一个计算机可读取存储介质中。基于这样的理解,本申请实施例的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机、终端、或者网络设备等)执行本申请各个实施例所述方法的全部或部分。而前述的存储介质包括:移动存储设备、ROM、RAM、磁碟或者光盘等各种可以存储程序代码的介质。
需要说明的是:“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。
另外,本申请实施例所记载的技术方案之间,在不冲突的情况下,可以任意组合。
以上所述,仅为本申请的具体实施方式,但本申请的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本申请揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本申请的保护范围之内。

Claims (12)

  1. 一种控制方法,应用于可穿戴设备,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统;所述方法包括:
    响应于蓝牙启动指令,在第一状态下,所述第一系统启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;所述第二系统启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;
    在第二状态下,所述第一系统启动所述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,所述第二系统启动第三蓝牙应用;所述第三蓝牙应用支持所述第一业务和所述第二业务。
  2. 根据权利要求1所述的方法,其中,所述响应于蓝牙启动指令,包括:
    所述第二系统接收蓝牙启动指令;所述蓝牙启动指令用于指示启动蓝牙芯片;将所述蓝牙启动指令发送给所述第一系统;
    所述第一系统接收所述蓝牙启动指令;响应所述蓝牙启动指令,启动蓝牙芯片。
  3. 根据权利要求1所述的方法,其中,所述方法还包括:
    所述第一系统接收蓝牙数据;并基于当前的状态,处理所述蓝牙数据。
  4. 根据权利要求3所述的方法,其中,所述基于当前的状态,处理所述蓝牙数据,包括:
    在所述可穿戴设备处于第二状态的情况下,由所述第一系统处理所述蓝牙数据;
    或者,
    在所述可穿戴设备处于第二状态的情况下,所述第一系统将所述蓝牙数据转发给所述第二系统,由所述第二系统处理所述蓝牙数据;
    或者,
    在所述可穿戴设备处于第一状态的情况下,所述第一系统将所述蓝牙数据转发给所述第一处理器上的路由模块,由所述路由模块确定处理所述蓝牙数据的系统。
  5. 根据权利要求4所述的方法,其中,所述由所述路由模块确定处理所述蓝牙数据的系统,包括:
    若所述蓝牙数据是与所述第一业务相关的数据,则将所述蓝牙数据发送至所述第一系统;
    若所述蓝牙数据是与所述第二业务相关的数据,则将所述蓝牙数据发送至所述第二系统。
  6. 根据权利要求5所述的方法,其中,所述方法还包括:
    在所述第一系统处于运行状态,所述第二系统处于休眠状态的情况下,如果所述路由模块确定所述蓝牙数据是与所述第二业务相关的数据,则由所述第一系统将所述第二系统唤醒,以由所述第二系统进行处理所述蓝牙数据。
  7. 根据权利要求1所述的方法,其中,所述可穿戴设备包括标准模式、高性能模式和低功耗模式;
    其中,在所述第一状态下,所述可穿戴设备工作在标准模式;在所述第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式。
  8. 根据权利要求7所述的方法,其中,所述在所述第一状态下,所述可穿戴设备工作在标准模式,包括:
    在所述第二状态下,所述可穿戴设备接收第一指令;所述第一指令用于指示切换至标准模式;所述可穿戴设备响应所述第一指令,切换至标准模式;
    所述在所述第二状态下,所述可穿戴设备工作在高性能模式或者低功耗模式,包括:
    在所述第一状态下,所述可穿戴设备接收第二指令;所述第二指令用于指示切换至高性能模式;所述可穿戴设备响应所述第二指令,切换至高性能模式;
    或者,
    在所述第一状态下,所述可穿戴设备接收第三指令;所述第三指令用于指示切换至低功耗模式;所述可穿戴设备响应所述第三指令,切换至低功耗模式。
  9. 根据权利要求1所述的方法,其中,所述第二处理器对性能级别的要求高于所述第一处理器对性能级别的要求;所述第一处理器对功耗级别的要求高于所述第二处理器对功耗级别的要求。
  10. 一种控制装置,应用于可穿戴设备,所述可穿戴设备包括第一处理器和第二处理器,所述第一处理器用于运行第一系统,所述第二处理器用于运行第二系统;所述装置包括:
    第一处理单元,用于响应于蓝牙启动指令,在第一状态下,启动第一蓝牙应用;所述第一蓝牙应用支持第一业务;并启动第二蓝牙应用;所述第二蓝牙应用支持第二业务;
    第二处理单元,用于在第二状态下,启动所述第一蓝牙应用;所述第一蓝牙应用支持所述第一业务;或者,在第二状态下,启动第三蓝牙应用;所述第三蓝牙应用支持所 述第一业务和所述第二业务。
  11. 一种电子设备,包括:处理器和用于存储能够在处理器上运行的计算机程序的存储器,
    其中,所述处理器用于运行所述计算机程序时,执行权利要求1至9任一项所述方法的步骤。
  12. 一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现权利要求1至9任一项所述方法的步骤。
PCT/CN2022/094461 2021-06-15 2022-05-23 控制方法、装置、电子设备及存储介质 WO2022262529A1 (zh)

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