CN117100219A - Dual-chip wearable device, sensing data management method and device - Google Patents

Dual-chip wearable device, sensing data management method and device Download PDF

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Publication number
CN117100219A
CN117100219A CN202311062265.XA CN202311062265A CN117100219A CN 117100219 A CN117100219 A CN 117100219A CN 202311062265 A CN202311062265 A CN 202311062265A CN 117100219 A CN117100219 A CN 117100219A
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chip
wearing
sensing data
monitoring
data processing
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周文杰
李志飞
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Mobvoi Information Technology Co Ltd
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Mobvoi Information Technology Co Ltd
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/0002Remote monitoring of patients using telemetry, e.g. transmission of vital signals via a communication network
    • A61B5/0015Remote monitoring of patients using telemetry, e.g. transmission of vital signals via a communication network characterised by features of the telemetry system
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/74Details of notification to user or communication with user or patient; User input means

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  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Heart & Thoracic Surgery (AREA)
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  • Biomedical Technology (AREA)
  • Veterinary Medicine (AREA)
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  • General Health & Medical Sciences (AREA)
  • Public Health (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Measuring And Recording Apparatus For Diagnosis (AREA)

Abstract

The present disclosure provides a dual chip wearable device, comprising: the wearable body comprises a sensing data processing chip and a wearable main chip, wherein the sensing data processing chip is embedded with a plurality of physical ability monitoring sensors and is provided with a data processing unit, and the sensing data of the physical ability monitoring sensors are analyzed through a dispatching data processing unit so as to obtain movement health data about the wearable body; and the wearing main chip is provided with an interaction unit, and the interaction unit is used for feeding back the sports health data to the wearing main body. The disclosure also provides a method and a device for managing the sensing data.

Description

Dual-chip wearable device, and management method and device of sensing data
Technical Field
The disclosure relates to the technical field of intelligent wearing, in particular to a dual-chip wearing device, a method and a device for managing sensing data.
Background
The intelligent wearable device realizes self-quantification of the health state of the wearer by continuously monitoring various health data of the wearer. However, the smart wearable device needs to work at high frequency or uninterruptedly to ensure rich monitoring data and accurate health analysis results. Clearly, the operation of smart wearable devices can result in greater power consumption while also requiring powerful performance support.
With the upgrading and upgrading of the intelligent wearable equipment, the supported functions of the intelligent wearable equipment are more and more abundant, such as heartbeat monitoring, step number monitoring, sleep monitoring, body temperature monitoring, blood oxygen saturation monitoring and the like. Based on the above, the intelligent wearable device needs to be embedded with various sensors, and also needs to be configured with corresponding sensing data processing modules to provide data support for various monitoring functions.
In the related art, a wearable device is configured with only one MCU (Microcontroller Unit, micro control unit) chip, and a large number of sensors and data processing modules are typically embedded on the chip. However, the MCU chip on the wearable device needs to support other functions of the smart wearable device, such as communication, man-machine interaction, and data display, besides scheduling the sensor for data acquisition and analysis of the sensing data. Obviously, if the sensor data and the data processing module which are increased are not managed, the power consumption of the MCU is increased, and higher requirements are put on the performance of the chip.
Disclosure of Invention
In order to solve at least one of the above technical problems, the present disclosure provides a dual-chip wearable device, and a method and apparatus for managing sensing data.
One aspect of the present disclosure provides a dual chip wearable device, comprising: the wearable body comprises a sensing data processing chip and a wearable main chip, wherein the sensing data processing chip is embedded with various physical ability monitoring sensors and is provided with a data processing unit, and the sensing data of the physical ability monitoring sensors are analyzed by dispatching the data processing unit so as to obtain sports health data about the wearable body; and the wearing main chip is configured with an interaction unit, and the interaction unit is used for feeding the sports health data back to the wearing main chip.
In some embodiments, the sensing data processing chip responds to the monitoring instruction issued by the wearing main chip, and triggers the physical ability monitoring sensor corresponding to the monitoring instruction to acquire sensing data.
In some embodiments, the wearable main chip obtains the monitoring requirement of the wearable main body through the interaction unit, and converts the monitoring requirement into the monitoring instruction which is convenient for the sensing data processing chip to read.
In some embodiments, the wearable main chip has a first internal communication unit for data interaction with a second internal communication unit of the sensing data processing chip, wherein the first internal communication unit communicates monitoring instructions corresponding to the monitoring needs of the wearable main body to the second internal communication unit, and the second internal communication unit synchronizes the movement health data generated by the data processing unit to the first internal communication unit.
In some embodiments, the interaction unit has an interaction display interface for receiving the monitoring requirements provided by the wearing subject and for displaying the sports health data to the wearing subject.
In some embodiments, the wearable main chip is further configured with a plurality of functional modules, wherein the functional modules are used for responding to the use requirement of the wearable main chip, and the scheduling object of the use requirement is only the wearable main chip.
Another aspect of the present disclosure provides a method of managing sensing data, including: integrating a data processing unit and a plurality of physical ability monitoring sensors into a through sensing data processing chip; responding to a monitoring instruction of a wearing main chip, and calling the corresponding physical performance monitoring sensor in the sensing data processing chip to acquire sensing data about the wearing main body, wherein the monitoring instruction corresponds to the monitoring requirement of the wearing main body; and invoking a data processing unit in the sensing data processing chip to analyze the sensing data and generate sports health data about the wearing body.
In some embodiments, after the generating the athletic health data about the wearing subject, comprising: and synchronizing the motion health data to the wearing main chip, and displaying the motion health data to the wearing main chip by an interaction unit of the wearing main chip.
In some embodiments, the interaction unit has an interaction display interface for receiving the monitoring requirements of the wearing subject and for displaying the sports health data to the wearing subject.
Yet another aspect of the present disclosure provides a management apparatus of sensing data, including: the sensor integration module is used for integrating the data processing unit and the physical ability monitoring sensors into the through sensing data processing chip; the sensing data acquisition module is used for responding to a monitoring instruction of the wearing main chip, and calling the corresponding physical performance monitoring sensor in the sensing data processing chip to acquire sensing data about the wearing main body, wherein the monitoring instruction corresponds to the monitoring requirement of the wearing main body; and the analysis module is used for calling a data processing unit in the sensing data processing chip to analyze the sensing data and generate exercise health data about the wearing body.
Drawings
The accompanying drawings, which are included to provide a further understanding of the disclosure and are incorporated in and constitute a part of this specification, illustrate exemplary embodiments of the disclosure and together with the description serve to explain the principles of the disclosure.
Fig. 1 is a block diagram of a dual chip wearable device according to an exemplary embodiment of the present disclosure.
Fig. 2 is a diagram of a dual chip wearable device architecture according to an exemplary embodiment of the present disclosure.
Fig. 3 is a flowchart of a method of managing sensing data according to an exemplary embodiment of the present disclosure.
Fig. 4 is a block diagram of a management apparatus of sensing data according to an exemplary embodiment of the present disclosure.
Detailed Description
The present disclosure is described in further detail below with reference to the drawings and the embodiments. It is to be understood that the specific embodiments described herein are merely illustrative of the relevant content and not limiting of the present disclosure. It should be further noted that, for convenience of description, only a portion relevant to the present disclosure is shown in the drawings.
In addition, embodiments of the present disclosure and features of the embodiments may be combined with each other without conflict. The technical aspects of the present disclosure will be described in detail below with reference to the accompanying drawings in conjunction with embodiments.
Unless otherwise indicated, the exemplary implementations/embodiments shown are to be understood as providing exemplary features of various details of some ways in which the technical concepts of the present disclosure may be practiced. Thus, unless otherwise indicated, features of the various implementations/embodiments may be additionally combined, separated, interchanged, and/or rearranged without departing from the technical concepts of the present disclosure.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting. As used herein, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. Furthermore, when the terms "comprises" and/or "comprising," and variations thereof, are used in the present specification, the presence of stated features, integers, steps, operations, elements, components, and/or groups thereof is described, but the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof is not precluded. It is also noted that, as used herein, the terms "substantially," "about," and other similar terms are used as approximation terms and not as degree terms, and as such, are used to explain the inherent deviations of measured, calculated, and/or provided values that would be recognized by one of ordinary skill in the art.
The intelligent wearable device is an electronic product worn by a user, and generally has functions of monitoring user movement data, analyzing user physical ability data, assisting the user in interacting with the outside, such as an electronic watch, and the like.
However, with the functional development of the smart wearable device, the smart wearable device generally needs to monitor a plurality of exercise health parameters (i.e., sensing data) such as heart rate, blood oxygen concentration, step number, blood pressure, and the like, and meanwhile needs to analyze corresponding exercise health data such as heart rate, step speed, and the like based on the parameters. Also, in order to continuously monitor the health status of the human body, a large amount of history data is required to be stored. In addition, the intelligent wearable device also supports functions of dialing telephone, paying and the like, and if the functions are integrated on the same chip, the power consumption of the intelligent wearable device can be increased, and the performance of the intelligent wearable device can be reduced.
Based on this, this disclosure has proposed dual chip wearing equipment, through addding the chip of special management sensing data, shared the work of the sensing data and the motion health data analysis of the original chip of intelligent wearing equipment. The two chips take the roles of each other so as to reduce the power consumption of the original chip and improve the performance of the original chip while guaranteeing that the intelligent wearable device displays all monitoring results to a user.
Fig. 1 is a block diagram of a dual chip wearable device according to an exemplary embodiment of the present disclosure. The various components of the dual chip wearable device 100 will be described in detail below in conjunction with fig. 1.
The dual chip wearable device 100 is provided with at least two chips, namely a sensing data processing chip 110 and a wearing master chip 120. The chip is used as an operation and control core of the wearable device and is a final execution unit for information processing and program running, so that the performance and power consumption of the chip are directly related to the user use experience of the dual-chip wearable device 100. By providing two chips, the operating pressure of the chip is relieved in the case of integrating all functions into one chip.
The sensing data processing chip 110 is mainly used for collecting and managing sensing data, and is integrated with various physical performance monitoring sensors and at least one data processing unit 112. The physical ability monitoring sensor is used for collecting sensing data of the wearing main body in the aspect of body movement; the data processing unit 112 can analyze the sports health data about the wearing subject based on the obtained various sensing data.
Wherein each physical ability monitoring sensor corresponds to a monitoring function and a sensing data acquisition capability, such as a temperature sensor, for acquiring body temperature data of the wearing subject; the infrared photoelectric sensor is used for collecting heartbeat data of a wearing subject, and the like, and is not limited to the example.
Based on the monitoring function supported by the dual-chip wearable device 100, or the monitoring requirement of the wearing subject, a plurality of physical ability monitoring sensors are integrated on the sensing data processing chip. The kind and number of the physical ability monitoring sensors are not limited, for example, the first to nth physical ability monitoring sensors 1111 to 111n, where n may be any positive integer greater than 1. Of course, the number of configuration of the physical fitness monitoring sensors is generally not excessive, so as not to increase the volume of the dual-chip wearable device 100, making it inconvenient to wear; and the calculated amount and the memory amount of the sensing data processing chip are prevented from being increased. However, n is any positive integer falling within the scope of the present disclosure.
The data processing unit 112 is configured to analyze the sensing data collected by the physical performance monitoring sensor, and generate exercise health data that is convenient for the wearing subject to intuitively understand the physical state. The sensing data are essentially instrument numbers, and people cannot intuitively know the body state of the user according to the sensing data. The exercise health data is based on the analysis result of the sensing data, and can intuitively represent the physical state of the wearing body, including the health state and the exercise state. For example, when the sensing data is the number of heartbeats and the start time of monitoring, the data processing unit 112 may determine the monitoring duration based on the start time, and determine the heart rate per minute of the wearing subject based on the monitoring duration and the number of heartbeats, wherein the heart rate is the exercise health data that can be intuitively received by the wearing subject.
In some embodiments, the data processing unit 112 further compares the sports health data of the wearing subject with the historical associated data, the associated data threshold value, and the like of the wearing subject, and if a certain value in the sports health data is different from the historical associated data and/or the associated data threshold value, the corresponding prompt suggestion is generated. For example, after acquiring the heart rate of the wearing subject, determining whether an abnormal condition of too low or too high of the heart rate of the wearing subject occurs by comparing the current heart rate with the historical heart rate of the wearing subject and the normal heart rate range of the human body; if abnormal conditions occur, corresponding prompt suggestions are generated, such as avoiding intense exercises and the like.
In some embodiments, the sensing data collected by the physical fitness monitoring sensor, and the athletic health data and its prompt advice analyzed by the data processing unit 112 are stored in a built-in data repository of the sensing data processing chip 110, so as to facilitate subsequent summary of the athletic health of the wearing subject and data derivation.
In some implementations, the wearable master chip 120 acts as another chip of the dual-chip wearable device 100, providing a channel for interaction between the wearable body and the dual-chip wearable device 100. The wearing main chip 120 integrates the rest of the work except the sensing data monitoring and analysis, and supports various functional operations of the dual-chip wearing device 100, such as a communication function between the wearing main body and the outside; a two-dimensional code and bar code payment function of the wearing body, or a collection function; the chat entertainment functions such as telephone, short messages or real-time dialogue information in a chat program received by the mobile phone of the wearing body are timely acquired through communication with the mobile phone of the wearing body; of course, the use and display functions of a compass, a timer, a time date and the like can be supported, specific functions supported by the wearing main chip 120 are not listed, the sensing data monitoring and analyzing functions are always stripped off by the wearing chip 120, the performance of the wearing main chip is improved, and therefore various intelligent functions required by the wearing main body fall into the protection scope of the disclosure.
Of course, since the wearable chip 120 strips the sensing data monitoring and analyzing functions, there is no need to store a large amount of sports health related data about the wearing subject. Therefore, compared to the single-chip wearable device in the related art, the dual-chip wearable device 100 of the present disclosure can provide richer functional support for the wearing subject, and provide device guarantee for the innovation of the wearable device.
Wearing the main chip 120 supports an RTOS ((Real-time operating system, implementing operations) system.
In some embodiments, the wearable main chip 120 is configured with a plurality of functional modules, such as a first functional module 1211 to an mth functional module 121m, where m is a positive integer greater than 1. The functional module is configured to respond to a usage requirement of the wearing subject, where a scheduling object of the usage requirement is only the wearing main chip 120. Of course, the number of functional modules configured to wear the main chip 120 may be determined according to the functions provided by the dual-chip wearable device 100 for the wearing body, which is not limited herein. Any value of the functional module m falls within the protection scope of the present disclosure.
The functional module may include: the clock module is used for providing time information for the wearing main body; the voice module is used for supporting the wearing main body to call the external equipment through the double-chip wearing equipment 100; the chat entertainment module is used for acquiring the connected electronic equipment such as the mobile phone and the like in real time, and synchronizing the information received by the chat software on the electronic equipment such as the mobile phone and the like to the interactive display interface of the chat entertainment module in time so as to ensure that the wearing main body acquires the related information in real time and support the wearing main body to reply the message on the double-chip wearing equipment 100. The functional modules may provide more kinds of functional support according to technical development, and are not described in detail herein.
The wearing main chip 120 essentially bears other functions of non-sensing data acquisition and processing, which is a stripping result of the processes of sensing data acquisition and processing of a unique chip in the single-chip wearing device on the basis of the single-chip wearing device in the related art. The response efficiency of the wearable main chip 120 to the remaining functions is improved.
In some embodiments, the wearable main chip 120 is further configured with an interaction unit 122, where the interaction unit 122 is configured to support information interaction between the wearable main chip 120 and the sensor data processing chip 110, and further configured to support information interaction between the dual-chip wearable device 100 and an external wearable body.
Specifically, the interaction unit 122 is configured to acquire the monitoring requirement of the wearing subject, and is further configured to feed back the sports health data to the wearing subject.
The interaction unit 122 includes an interaction display interface 1221, the interaction display interface 1221 being used to support interaction between the dual-chip wearable device 100 and the wearing body. The interactive display interface 1221 is typically a touch display screen, and displays various functional module buttons and sports health monitoring options provided by the dual-chip wearable device 100, and the wearable body can select a required functional module or sports health monitoring option through the interactive display interface 1221; the wearable main chip 120 invokes the corresponding function module or generates the corresponding monitoring instruction by receiving the usage requirement or the monitoring requirement for the function module acquired by the interactive display interface 1221. The interactive display interface 1221 also presents the athletic health data generated by the sensory data processing chip 110 to the wearing subject to complete feedback of the monitoring needs.
The interaction unit 122 further includes a first internal communication unit 1222, and likewise, the second internal communication unit 113 is also configured on the sensor data processing chip 110. The first internal communication unit 1222 is configured to provide a delivery channel of a monitoring instruction for the wearable main chip 120, and timely receive the motion health data of the data processing chip 110; the second internal communication unit 113 is configured to provide a receiving channel of the monitoring instruction for the sensing data processing chip 110, and upload the sports health data.
That is, data interaction between the first and second internal communication units 1222 and 113 is performed, including the first internal communication unit 1222 communicating a monitoring instruction to the second internal communication unit 113, and the second internal communication unit 113 synchronizing the athletic health data to the first internal communication unit 1222. By the interaction between the first and second intercom units 1222, 113, real-time of the wearing subject to acquire sports health data is ensured.
In some embodiments, the sensing data processing chip 110, in response to the monitoring instruction issued by the wearable main chip 120, triggers the physical fitness monitoring sensor corresponding to the monitoring instruction to perform the collection of the sensing data.
In some embodiments, the wearable main chip 120 obtains the monitoring requirements of the wearing subject through the interaction unit 122, and converts the monitoring requirements into monitoring instructions that are convenient for the sensing data processing chip 110 to read.
The wearing body can be any user, and the dual-chip wearing device 100 can be worn at the wrist and other positions of the wearing body so as to be in contact with the skin of the wearing body, so that the acquisition accuracy of the sensing data is ensured.
Fig. 2 is a diagram of a dual chip wearable device architecture according to an exemplary embodiment of the present disclosure.
As shown in fig. 2, the client of the dual-chip wearable device 100 is configured to provide a display of the client for the wearing subject, so as to obtain a monitoring requirement and a use requirement of the wearing subject, and provide a display of sports health data and a function use channel of various functional modules for the wearing subject.
The application or architecture of the dual chip wearable device 100 includes a wearable main chip 120 and a sensor data processing chip 110. The wearable main chip 120 has a sensor controller for generating monitoring instructions to schedule the corresponding physical ability detection sensors in the sensory data processing chip 110; of course, the wearing main chip is also configured with a data processing program for processing data input by the wearing main body and various functional data generated by the functional module.
The dual-chip wearable device 100 is further provided with a corresponding driver corresponding to the sensor support module, including a driving algorithm, a virtual sensor driver, and a physical sensor driver. The physical sensor driver can mobilize the virtual sensor driver to collect sensing data of various physical performance monitoring sensors.
The dual-chip wearable device 100 is also provided with a hardware acceleration layer corresponding to various physical ability monitoring sensors, such as an accelerator or a gyro, for monitoring the posture of the wearing subject; the device also comprises a magneto, an optical distance sensor, a barometer and the like. Temperature sensors, heat sensitive sensors, etc., are also included, not to be limiting, and fall within the scope of the present disclosure.
According to the double-chip wearable device, the sensing data processing chip is configured, so that the operation amount of sensing data acquisition and processing of the wearable main chip is shared, the processing performance and efficiency of the wearable main chip on other functions are improved, the power consumption of the wearable main chip is reduced, and the service life and wearing experience of the wearable device are improved; in addition, through the setting of the sensing data processing chip, statistics and storage of historical data of the wearing main body are realized, and the accuracy of processing the motion health data of the wearing main body is improved.
Fig. 3 is a flowchart of a method of managing sensing data according to an exemplary embodiment of the present disclosure.
As shown in fig. 3, a method S100 for managing sensing data includes: step S102, integrating a data processing unit and a plurality of physical ability monitoring sensors into a through sensing data processing chip; step S104, responding to a monitoring instruction of the wearing main chip, and calling a corresponding physical ability monitoring sensor in the sensing data processing chip to acquire sensing data about the wearing main body, wherein the monitoring instruction corresponds to a monitoring requirement of the wearing main body; and step S106, calling a data processing unit in the sensing data processing chip to analyze the sensing data and generate exercise health data about the wearing body.
In some embodiments, after step S102, comprising: and synchronizing the motion health data to the wearing main chip, and displaying the motion health data to the wearing main chip by an interaction unit of the wearing main chip.
In some embodiments, the interactive unit has an interactive display interface for receiving the monitoring requirements of the wearing subject and for presenting the athletic health data to the wearing subject.
The method S100 for managing sensing data is a process related to collection and analysis of sensing data in the dual-chip wearable device, and specific execution components corresponding to each step may refer to description of the dual-chip wearable device, which is not described herein.
Fig. 4 is a block diagram of a management apparatus of sensing data according to an exemplary embodiment of the present disclosure. As shown in fig. 4, the present disclosure proposes a management device 1000 of sensing data, including: the sensor integration module 1002 is configured to integrate the data processing unit and the plurality of physical performance monitoring sensors into a through-sensing data processing chip; the sensing data acquisition module 1004 is configured to respond to a monitoring instruction of the wearing main chip, and call a corresponding physical performance monitoring sensor in the sensing data processing chip to acquire sensing data about the wearing main body, where the monitoring instruction corresponds to a monitoring requirement of the wearing main body; the analysis module 1006 is configured to invoke a data processing unit in the sensing data processing chip to analyze the sensing data and generate exercise health data about the wearing subject.
The respective modules of the sensing data management apparatus 1000 are configured to perform the respective steps of the sensing data management method, and the execution process and principle thereof may refer to the related description about the sensing data management method and the dual-chip wearable device, which are not described herein.
The apparatus 1000 may include corresponding elements for performing each or several of the steps in the flowcharts described above. Accordingly, each step or several steps of the flowcharts described above may be performed by a corresponding unit, and the apparatus 1000 may include one or more of these units. An element may be one or more hardware modules specifically configured to perform the respective steps, or be implemented by a processor configured to perform the respective steps, or be stored in a computer-readable storage medium for implementation by a processor, or be implemented by some combination.
The hardware structure may be implemented in a bus architecture. A bus architecture may include any number of interconnecting buses and bridges depending on the specific application of the hardware and the bus design constraints. Bus 1100 connects together various circuits including one or more processors 1200, memory 1300, and/or hardware modules. Bus 1100 may also connect various other circuits 1400, such as peripherals, voltage regulators, power management circuits, external antennas, and the like.
Bus 1100 may be an industry standard architecture (ISA, industry Standard Architecture) bus, peripheral component interconnect (PCI, peripheral Component) bus, or an extended industry standard architecture (EISA, extended Industry Standard Component) bus, among others. The buses may be divided into address buses, data buses, control buses, etc. For ease of illustration, the drawing is represented with only one connection line, but does not represent only one bus or one type of bus.
Any process or method descriptions in flow charts or otherwise described herein may be understood as representing modules, segments, or portions of code which include one or more executable instructions for implementing specific logical functions or steps of the process, and further implementations are included within the scope of the preferred embodiment of the present disclosure in which functions may be executed out of order from that shown or discussed, including substantially concurrently or in reverse order, depending on the functionality involved, as would be understood by those reasonably skilled in the art of the embodiments of the present disclosure. The processor performs the various methods and processes described above. For example, method embodiments in the present disclosure may be implemented as a software program tangibly embodied on a machine-readable medium, such as a memory. In some embodiments, part or all of the software program may be loaded and/or installed via memory and/or a communication interface. One or more of the steps of the methods described above may be performed when a software program is loaded into memory and executed by a processor. Alternatively, in other embodiments, the processor may be configured to perform one of the methods described above in any other suitable manner (e.g., by means of firmware).
Logic and/or steps represented in the flowcharts or otherwise described herein may be embodied in any readable storage medium for use by or in connection with an instruction execution system, apparatus, or device, such as a computer-based system, processor-containing system, or other system that can fetch the instructions from the instruction execution system, apparatus, or device and execute the instructions.
According to the sensing data management device disclosed by the invention, the sensing data processing chip is configured, so that the operation amount of sensing data acquisition and processing of the wearing main chip is shared, the processing performance and efficiency of the wearing main chip on other functions are improved, the power consumption of the wearing main chip is reduced, and the service life and wearing experience of the wearing equipment are improved; in addition, through the setting of the sensing data processing chip, statistics and storage of historical data of the wearing main body are realized, and the accuracy of processing the motion health data of the wearing main body is improved.
In the description of the present specification, a description referring to the terms "one embodiment/mode," "some embodiments/modes," "specific examples," or "some examples," etc., means that a particular feature, structure, material, or characteristic described in connection with the embodiment/mode or example is included in at least one embodiment/mode or example of the present disclosure. In this specification, the schematic representations of the above terms are not necessarily the same embodiments/modes or examples. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments/modes or examples. Furthermore, the various embodiments/implementations or examples described in this specification and the features of the various embodiments/implementations or examples may be combined and combined by persons skilled in the art without contradiction.
Furthermore, the terms "first," "second," and the like, are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defining "a first" or "a second" may explicitly or implicitly include at least one such feature. In the description of the present disclosure, the meaning of "a plurality" is at least two, such as two, three, etc., unless explicitly specified otherwise.
It will be appreciated by those skilled in the art that the above-described embodiments are merely for clarity of illustration of the disclosure, and are not intended to limit the scope of the disclosure. Other variations or modifications will be apparent to persons skilled in the art from the foregoing disclosure, and such variations or modifications are intended to be within the scope of the present disclosure.

Claims (10)

1. A dual chip wearable device, comprising: a sensing data processing chip and a wearing main chip, wherein,
the sensing data processing chip is embedded with various physical ability monitoring sensors and is provided with a data processing unit, and the sensing data of the physical ability monitoring sensors are analyzed by scheduling the data processing unit so as to obtain the exercise health data about the wearing body; and
the wearing main chip is configured with an interaction unit, and the interaction unit is used for feeding back the sports health data to the wearing main body.
2. The dual chip wearable device of claim 1, wherein the sensing data processing chip is configured to trigger the physical fitness monitoring sensor corresponding to the monitoring instruction to acquire sensing data in response to the monitoring instruction issued by the wearable main chip.
3. The dual-chip wearable device according to claim 2, wherein the wearable main chip obtains a monitoring requirement of the wearable main body through the interaction unit, and converts the monitoring requirement into the monitoring instruction which is convenient for the sensing data processing chip to read.
4. The dual chip wearable device of claim 1, wherein the wearable main chip has a first internal communication unit for data interaction with a second internal communication unit of the sensing data processing chip, wherein
The first internal communication unit communicates a monitoring instruction corresponding to a monitoring demand of the wearing body to the second internal communication unit,
the second internal communication unit synchronizes the sports health data generated by the data processing unit to the first internal communication unit.
5. The dual chip wearable device of claim 1, wherein the interactive unit has an interactive display interface for receiving monitoring requirements provided by the wearing body and for presenting the athletic health data to the wearing body.
6. The dual chip wearable device of claim 1, wherein the wearable main chip is further configured with a plurality of functional modules for responding to a use requirement of the wearable main body, wherein a scheduling object of the use requirement is only the wearable main chip.
7. A method of managing sensory data, comprising:
integrating a data processing unit and a plurality of physical ability monitoring sensors into a through sensing data processing chip;
responding to a monitoring instruction of a wearing main chip, and calling the corresponding physical performance monitoring sensor in the sensing data processing chip to acquire sensing data about the wearing main body, wherein the monitoring instruction corresponds to the monitoring requirement of the wearing main body; and
and calling a data processing unit in the sensing data processing chip to analyze the sensing data and generate exercise health data about the wearing body.
8. The method of managing sensory data according to claim 7, characterized by comprising, after said generating sports health data concerning said wearing subject:
and synchronizing the motion health data to the wearing main chip, and displaying the motion health data to the wearing main chip by an interaction unit of the wearing main chip.
9. The method of claim 8, wherein the interactive unit has an interactive display interface for receiving the monitoring requirements of the wearing subject and for presenting the athletic health data to the wearing subject.
10. A device for managing sensor data, comprising:
the sensor integration module is used for integrating the data processing unit and the physical ability monitoring sensors into the through sensing data processing chip;
the sensing data acquisition module is used for responding to a monitoring instruction of the wearing main chip, and calling the corresponding physical performance monitoring sensor in the sensing data processing chip to acquire sensing data about the wearing main body, wherein the monitoring instruction corresponds to the monitoring requirement of the wearing main body;
and the analysis module is used for calling a data processing unit in the sensing data processing chip to analyze the sensing data and generate exercise health data about the wearing body.
CN202311062265.XA 2023-08-22 2023-08-22 Dual-chip wearable device, sensing data management method and device Pending CN117100219A (en)

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CN212234450U (en) * 2019-12-25 2020-12-29 中科彭州智慧产业创新中心有限公司 Wearable device
CN113397518A (en) * 2021-06-30 2021-09-17 杭州思立普科技有限公司 Intelligent wearable device and wearing detection method

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CN203942630U (en) * 2014-07-15 2014-11-12 常州市武进区半导体照明应用技术研究院 A kind of ear suspension type radio communication device that is integrated with health monitoring function
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