IP Library Granted Patent US 12,521,070
Granted Patent B2
US 12,521,070 · App. 17/989,059 · Granted Jan 13, 2026

Method, system, wearable device, and medium for measuring a physiological signal

Inventors: Naixi Liu (Guangdong, CN); Haotian Niu (Guangdong, CN); Yu Tang (Guangdong, CN)
Assignee: GUANGDONG COROS SPORTS TECHNOLOGY JOINT STOCK COMPANY
A61B5/7455A61B5/02405A61B5/6802A61B2560/0276
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Quick Facts
Patent No.
US 12,521,070
App. No.
17/989,059
Granted
Jan 13, 2026
Kind
B2
Abstract

Provided is a method, a system, a wearable device, and a medium for measuring a physiological signal. The method includes acquiring the physiological signal of a user, and controlling a haptic feedback device to activate to generate and output a haptic feedback signal in response to the physiological signal and starting a first timer simultaneously. When the time duration of the first timer is greater than a first time threshold, the first timer is stopped, the haptic feedback device is controlled to be disactivated, and a measuring result is output.

Claims (31)

1 . A method for measuring a physiological signal, comprising:

receiving a physiological signal measuring instruction;

in response to the physiological signal measuring instruction, starting the physiological signal measuring;

acquiring a physiological signal of a user;

in response to acquiring the physiological signal, controlling a haptic feedback device to activate to generate and output a haptic feedback signal; and starting a first timer simultaneously; and

when a time duration of the first timer is greater than a first time threshold, controlling the haptic feedback device to be disactivated, and stopping the physiological signal measurement and outputting a measuring result,

wherein the method further comprises:

in response to an occurrence of a first-type error, outputting reminding information of the first-type error, stopping the first timer, and starting a second timer; wherein the first-type error is an error capable of being corrected without interrupting measuring the physiological signal, and

wherein after starting the second timer, the method further comprises:

in response to a correction of the first-type error, controlling the haptic feedback device to continue generating and outputting a haptic feedback signal when a time duration of the second timer is less than a second time threshold, stopping the second timer, and continuing the first timer.

2 . The method for measuring a physiological signal according to claim 1 ,

wherein in response to the physiological signal, controlling the haptic feedback device to activate to generate and output the haptic feedback signal comprises:

when a physiological signal value is greater than a physiological signal threshold, controlling the haptic feedback device to activate to generate and output the haptic feedback signal.

3 . The method for measuring a physiological signal according to claim 1 , wherein reminding information of the first-type error comprises at least one of auditory feedback information, haptic feedback information, or visual feedback information, wherein the haptic feedback information is different from the haptic feedback signal.

4 . The method for measuring a physiological signal according to claim 1 , wherein after in response to the occurrence of the first-type error, the method further comprises:

controlling the haptic feedback device to be disactivated.

5 . A non-transitory computer-readable storage medium, wherein a computer program is stored, and the computer program is executed to implement the method for measuring the physiological signal of claim 1 .

6 . A system for measuring a physiological signal, comprising:

a physiological signal acquisition device configured to receive a physiological signal measuring instruction; in response to the physiological signal measuring instruction, start a physiological signal measuring; and acquire a physiological signal of a user;

a haptic feedback device configured to generate a haptic feedback signal corresponding to the physiological signal;

a timer device; and

a control device, wherein the control device is respectively connected to the physiological signal acquisition device, the haptic feedback device and the timer device, and the control device is configured to in response to the acquired physiological signal, control the haptic feedback device to activate to generate a haptic feedback signal, and control the haptic feedback device to be disactivated and stop the physiological signal measurement and output a measurement result when a time duration of a first timer of the timer device is greater than a first time threshold,

wherein the system further comprises an error reminding device,

wherein the control device is configured to: in response to an occurrence of the first-type error, stop the first timer, start the second timer, and control the error reminding device to output reminding information of a first-type error, wherein the first-type error is an error capable of being corrected without interrupting measuring the physiological signal, and

wherein the control device is configured to stop the second timer and continue to control the haptic feedback device to continue generating and outputting a haptic feedback signal in response to a correction of the first-type error and when a time duration of the second timer is less than a second time threshold.

7 . The system for measuring a physiological signal according to claim 6 , the system further comprises:

a comparison device connected to the physiological signal acquisition device and the control device, wherein the comparison device is configured to compare a physiological signal value acquired by the physiological signal acquisition device with a physiological signal threshold, and the control device is configured to control the haptic feedback device to activate when the physiological signal value is greater than the physiological signal threshold.

8 . The system for measuring a physiological signal according to claim 6 , wherein reminding information of the first-type error comprises at least one of auditory feedback information, haptic feedback information, or visual feedback information, wherein the haptic feedback information is different from the haptic feedback signal.

9 . The system for measuring a physiological signal according to claim 6 , wherein the physiological signal acquisition device comprises at least one of an electrocardioelectric sensor, an electroencephaloelectric sensor, an electromyoelectric sensor, a skin inductance sensor, a photovoltaic scanning sensor, an infrared light spectrum sensor, or a respiratory sensor.

10 . The system for measuring a physiological signal according to claim 6 , wherein the haptic feedback device comprises vibrating elements or knocking elements.

11 . A wearable device, comprising a system for measuring a physiological signal of claim 6 .

Assignments (2)
CHANGE OF NAME Recorded Nov 21, 2025
From: GUANGDONG COROS SPORTS TECHNOLOGY JOINT STOCK COMPANY
To: GUANGDONG COROS SPORTS TECHNOLOGY CO., LTD.
Reel/Frame 073526/0107 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 26, 2024
From: LIU, NAIXI; NIU, HAOTIAN; TANG, YU
To: GUANGDONG COROS SPORTS TECHNOLOGY JOINT STOCK COMPANY
Reel/Frame 066909/0652 →
Priority Claims (1)
CN 202111367421.4 · Nov 18, 2021 · national
Continuity (1)
Related Publication 20230148972A1 · May 18, 2023
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