IP Library Granted Patent US 10,813,594
Granted Patent B2
US 10,813,594 · App. 16/026,010 · Granted Oct 27, 2020

Circuits for wearable ECG system

Inventor: Chunlian Deng (Shenzhen, HK)
Assignee: SHENZHEN DANSHA TECHNOLOGY CO., LTD.
A61B5/7225A61B5/0245A61B5/02438A61B5/0408A61B5/0428A61B2562/0219
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Quick Facts
Patent No.
US 10,813,594
App. No.
16/026,010
Granted
Oct 27, 2020
Kind
B2
Abstract

A wearable ECG system includes a plurality of electrodes; a multiplexor, the multiplexor including an input port, two output ports, and a control port, the input port of the multiplexor being connected with the electrodes; an analog detection module being connected with one output port of the multiplexor; a digital detection module being connected with the other output port of the multiplexor; a processor being connected with the control port of the multiplexor and the digital detection module; and a motion detection module connected with the processor and configured to detect acceleration of the wearable ECG system and output an electrical signal accordingly. The processor is configured to receive the electrical signal from the motion detection module, and control the multiplexor to selectively transmit output of the electrodes to the analog detection module or the digital detection module based on the electrical signal.

Claims (59)

1. A wearable ECG system comprising:

a plurality of electrodes;

a multiplexor, the multiplexor comprising an input port, two output ports, and a control port, the input port of the multiplexor being connected with the electrodes and configured to selectively direct signals from all of the electrodes to one of the two output ports based on an electrical signal from the control port;

an analog detection module being connected with one output port of the multiplexor;

a digital detection module being connected with the other output port of the multiplexor;

a processor being connected with the control port of the multiplexor and the digital detection module; and

a motion detection module, connected with the processor and configured to detect acceleration of the wearable ECG system and output an electrical signal accordingly; wherein:

the processor is configured to receive the electrical signal from the motion detection module, and control the multiplexor through the control port to selectively transmit output of all of the electrodes to the analog detection module or the digital detection module based on the electrical signal; and

the analog detection module is configured to detect a heart beat solely without utilizing any portion of the digital detection module.

2. The wearable ECG system of claim 1 , wherein the electrical signal is a voltage value that indicates the acceleration of the wearable ECG system; the processor is configured to compare the voltage value to a predetermined value; if the voltage value is less than the predetermined value, the processor is configured to control the multiplexor to transmit the output of the electrodes to the analog detection module; if the voltage value is equal to or greater than the predetermined value, the processor is configured to control the multiplexor to transmit the output of the electrodes to the digital detection module.

3. The wearable ECG system of claim 1 , wherein the analog detection module comprises:

a first amplifier configured to receive and amplify ECG signals from a plurality of electrodes;

a second amplifier connected with the first amplifier, and configured to amplify output of the first amplifier in a first bandwidth;

a third amplifier connected with the first amplifier, and configured to amplify output of the first amplifier in a second bandwidth;

a voltage adder connected with the third amplifier, and configured to output a sum of an output voltage of the third amplifier and a calibration voltage;

a comparator connected with the second amplifier and the voltage adder, and configured to compare output of the second amplifier and output of the voltage adder, and output a signal accordingly; and

a calibration voltage generator connected with output of the comparator, and configured to generate the calibration voltage according to the output of the comparator; the calibration voltage generator is configured to vary the calibration voltage until the output of the comparator meets a predetermined requirement.

4. The wearable ECG system of claim 3 , wherein the first bandwidth of the second amplifier comprises a frequency range of QRS complex of an ECG signal, while the second bandwidth of the third amplifier is in a lower frequency range than the first bandwidth, the second bandwidth comprising only frequencies of baseline drifts.

5. The wearable ECG system of claim 3 , wherein the calibration voltage generator is configured to sweep the calibration voltage from zero to a predetermined maximum value until the output of the comparator meets a requirement of being a pulse with periods in the range of human heart beat intervals, the variation of the periods being smaller than a predetermined threshold.

6. The wearable ECG system of claim 5 , wherein the calibration voltage generator is configured to sweep the calibration voltage until the output of the comparator meets the requirement for a predetermined number of cycles.

7. The wearable ECG system of claim 5 further comprising an alarming module, wherein after the predetermined number of cycles of sweeping the calibration voltage, if the output of the comparator fails to meet the requirement, the alarming module is configured to transmit an alert to the user.

8. The wearable ECG system of claim 1 , wherein the digital detection module comprises a first amplifier; a second amplifier being connected with the first amplifier; an ADC being connected with the second amplifier; and a digital signal processing circuit being connected with the ADC; the digital signal processing circuit and the ADC are respectively connected with the processor.

9. The wearable ECG system of claim 8 , wherein the fourth amplifier has a gain of 30 dB-36 dB, while the fifth amplifier has a gain of 18 dB-25 dB.

10. The wearable ECG system of claim 8 , wherein the digital signal processing circuit comprises a first filter; a second filter; a third filter, the second and the third filters being respectively connected with the first filter; a waveform buffer being connected with the first, second and third filters respectively; and a maximum value searcher being connected with the second and the third filters and the processor respectively.

11. The wearable ECG system of claim 10 , wherein the first filter is a QSWT (Quadratic Spline Wavelet) filter configured to filter baseline shift of the wearable ECG system and human caused noise; the second and the third filters are respectively configured to execute STAC (Short-term Autocorrelation) algorithm so as to filter myoelectric noise and noise caused by motion of the electrodes.

12. The wearable ECG system of claim 11 , wherein the QSWT filter comprises multiple adders and multiple shift operators, while the second and the third filters respectively comprise a correlation coefficient buffer, the correlation coefficient buffers of the second and the third filters being respectively synchronized with the ADC.

13. The wearable ECG system of claim 10 , wherein the second and the third filters are configured to execute computation in an alternating fashion, the computing time of which are overlapped by a predetermined period.

14. A wearable ECG system comprising:

a plurality of electrodes;

a multiplexor, the multiplexor comprising an input port, two output ports, and a control port, the input port of the multiplexor being connected with the electrodes;

an analog detection module being connected with one output port of the multiplexor;

a digital detection module being connected with the other output port of the multiplexor;

a processor being connected with the control port of the multiplexor and the digital detection module; and

a motion detection module, connected with the processor and configured to detect acceleration of the wearable ECG system and output an electrical signal accordingly; wherein:

the processor is configured to receive the electrical signal from the motion detection module, and control the multiplexor through the control port to selectively transmit output of all of the electrodes to the analog detection module or the digital detection module based on the electrical signal; and

the analog detection module is configured to detect a heart beat solely without utilizing any portion of the digital detection module.

15. The wearable ECG system of claim 14 , wherein the processor is configured to compare the voltage value to a predetermined value; if the voltage value is less than the predetermined value, the processor is configured to control the multiplexor to transmit the output of the electrodes to the analog detection module; if the voltage value is equal to or greater than the predetermined value, the processor is configured to control the multiplexor to transmit the output of the electrodes to the digital detection module.

16. The wearable ECG system of claim 14 , wherein the analog detection module comprises:

a first amplifier configured to receive and amplify ECG signals from a plurality of electrodes;

a second amplifier connected with the first amplifier, and configured to amplify output of the first amplifier in a first bandwidth;

a third amplifier connected with the first amplifier, and configured to amplify output of the first amplifier in a second bandwidth;

a voltage adder connected with the third amplifier, and configured to output a sum of an output voltage of the third amplifier and a calibration voltage;

a comparator connected with the second amplifier and the voltage adder, and configured to compare output of the second amplifier and output of the voltage adder, and output a signal accordingly; and

a calibration voltage generator connected with output of the comparator, and configured to generate the calibration voltage according to the output of the comparator; the calibration voltage generator is configured to vary the calibration voltage until the output of the comparator meets a predetermined requirement.

17. The wearable ECG system of claim 16 , wherein the calibration voltage generator is configured to sweep the calibration voltage from zero to a predetermined maximum value until the output of the comparator meets a requirement of being a pulse with periods in the range of human heart beat intervals, the variation of the periods being smaller than a predetermined threshold.

18. A wearable ECG system comprising:

a multiplexor, the multiplexor comprising an input port, two output ports, and a control port, the input port of the multiplexor being connected with a plurality of electrodes and configured to selectively direct signals from all of the electrodes to one of the two output ports based on an electrical signal from the control port;

an analog detection module being connected with one output port of the multiplexor;

a digital detection module being connected with the other output port of the multiplexor; and

a processor being connected with the control port of the multiplexor and the digital detection module and configured to receive the electrical signal and control the multiplexor through the control port to selectively transmit output of all of the electrodes to the analog detection module or the digital detection module based on the electrical signal; wherein:

the analog detection module is configured to detect a heart beat solely without utilizing any portion of the digital detection module.

19. The wearable ECG system of claim 18 further comprising a motion detection module, wherein the motion detection module is connected with the processor and configured to detect acceleration of the wearable ECG system and output the electrical signal accordingly.

20. The wearable ECG system of claim 19 , wherein the analog detection module comprises:

a first amplifier configured to receive and amplify ECG signals from a plurality of electrodes;

a second amplifier connected with the first amplifier, and configured to amplify output of the first amplifier in a first bandwidth;

a third amplifier connected with the first amplifier, and configured to amplify output of the first amplifier in a second bandwidth;

a voltage adder connected with the third amplifier, and configured to output a sum of an output voltage of the third amplifier and a calibration voltage;

a comparator connected with the second amplifier and the voltage adder, and configured to compare output of the second amplifier and output of the voltage adder, and output a signal accordingly; and

a calibration voltage generator connected with output of the comparator, and configured to generate the calibration voltage according to the output of the comparator; the calibration voltage generator is configured to vary the calibration voltage until the output of the comparator meets a predetermined requirement.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 19, 2025
From: JOLLY SEVEN, SERIES 70 OF ALLIED SECURITY TRUST I; IP3 2024, SERIES 924 OF ALLIED SECURITY TRUST I
To: MERCURY POINTE, LLC
Reel/Frame 072058/0937 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 6, 2023
From: IP3 2021, SERIES 600 OF ALLIED SECURITY TRUST I
To: JOLLY SEVEN, SERIES 70 OF ALLIED SECURITY TRUST I
Reel/Frame 065146/0191 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2021
From: SHENZHEN DANSHA TECHNOLOGY CO., LTD.
To: IP3 2021, SERIES 600 OF ALLIED SECURITY TRUST I
Reel/Frame 058030/0151 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2020
From: LIANKANG TECHNOLOGY LIMITED
To: SHENZHEN DANSHA TECHNOLOGY CO., LTD.
Reel/Frame 053019/0789 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 23, 2019
From: DENG, CHUNLIAN
To: LIANKANG TECHNOLOGY LIMITED
Reel/Frame 050796/0386 →