IP Library Granted Patent US 12,343,124
Granted Patent B2
US 12,343,124 · App. 18/651,660 · Granted Jul 1, 2025

Pulse spectroscopy

Inventors: Christopher J. Kulach (Cochrane, CA); Paul R. MacDonald (Cochrane, CA)
Assignee: Garmin Switzerland GmbH
A61B5/02427A61B5/02416A61B5/02438A61B5/14535A61B5/14542A61B5/14552A61B5/4875A61B5/681A61B5/6824A61B5/7207A61B5/7214A61B5/7246A61B5/725A61B5/7253A61B5/7257A61B5/7278A61B5/7282A61B5/0004A61B2503/10A61B2505/09A61B2560/0462A61B2562/0238A61B2562/0242A61B2562/04A61B2562/043A61B2562/046
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Quick Facts
Patent No.
US 12,343,124
App. No.
18/651,660
Granted
Jul 1, 2025
Kind
B2
Abstract

An electronic fitness device comprises a first optical transmitter, a second optical transmitter, a first optical receiver, a second optical receiver, and a processing element. The first optical transmitter is configured to transmit a first optical signal having a first wavelength and the second optical transmitter is configured to transmit a second optical signal having the first wavelength. The first and second optical receivers are configured to receive the first and second optical signals, respectively, and to generate first and second photoplethysmogram (PPG) signals, respectively, resulting from the received optical signals. The processing element is configured to receive and compare the first and second PPG signals, identify a common component present in the first and the second PPG signals based on the comparison, and generate a cardiac component from the first and second PPG signals based on the identified common component.

Claims (73)

1. An electronic wearable device comprising:

a housing including a bottom wall adapted to be positioned over the skin of a user;

a first optical transmitter positioned along the bottom wall, the first optical transmitter configured to transmit a first optical signal having a first wavelength;

a second optical transmitter positioned along the bottom wall, the second optical transmitter configured to transmit a second optical signal having the first wavelength;

a first optical receiver positioned along the bottom wall, the first optical receiver configured to receive the first optical signal modulated by the skin of the user and generate a first photoplethysmogram (PPG) signal resulting from the received first optical signal;

a second optical receiver positioned along the bottom wall, the second optical receiver configured to receive the second optical signal modulated by the skin of the user and generate a second PPG signal resulting from the received second optical signal; and

a processing element in electronic communication with the first optical transmitter, the second optical transmitter, the first optical receiver and the second optical receiver, the processing element configured to:

receive the first PPG signal from the first optical receiver,

receive the second PPG signal from the second optical receiver,

compare the first and the second PPG signals,

identify a common component present in the first and the second PPG signals based on the comparison,

generate a cardiac component from the first PPG signal and the second PPG signal based on the identified common component, and

determine blood-related physiological information based on the cardiac component;

wherein a first path from the first optical transmitter to the first optical receiver along which the first optical signal travels is different from a second path from the second optical transmitter to the first optical receiver along which the second optical signal travels.

2. The electronic wearable device of claim 1 , wherein the processing element is further configured to control the first optical transmitter to transmit the first optical signal during a first period of time and the second optical signal during a second period of time.

3. The electronic fitness device of claim 2 , wherein the first period of time partially overlaps with the second period of time.

4. The electronic wearable device of claim 1 , further comprising at least a first signal filter, and wherein the processing element is further configured to determine a signal filter parameter based on the common component.

5. The electronic wearable device of claim 4 , wherein the processing element generates the cardiac component by filtering the first PPG signal and the second PPG signal with the first signal filter using the signal filter parameter.

6. The electronic wearable device of claim 4 , wherein the processing element is further configured to utilize the signal filter parameter to generate a transfer function that is applied to at least a first signal filter, and wherein the processing element generates the cardiac component by filtering the first PPG signal and the second PPG signal with the first signal filter.

7. The electronic wearable device of claim 4 , wherein the signal filter parameter is a spectral parameter of the common component, and wherein the processing element generates the cardiac component by filtering the first PPG signal and the second PPG signal with the first signal filter using the spectral parameter.

8. The electronic wearable device of claim 4 , wherein the signal filter parameter is a common waveform associated with the common component and the processing element generates the cardiac component using the common waveform.

9. The electronic wearable device of claim 1 , wherein the determined blood-related physiological information is a pulse-oximetry level.

10. An electronic wearable device comprising:

a housing including a bottom wall adapted to be positioned over the skin of a user;

a first optical transmitter positioned along the bottom wall, the first optical transmitter configured to transmit a first optical signal having a first wavelength along a first path;

a second optical transmitter positioned along the bottom wall, the second optical transmitter configured to transmit a second optical signal having a second wavelength along the first path;

a third optical transmitter positioned along the bottom wall, the third optical transmitter configured to transmit a third optical signal having a first wavelength along a second path;

a fourth optical transmitter positioned along the bottom wall, the fourth optical transmitter configured to transmit a fourth optical signal having the second wavelength along the second path;

a first optical receiver positioned along the bottom wall, the first optical receiver configured to receive the first optical signal and the second optical signal modulated by the skin of the user and generate a first photoplethysmogram (PPG) signal and a second PPG signal resulting from the received first optical signal and the second optical signal, respectively;

a second optical receiver positioned along the bottom wall, the second optical receiver configured to receive the third optical signal and the fourth optical signal modulated by the skin of the user and generate a third PPG signal and a fourth PPG signal resulting from the received third optical signal and the fourth optical signal, respectively; and

a processing element in electronic communication with the first optical transmitter, the second optical transmitter, the first optical receiver and the second optical receiver, the processing element configured to:

receive the first PPG signal and the second PPG signal from the first optical receiver,

receive the third PPG signal and the fourth PPG signal from the second optical receiver,

compare the first and the third PPG signals,

identify a first common component present in the first and the third PPG signals based on the comparison of the first and the third PPG signals,

compare the second and the fourth PPG signals,

identify a second common component present in the second and the fourth PPG signals based on a comparison of the second and the fourth PPG signals,

generate a first cardiac component from the first PPG signal and the third PPG signal based on the first common component between the first PPG signal and the third PPG signal,

generate a second cardiac component from the second PPG signal and the fourth PPG signal based on the second common component between the second PPG signal and the fourth PPG, and

determine blood-related physiological information based on the first cardiac component and the second cardiac component;

wherein the first path is different from the second path.

11. The electronic wearable device of claim 10 , wherein the processing element is further configured to control the first optical transmitter to transmit the first optical signal during a first period of time and the second optical signal during a second period of time.

12. The electronic wearable device of claim 10 , further comprising at least a first signal filter and a second signal filter, and wherein the processing element is further configured to determine a first signal filter parameter based on the first common component and a second signal filter parameter based on the second common component.

13. The electronic wearable device of claim 12 , wherein the processing element:

generates the first cardiac component by filtering the first PPG signal with the first signal filter using the first signal filter parameter, and

generates the second cardiac component by filtering the second PPG signal with the second signal filter using the second signal filter parameter.

14. The electronic wearable device of claim 12 , wherein the processing element is further configured to utilize the first signal filter parameter to generate a first transfer function that is applied to a first signal filter and to utilize the second signal filter parameter to generate a second transfer function that is applied to a second signal filter, and wherein the processing element:

generates the first cardiac component by filtering the first PPG signal with the first signal filter, and

generates the second cardiac component by filtering the second PPG signal with the second signal filter.

15. The electronic fitness device of claim 12 , wherein the first signal filter parameter is a first spectral parameter of the first common component, the second signal filter parameter is a second spectral parameter of the second common component, and wherein the processing element:

generates the first cardiac component by filtering the first PPG signal with the first signal filter using the first spectral parameter, and

generates the second cardiac component by filtering the second PPG signal with the second signal filter using the second spectral parameter.

16. The electronic wearable device of claim 12 , wherein the first signal filter parameter is a first common waveform associated with the first common component, the second signal filter parameter is a second common waveform associated with the second common component and the processing element:

generates the first cardiac component by comparing the first PPG signal with the first common waveform, and

generates the second cardiac component by comparing the second PPG signal with the second common waveform.

17. The electronic wearable device of claim 10 , wherein the determined blood-related physiological information is a pulse-oximetry level.

18. An electronic wearable device comprising:

a housing including a bottom wall adapted to be positioned over the skin of a user;

a first optical transmitter positioned along the bottom wall, the first optical transmitter configured to transmit a first optical signal having a first wavelength;

a second optical transmitter positioned along the bottom wall, the second optical transmitter configured to transmit a second optical signal having the first wavelength;

a first optical receiver positioned along the bottom wall, the first optical receiver configured to receive the first optical signal modulated by the skin of the user and generate a first photoplethysmogram (PPG) signal resulting from the received first optical signal;

a second optical receiver positioned along the bottom wall, the second optical receiver configured to receive the second optical signal modulated by the skin of the user and generate a second PPG signal resulting from the received second optical signal; and

a processing element in electronic communication with the first optical transmitter, the second optical transmitter, the first optical receiver and the second optical receiver, the processing element configured to:

control the first optical transmitter to transmit the first optical signal during a first period of time and the second optical signal during a second period of time,

receive the first PPG signal from the first optical receiver,

receive the second PPG signal from the second optical receiver,

compare the first and the second PPG signals,

identify a common component present in the first and the second PPG signals based on the comparison,

generate a cardiac component from the first PPG signal and the second PPG signal based on the identified common component,

determine blood-related physiological information based on the cardiac component;

wherein a first path from the first optical transmitter to the first optical receiver along which the first optical signal travels is different from a second path from the second optical transmitter to the second optical receiver along which the second optical signal travels.

19. The electronic wearable device of claim 18 , further comprising at least a first signal filter, and wherein the processing element is further configured to determine a signal filter parameter based on the common component.

20. The electronic wearable device of claim 18 , wherein the determined blood-related physiological information is a pulse-oximetry level.

Continuity (7)
Continuation 17492382 · Oct 1, 2021
Continuation 15969553 · May 2, 2018
Provisional Application 62580024 · Nov 1, 2017
Provisional Application 62580308 · Nov 1, 2017
Provisional Application 62571606 · Oct 12, 2017
Provisional Application 62501522 · May 4, 2017
Related Publication 20240277242A1 · Aug 22, 2024
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