IP Library Granted Patent US 11,986,271
Granted Patent B2
US 11,986,271 · App. 17/677,059 · Granted May 21, 2024

Apparatus and method for measuring bio-signal

Inventors: Sung Hyun Nam (Yongin-si, KR); Chulhong Kim (Pohang-si, KR); Ka Ram Choi (Yongin-si, KR); Jin Young Kim (Pohang-si, KR); Jin Woo Baik (Pohang-si, KR); Joongho Ahn (Pohang-si, KR)
Assignees: SAMSUNG ELECTRONICS CO., LTD.; POSTECH Research and Business Development Foundation
A61B5/0095A61B5/02416
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Quick Facts
Patent No.
US 11,986,271
App. No.
17/677,059
Granted
May 21, 2024
Kind
B2
Abstract

An apparatus for measuring a bio-signal includes: a light source configured to emit light; an ultrasonic transducer configured to obtain a photoacoustic signal generated from an object; a photoacoustic coupler disposed in contact with the ultrasonic transducer and configured to direct the light transmitted from the light source to a scanner and to direct the photoacoustic signal generated from the object to the ultrasonic transducer; the scanner configured to reflect the light incident from the photoacoustic coupler to the object, and reflect the photoacoustic signal generated from the object to the photoacoustic coupler; a scanner controller configured to adjust a light incident position on the object by controlling the angle of the scanner; a light detector configured to obtain a light signal by detecting the light scattered or reflected from the object; and a processor configured to obtain bio-information based on the light signal and the photoacoustic signal.

Claims (40)

1. An apparatus for measuring a bio-signal, the apparatus comprising:

a light source configured to emit light;

an ultrasonic transducer configured to obtain a photoacoustic signal generated from an object;

a photoacoustic coupler disposed in contact with the ultrasonic transducer and configured to direct the light transmitted from the light source to a scanner and to direct the photoacoustic signal generated from the object to the ultrasonic transducer;

the scanner configured to reflect the light incident from the photoacoustic coupler to the object, and reflect the photoacoustic signal generated from the object to the photoacoustic coupler;

a scanner controller configured to adjust a light incident position on the object by controlling an angle of the scanner;

a plurality of light detectors configured to obtain a light signal by assigning a weight based on a distance between the light incident position on the object and each of the plurality of detectors, and computing a weighted sum of an amount of light detected by each of the plurality of light detectors, based on the light incident position being placed between the plurality of light detectors; and

a processor configured to obtain bio-information based on the light signal and the photoacoustic signal,

wherein the scanner controller is further configured to adjust the light incident position to be placed between the plurality of light detectors by adjusting the angle of the scanner while the light source, the ultrasonic transducer, and the plurality of light detectors are placed at fixed positions, and allow a first distance between one of the plurality of light detectors and the light incident position to increase as a second distance between another one of the plurality of light detectors and the light incident position decreases, and

wherein the processor is configured to obtain a blood vessel image of the object based on the photoacoustic signal for each light incident position.

2. The apparatus of claim 1 , wherein the scanner controller is configured to adjust the light incident position on the object by controlling a tilt angle of the scanner.

3. The apparatus of claim 2 , wherein the processor is configured to obtain the blood vessel image of the object based on the photoacoustic signal for each light incident position, and obtain a photoplethysmography (PPG) signal according to a distance between the adjusted light incident position and one of the plurality of light detectors.

4. The apparatus of claim 1 , further comprising a light transmitter configured to transmit the light emitted from the light source to the photoacoustic coupler.

5. The apparatus of claim 4 , wherein the light transmitter comprises an objective lens for condensing the light emitted from the light source to the photoacoustic coupler.

6. The apparatus of claim 1 , wherein the processor is configured to pulse drive the light source, or to continuously drive the light source by modulating a light intensity according to time.

7. An apparatus for measuring a bio-signal, the apparatus comprising:

a first light source configured to emit a first light;

an ultrasonic transducer configured to obtain a photoacoustic signal generated from an object;

a photoacoustic coupler disposed in contact with the ultrasonic transducer and configured to reflect the first light transmitted from the first light source to a scanner and to direct the photoacoustic signal generated from the object to the ultrasonic transducer;

the scanner configured to reflect the light incident from the photoacoustic coupler to the object, and reflect the photoacoustic signal generated from the object to the photoacoustic coupler;

a second light source configured to emit a second light to measure a photoplethysmography (PPG) signal;

a plurality of light detectors configured to measure a light signal by assigning a weight based on a distance between a light incident position on the object and each of the plurality of detectors, and computing a weighted sum of an amount of light detected by each of the plurality of light detectors, based on the light incident position being placed between the plurality of light detectors;

a processor configured to obtain bio-information based on the light signal and the photoacoustic signal; and

a scanner controller configured to adjust the light incident position to be placed between the plurality of light detectors by adjusting the angle of the scanner while the light source, the ultrasonic transducer, and the plurality of light detectors are placed at fixed positions, and allow a first distance between one of the plurality of light detectors and the light incident position to increase as a second distance between another one of the plurality of light detectors and the light incident position decreases.

8. The apparatus of claim 7 , wherein the scanner controller is further configured to adjust the light incident position by controlling a tilt angle of the scanner.

9. The apparatus of claim 7 , further comprising a light transmitter configured to transmit the first light and the second light to the photoacoustic coupler.

10. The apparatus of claim 9 , wherein the light transmitter comprises an objective lens for condensing the first light and the second light to the photoacoustic coupler.

11. The apparatus of claim 9 , wherein the processor is further configured to obtain a blood vessel image of the object based on the photoacoustic signal for each light incident position, and to obtain the PPG signal according to a distance between the light incident position and one of the plurality of light detectors.

12. The apparatus of claim 7 , wherein the first light is reflected by the photoacoustic coupler and the scanner to be incident to the object and the second light source is configured to emit the second light directly to the object.

13. The apparatus of claim 7 , wherein the processor is further configured to control the second light source to emit the second light of a plurality of wavelength ranges, and to assign a wavelength-specific weight to the amount of light of each wavelength detected by each of the light detectors.

14. The apparatus of claim 7 , wherein at least one of a wavelength and an intensity of the first light and the second light is different from each other.

15. The apparatus of claim 7 , wherein the processor is further configured to drive the first light source when the scanner rotates in a first direction, and to drive the second light source when the scanner rotates in a second direction.

16. A method of measuring a bio-signal, the method comprising:

emitting light;

directing the light to a scanner, by a photoacoustic coupler disposed in contact with an ultrasonic transducer;

directing the light incident from the photoacoustic coupler to an object, by the scanner having an adjustable tilt angle;

obtaining, by the ultrasonic transducer, a photoacoustic signal generated from the object and then is received through the scanner and the photoacoustic coupler; and

measuring, by a plurality of light detectors, a light signal by assigning a weight based on a distance between a light incident position on the object and each of the plurality of detectors, and computing a weighted sum of an amount of light detected by each of the plurality of light detectors,

wherein the light incident position is placed between the plurality of light detectors, and

wherein the directing of the light incident from the photoacoustic coupler comprises: adjusting the light incident position to be placed between the plurality of light detectors by adjusting the angle of the scanner while the light source, the ultrasonic transducer, and the plurality of light detectors are placed at fixed positions, and allowing a first distance between one of the plurality of light detectors and the light incident position to increase as a second distance between another one of the plurality of light detectors and the light incident position decreases.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 22, 2022
From: NAM, SUNG HYUN; KIM, CHULHONG; CHOI, KA RAM; KIM, JIN YOUNG; BAIK, JIN WOO; AHN, JOONGHO
To: SAMSUNG ELECTRONICS CO., LTD.; POSTECH RESEARCH AND BUSINESS DEVELOPMENT FOUNDATION
Reel/Frame 059217/0322 →
Priority Claims (1)
KR 10-2021-0163083 · Nov 24, 2021 · national
Continuity (1)
Related Publication 20230157551A1 · May 25, 2023