IP Library Granted Patent US 12,478,275
Granted Patent B2
US 12,478,275 · App. 17/854,267 · Granted Nov 25, 2025

Detection device

Inventor: Hitoshi Saito (Tokyo, JP)
Assignee: Magnolia White Corporation
A61B5/02433A61B5/14552A61B5/6826
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Quick Facts
Patent No.
US 12,478,275
App. No.
17/854,267
Granted
Nov 25, 2025
Kind
B2
Abstract

A detection device includes an annular substrate, optical sensors annularly arranged along the substrate, and a plurality of light sources annularly arranged correspondingly to the arrangement of the optical sensors.

Claims (75)

1 . A detection device comprising:

an annular substrate;

optical sensors annularly arranged at an inner circumferential side of a ring formed by an inner peripheral surface of the detection device, along a circumferential direction along the substrate; and

a plurality of light sources annularly arranged correspondingly to the arrangement of the optical sensors, wherein

the light sources are disposed at both sides of a detection area provided with the optical sensors, at the inner circumferential side of the ring, along the circumferential direction.

2 . The detection device according to claim 1 , wherein

each of the light sources comprises:

a first light source configured to emit red light; and

a second light source configured to emit green light, and

a plurality of the first light sources and a plurality of the second light sources are alternately arranged in a ring shape.

3 . The detection device according to claim 2 , wherein detection is configured to be performed using at least one of:

a transmissive detection method in which light of any one of the light sources is transmitted through a subject of detection located inside the annularly arranged optical sensors, and one of the optical sensors in a position facing the light source emitting the light with the subject of detection interposed therebetween performs the detection, and

a reflective detection method in which light from any one of the light sources is reflected by the subject of detection and is detected by one of the optical sensors in a position corresponding to a location of the light source that emits light.

4 . The detection device according to claim 3 , wherein the first light sources are configured to be lit up in the transmissive detection method.

5 . The detection device according to claim 3 , wherein at least either of the first light sources or the second light sources are configured to be lit up in the reflective detection method.

6 . The detection device according to claim 1 , wherein the annular substrate is provided along an inner peripheral surface of a finger ring.

7 . The detection device according to claim 1 , wherein the annular substrate is provided along an inner peripheral surface of a wristband.

8 . A detection device comprising:

an annular substrate;

optical sensors annularly arranged along the substrate; and

a plurality of light sources annularly arranged correspondingly to the arrangement of the optical sensors, wherein

each of the light sources comprises:

a first light source configured to emit red light; and

a second light source configured to emit green light,

a plurality of the first light sources and a plurality of the second light sources are alternately arranged in a ring shape,

detection is configured to be performed using at least one of:

a transmissive detection method in which light of any one of the light sources is transmitted through a subject of detection located inside the annularly arranged optical sensors, and one of the optical sensors in a position facing the light source emitting the light with the subject of detection interposed therebetween performs the detection, and

a reflective detection method in which light from any one of the light sources is reflected by the subject of detection and is detected by one of the optical sensors in a position corresponding to a location of the light source that emits light,

at least either of the first light sources or the second light sources are configured to be lit up in the reflective detection method,

a detection area in which the optical sensors are arranged forms a circular ring,

the optical sensors are provided so as to be capable of individually performing a detection operation for each of a plurality of partial areas obtained by dividing a circumference formed by the circular ring into circular arcs each in a predetermined angular range,

each of the light sources is provided on a lateral side of a corresponding partial area of the partial areas, and

the light source, at a location corresponding to the partial area where the detection operation is performed, is configured to be lit up.

9 . The detection device according to claim 8 , wherein

the predetermined angular range is 45°, and

the optical sensors in the partial areas are configured to sequentially operate such that the partial area where the detection operation is performed is shifted in steps of 45°.

10 . The detection device according to claim 9 , wherein

the subject of detection is a finger or a wrist of a human,

a pulse rate is measured a plurality of times for each of the partial areas based on a light-dark pattern of blood vessels included in the subject of detection, and

a measurement result of the pulse rate in the partial area is employed that meets a predetermined condition about variation in results of the measurement of the pulse rate performed a plurality of times.

11 . The detection device according to claim 10 , wherein the predetermined condition is that a standard deviation of the results of the measurement of the pulse rate performed a plurality of times is the smallest.

12 . The detection device according to claim 10 , wherein the predetermined condition is that a mean value is calculated that is closest to the mean value of the results of the measurement of the pulse rate in all the partial regions.

13 . The detection device according to claim 10 , wherein the predetermined condition is that a difference between maximum and minimum values of the results of the measurement of the pulse rate performed a plurality of times is the smallest.

14 . A detection device comprising:

an annular substrate;

optical sensors annularly arranged along the substrate; and

a plurality of light sources annularly arranged correspondingly to the arrangement of the optical sensors, wherein

each of the light sources comprises:

a first light source configured to emit red light; and

a second light source configured to emit green light,

a plurality of the first light sources and a plurality of the second light sources are alternately arranged in a ring shape,

detection is configured to be performed using at least one of:

a transmissive detection method in which light of any one of the light sources is transmitted through a subject of detection located inside the annularly arranged optical sensors, and one of the optical sensors in a position facing the light source emitting the light with the subject of detection interposed therebetween performs the detection, and

a reflective detection method in which light from any one of the light sources is reflected by the subject of detection and is detected by one of the optical sensors in a position corresponding to a location of the light source that emits light,

the first light sources are configured to be lit up in the transmissive detection method,

a detection area in which the optical sensors are arranged forms a circular ring,

the optical sensors are provided so as to be capable of individually performing a detection operation for each of a plurality of partial areas obtained by dividing a circumference formed by the circular ring into circular arcs each in a predetermined angular range,

each of the light sources is provided on a lateral side of a corresponding partial area of the partial areas, and

the light source, provided in a partial area facing the partial area where the detection operation is performed with the subject of detection interposed therebetween, is configured to be lit up.

15 . A detection device comprising:

an annular substrate;

optical sensors annularly arranged along the substrate; and

a plurality of light sources annularly arranged correspondingly to the arrangement of the optical sensors, wherein

a detection area in which the optical sensors are arranged forms a circular ring,

the optical sensors are provided so as to be capable of individually performing a detection operation for each of a plurality of partial areas obtained by dividing a circumference formed by the circular ring into circular arcs each in a predetermined angular range,

each of the light sources is provided on a lateral side of a corresponding partial area of the partial areas, and

the light source, at a location corresponding to the partial area where the detection operation is performed, is configured to be lit up.

16 . A detection device comprising:

an annular substrate;

optical sensors annularly arranged along the substrate; and

a plurality of light sources annularly arranged correspondingly to the arrangement of the optical sensors, wherein

a detection area in which the optical sensors are arranged forms a circular ring,

the optical sensors are provided so as to be capable of individually performing a detection operation for each of a plurality of partial areas obtained by dividing a circumference formed by the circular ring into circular arcs each in a predetermined angular range,

each of the light sources is provided on a lateral side of a corresponding partial area of the partial areas, and

the light source, provided in a partial area facing the partial area where the detection operation is performed with the subject of detection interposed therebetween, is configured to be lit up.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 2, 2025
From: JAPAN DISPLAY INC.
To: MAGNOLIA WHITE CORPORATION
Reel/Frame 071793/0491 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 30, 2022
From: SAITO, HITOSHI
To: JAPAN DISPLAY INC.
Reel/Frame 060556/0098 →
Priority Claims (1)
JP 2021-115056 · Jul 12, 2021 · national
Continuity (1)
Related Publication 20230011192A1 · Jan 12, 2023
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