IP Library Granted Patent US 10,835,102
Granted Patent B2
US 10,835,102 · App. 15/222,471 · Granted Nov 17, 2020

Tunable color-temperature white light source

Inventors: Vidya Ganapati (San Jose, CA); Supriyo Sinha (Menlo Park, CA); Eden Rephaeli (Menlo Park, CA)
Assignee: VERILY LIFE SCIENCES LLC
A61B1/00006A61B1/00039A61B1/063A61B1/0638A61B1/0669A61B1/0684A61B1/07G02B23/2469A61B2090/309
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Quick Facts
Patent No.
US 10,835,102
App. No.
15/222,471
Granted
Nov 17, 2020
Kind
B2
Abstract

A system for medical diagnosis includes a fiber optic cable and a plurality of light emitters optically coupled to a first end of the fiber optic cable. Each light emitter in the plurality of light emitters emits a distinct bandwidth of light. The system also includes a controller electrically coupled to the plurality of light emitters. The controller includes logic that when executed by the controller causes the controller to perform operations including: receiving instructions including an illumination mode, and adjusting an intensity of the light emitted from each light emitter in the plurality of light emitters to match the illumination mode.

Claims (48)

1. A system for medical diagnosis, comprising:

a fiber optic cable;

a plurality of light emitters optically coupled to a first end of the fiber optic cable, wherein each light emitter in the plurality of light emitters emits a distinct bandwidth of light; and

a controller disposed in the system and electrically coupled to the plurality of light emitters, wherein the controller includes logic that when executed by the controller causes the controller to perform operations including:

generating reference image data based on a scene under reference illumination from a reference illuminant;

receiving instructions including an illumination mode, wherein the illumination mode is based on the reference image data;

adjusting an intensity of the light emitted from each light emitter in the plurality of light emitters to match the illumination mode;

generating illumination mode image data based on the scene illuminated under the illumination mode; and

comparing the reference image data and the illumination mode image data.

2. The system of claim 1 , wherein the illumination mode includes a set of predefined intensities of the light for the plurality of light emitters to emit.

3. The system of claim 2 , wherein the set of predefined intensities mimic a blackbody emission spectrum corresponding to a temperature, and wherein the temperature includes a specific temperature between 1,000° K and 10,000° K, inclusive.

4. The system of claim 3 , wherein when the temperature of the blackbody emission spectrum is less than 4,000° K a light emitter in the plurality of light emitters with a longest wavelength emission spectrum has a largest intensity, and wherein when the temperature of the blackbody emission spectrum is greater than 4,000° K a light emitter in the plurality of light emitters with a shortest wavelength emission spectrum has a largest intensity.

5. The system of claim 2 , wherein the illumination mode mimics the blackbody emission spectrum by having a Δ(u′v′)≤0.030 from the blackbody emission spectrum, in a CIELUV color space.

6. The system of claim 1 , wherein a bandwidth of the light emitted by most light emitters in the plurality of light emitters is less than 5 nm.

7. The system of claim 1 , wherein generating reference image data includes taking a picture with a camera, and wherein the illumination mode is based on an analysis of the picture.

8. A method of endoscopic illumination, comprising:

generating reference image data based on a scene under reference illumination from a reference illuminant;

selecting a light emission mode from a plurality of light emission modes based on the reference image data;

emitting light from a plurality of light emitters in response to the light emission mode selected, wherein each light emitter in the plurality of light emitters emits a distinct bandwidth of the light;

transporting the light through a fiber optic cable, wherein a first end of the fiber optic cable is optically coupled to the plurality of light emitters;

out-coupling the light from a second end of the fiber optic cable, wherein the light output from the second end of the fiber optic cable mimics a continuous emission spectrum of the reference illumination to a human eye;

generating light emission mode image data based on the scene illuminated under the light emission mode; and

comparing the reference image data and the light emission mode image data.

9. The method of claim 8 , wherein each light emission mode in the plurality of light emission modes corresponds to a temperature of a blackbody emission spectrum between 1,000° K and 10,000° K, inclusive.

10. The method of claim 9 , wherein when the temperature of the blackbody emission spectrum is less than 2,500° K the plurality of light emitters emit an emission spectrum that increases monotonically with increasing wavelength, wherein a light emitter in the plurality of light emitters with a shortest wavelength emission spectrum has a smallest intensity, and a light emitter in the plurality of light emitters with a longest wavelength emission spectrum has a largest intensity.

11. The method of claim 9 , wherein when the temperature of the blackbody emission spectrum is less than 4,000° K a light emitter in the plurality of light emitters with a longest wavelength emission spectrum has a largest intensity.

12. The method of claim 9 , wherein when the temperature of the blackbody emission spectrum is greater than 4,000° K a light emitter in the plurality of light emitters with a shortest wavelength emission spectrum has a largest intensity.

13. The method of claim 9 , wherein light output from the second end of the fiber optic cable mimics the blackbody emission spectrum by having a Δ(u′v′)≤0.030 from the blackbody emission spectrum, in a CIELUV color space.

14. The method of claim 9 , wherein the plurality of light emitters includes five laser diodes with a bandwidth of 5 nm or less.

15. The method of claim 9 , wherein the light emission mode is selected by a user by inputting parameters of a custom continuous emission spectrum.

16. The method of claim 9 , wherein selecting a light emission mode includes:

determining a color of a color checker under the reference illumination; and

generating an illumination mode to match the reference illumination.

17. An endoscope, comprising:

a fiber optic cable;

a reference illuminant;

a camera;

a plurality of light emitters optically coupled to a first end of the fiber optic cable, wherein each light emitter in the plurality of light emitters emits a distinct bandwidth of light; and

control logic electrically coupled to the plurality of light emitters to control an emission intensity of each light emitter in the plurality of light emitters, wherein the light output from a second end of the fiber optic cable is based on reference image data of a scene illuminated by the reference illuminant and generated by the camera, wherein the control logic includes logic that when executed by the controller causes the endoscope to perform operations including:

generating illumination mode image data based on the scene illuminated under the illumination mode; and

comparing the reference image data and the illumination mode image data.

18. The endoscope of claim 17 , wherein the control logic is coupled to receive user input and, in response to the user input, independently change the emission intensity of each light emitter in the plurality of light emitters.

19. The endoscope of claim 18 , wherein the user input includes a temperature of a blackbody emission spectrum.

20. The endoscope of claim 19 , wherein the temperature ranges from 1,000° K to 10,000° K.

21. The endoscope of claim 19 , wherein the light output from the second end of the fiber optic cable mimics the blackbody emission spectrum by having a Δ(u′v′)≤0.030 from the blackbody emission spectrum, in a CIELUV color space.

22. The endoscope of claim 17 , wherein the plurality of light emitters includes at least one of a plurality of laser diodes or a plurality of light emitting diodes.

23. The endoscope of claim 22 , wherein a bandwidth of light emitted by most light emitters in the plurality of light emitters is less than 5 nm.

24. The endoscope of claim 23 , wherein the plurality of light emitters includes five light emitters.

Assignments (3)
CHANGE OF NAME Recorded Apr 1, 2026
From: VERILY LIFE SCIENCES LLC
To: VERILY HEALTH INC.
Reel/Frame 075367/0775 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE NAME PREVIOUSLY RECORDED AT REEL: 039285 FRAME: 0026. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT . Recorded Jul 25, 2017
From: GANAPATI, VIDYA; SINHA, SUPRIYO; REPHAELI, EDEN
To: VERILY LIFE SCIENCES LLC
Reel/Frame 043096/0107 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2016
From: GANAPATI, VIDYA; SUPRIYO, SUPRIYO; REPHAELI, EDEN
To: GOOGLE INC.
Reel/Frame 039285/0026 →
Continuity (1)
Related Publication 20180028047A1 · Feb 1, 2018
Cited By (7)
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