IP Library › Granted Patent US 11,879,775
Granted Patent B2
US 11,879,775 · App. 17/247,809 · Granted Jan 23, 2024

Divided-aperture infra-red spectral imaging system

Inventors: Robert Timothy Kester (Friendswood, TX); Nathan Adrian Hagen (Utsunomiya, JP)
Assignee: Rebellion Photonics, Inc.
G01J3/0232G01J3/0229G01J3/28G01J3/2823G01J3/36G01N21/3504G01J2005/0077
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Quick Facts
Patent No.
US 11,879,775
App. No.
17/247,809
Granted
Jan 23, 2024
Kind
B2
Abstract

Various embodiments disclosed herein describe a divided-aperture infrared spectral imaging (DAISI) system that is adapted to acquire multiple IR images of a scene with a single-shot (also referred to as a snapshot). The plurality of acquired images having different wavelength compositions that are obtained generally simultaneously. The system includes at least two optical channels that are spatially and spectrally different from one another. Each of the at least two optical channels are configured to transfer IR radiation incident on the optical system towards an optical FPA unit comprising at least two detector arrays disposed in the focal plane of two corresponding focusing lenses. The system further comprises at least one temperature reference source or surface that is used to dynamically calibrate the two detector arrays and compensate for a temperature difference between the two detector arrays.

Claims (34)

1. An infrared (IR) imaging system comprising:

a plurality of optical channels configured to receive IR radiation from an object, wherein each of the plurality of optical channels comprises at least one imaging lens configured to image the object on a Focal Plane Array (FPA) unit; and

a processor in communication with the FPA unit and configured to:

acquire multispectral optical data from the plurality of optical channels;

calculate a distance between the IR imaging system and the object based at least in part on the multispectral optical data; and

calculate a size of the object based at least in part on the distance and an optical magnification factor of two of the plurality of optical channels.

2. The IR imaging system of claim 1 , wherein the plurality of optical channels are spatially and spectrally different.

3. The IR imaging system of claim 2 , wherein the FPA unit comprises a plurality of focal plane arrays.

4. The IR imaging system of claim 1 , wherein the processor is configured to further:

detect one or more target species present in the object based on the multispectral optical data.

5. The IR imaging system of claim 1 , wherein the processor is configured to further:

determine a difference between multispectral optical data acquired by the two of the plurality of optical channels, wherein the distance between the IR imaging system and the object is determined by the processor based further on the difference.

6. The IR imaging system of claim 5 , wherein the processor is configured to further:

calculate an estimate of parallax effects based at least in part on the difference between the multispectral optical data acquired by the two of the plurality of optical channels.

7. The IR imaging system of claim 6 , wherein the processor is configured to further:

compensate for parallax-induced imaging errors based at least in part on the estimate of parallax effects.

8. The IR imaging system of claim 5 , wherein the two of the plurality of optical channels are associated with the same spectral sensitivity to one or more target species.

9. The IR imaging system of claim 5 , wherein the two of the plurality of optical channels are arranged in a two-dimensional array.

10. A computer-implemented method comprising:

acquiring multispectral optical data from a plurality of optical channels of an infrared (IR) imaging system, wherein the plurality of optical channels are configured to receive IR radiation from an object, wherein each of the plurality of optical channels comprises at least one imaging lens configured to image the object on a Focal Plane Array (FPA) unit;

calculating a distance between the IR imaging system and the object based at least in part on the multispectral optical data; and

calculating a size of the object based at least in part on the distance and an optical magnification factor of two of the plurality of optical channels.

11. The computer-implemented method of claim 10 , wherein the plurality of optical channels are spatially and spectrally different.

12. The computer-implemented method of claim 11 , wherein the FPA unit comprises a plurality of focal plane arrays.

13. The computer-implemented method of claim 10 further comprising:

detecting one or more target species present in the object based on the multispectral optical data.

14. The computer-implemented method of claim 10 further comprising:

determining a difference between multispectral optical data acquired by the two of the plurality of optical channels, wherein determining the distance between the IR imaging system and the object is based further on the difference.

15. The computer-implemented method of claim 14 further comprising:

calculating an estimate of parallax effects based at least in part on the difference between the multispectral optical data acquired by the two of the plurality of optical channels.

16. The computer-implemented method of claim 15 further comprising:

compensating for parallax-induced imaging errors based at least in part on the estimate of parallax effects.

17. The computer-implemented method of claim 14 , wherein the two of the plurality of optical channels are associated with the same spectral sensitivity to one or more target species.

18. The computer-implemented method of claim 14 , wherein the two of the plurality of optical channels are arranged in a two-dimensional array.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 23, 2020
From: KESTER, ROBERT TIMOTHY; HAGEN, NATHAN ADRIAN
To: REBELLION PHOTONICS, INC.
Reel/Frame 054741/0563 →
Continuity (8)
Continuation 16549297 · Aug 23, 2019
Continuation 15462350 · Mar 17, 2017
Continuation 14539899 · Nov 12, 2014
Continuation In Part PCTUS2013041278 · May 16, 2013
Provisional Application 61903075 · Nov 12, 2013
Provisional Application 61764776 · Feb 14, 2013
Provisional Application 61688630 · May 18, 2012
Related Publication 20210116299A1 · Apr 22, 2021
Cited By (2)
US 12,411,042 US 12,644,769