IP Library Patent Application 16508465
Patent Application
App. No. 16/508,465

Polarization Filtering in LiDAR System

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Quick Facts
Patent No.
US None
App. No.
16/508,465
Abstract

A light detection and ranging (LiDAR) system includes a light emitter and a light detector comprising a photodetector. The light detector is configured to receive and detect one or more characteristics of light emitted by the light emitter. The system also includes a polarization filter that is configured to limit polarization of light that is received by the light detector to a single polarization, and thus filter noise and/or certain retroreflected light from reaching the light detector.

Claims (38)

1 . A light detection and ranging (LiDAR) system, comprising:

a light emitter; and

a light detector comprising a photodetector, wherein the light detector is configured to receive and detect one or more characteristics of light emitted by the light emitter; and

a polarization filter, wherein the polarization filter is configured to limit polarization of light entering the light detector to a single polarization and thus filter noise light from reaching the light detector.

2 . The LiDAR system of claim 1 , wherein the light emitter comprises a laser emitter that is configured to emit a plurality of beams of polarized light, each of which will comprise a polarized laser beam.

3 . The LiDAR system of claim 1 , further comprising an optical element, and wherein the polarization filter is positioned in front of the optical element so that during operation, reflected light entering the LiDAR system will pass through the polarization filter before reaching the optical element.

4 . The LiDAR system of claim 1 , further comprising a plurality of optical elements, and wherein the polarization filter is positioned between the optical elements so that during operation, light entering the LiDAR system will pass through at least one of the optical elements before reaching the polarization filter, and through the polarization filter before reaching at least one other one of the optical elements.

5 . The LiDAR system of claim 1 , wherein the polarization filter is configured to filter out any light that does not exhibit a vertical polarization.

6 . The LiDAR system of claim 1 , wherein the polarization filter is combined with a quarter wave plate and is configured to filter out any light that does not exhibit a polarization that corresponds to a polarization of light emitted by the light emitter.

7 . The LiDAR system of claim 1 , further comprising or more optical elements, and wherein the polarization filter is between the optical elements and the light detector so that during operation, light entering the LiDAR system will pass through all of the optical elements before reaching the polarization filter, and through the polarization filter before reaching the light detector.

8 . A light detection and ranging (LiDAR) system, comprising:

a light emitter; and

a light detector comprising a photodetector, wherein the light detector is configured to receive and detect one or more characteristics of light emitted by the light emitter; and

a polarization filter, wherein the polarization filter is configured to limit polarization of light entering the LiDAR system to a single polarization and thus filter retroreflected light from cube corner reflectors and prevent it from reaching the light detector.

9 . The LiDAR system of claim 8 , wherein the light emitter comprises a laser emitter that is configured to emit a plurality of beams of polarized light, each of which will comprise a polarized laser beam.

10 . The LiDAR system of claim 8 , further comprising an optical element, and wherein the polarization filter is positioned in front of the optical element so that, during operation, light entering the LiDAR system will pass through the polarization filter before reaching the optical element.

11 . The LiDAR system of claim 8 , further comprising a plurality of optical elements, and wherein the polarization filter is positioned between the optical elements so that light entering the LiDAR system will pass through at least one of the optical elements before reaching the polarization filter, and through the polarization filter before reaching at least one other of the optical elements.

12 . The LiDAR system of claim 8 , wherein the polarization filter is configured to filter out any light that does not exhibit a vertical polarization.

13 . The LiDAR system of claim 8 , wherein the polarization filter is combined with a quarter wave plate and is configured to filter out any light that does not exhibit a polarization that corresponds to a polarization of light emitted by the light emitter.

14 . The LiDAR system of claim 8 , further comprising a plurality of optical elements, and wherein the polarization filter is positioned between the optical elements and the light detector so that during operation, light entering the LiDAR system will pass through at all of the optical elements before reaching the polarization filter, and through the polarization filter before reaching the light detector.

15 . A method of operating a LiDAR system, the method comprising:

by a LiDAR system comprising a light emitter, a light detector, and a polarization filter:

causing the light emitter to emit a plurality of beams of polarized light, wherein each of the beams exhibits a vertical polarization or a horizontal polarization;

receiving reflected beams of polarized light, wherein the reflected beams comprise beams that correspond to the beams emitted by the light emitter; and

limiting the reflected beams that reach the light detector to those reflected beams that have a single polarization by passing the reflected beams through a polarization filter before the reflected beams reach the light detector.

16 . The method of claim 15 , wherein passing the reflected beams through the polarization filter prevents noise light from reaching the light detector.

17 . The method of claim 15 , wherein passing the reflected beams through the polarization filter prevents retroreflected light from cube corner reflectors from reaching the light detector.

18 . The method of claim 15 , wherein the LiDAR system further comprises an optical element positioned between the light detector and the polarization filter, and receiving the reflected beams of polarized light comprises:

passing each of the reflected beams through the polarization filter; and

then passing non-filtered beams through the optical element to the light detector.

19 . The method of claim 15 , wherein the LiDAR system further comprises an optical element, the polarization filter is positioned between the light detector and the optical element, and receiving the reflected beams of polarized light comprises:

passing each of the reflected beams through the optical element;

then passing the reflected beams to the polarization filter; and

then passing beams not filtered by the polarization filter to the light detector.

20 . The method of claim 15 , wherein the LiDAR system further comprises a plurality of optical element, the polarization filter is positioned between at least two of the optical elements, and receiving the reflected beams of polarized light comprises:

passing each of the reflected beams through a first optical element;

then passing the reflected beams to the polarization filter; and

then passing beams not filtered by the polarization filter through at least one additional optical element and to the light detector.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2023
From: ARGO AI, LLC
To: LG INNOTEK CO., LTD.
Reel/Frame 063311/0079 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 11, 2019
From: KAMERMAN, GARY W.; TROWBRIDGE, CHRISTOPHER JOHN; NEGOITA, VIOREL C.
To: ARGO AI, LLC
Reel/Frame 049723/0475 →