IP Library Granted Patent US 10,718,856
Granted Patent B2
US 10,718,856 · App. 15/812,872 · Granted Jul 21, 2020

Vehicle sensor calibration system

Inventors: Jean-Sebastien Valois (Pittsburgh, PA); David McAllister Bradley (Pittsburgh, PA); Adam Charles Watson (Wesford, PA); Peter Anthony Melick (Pittsburgh, PA); Andrew Gilbert Miller (Pittsburgh, PA)
Assignee: UATC, LLC
G01S7/497G01S17/08G01S17/931G01S7/4026G01S7/4972
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Quick Facts
Patent No.
US 10,718,856
App. No.
15/812,872
Granted
Jul 21, 2020
Kind
B2
Abstract

A vehicle sensor calibration system for self-driving vehicles can include a turntable on which a sensor system including a LIDAR sensor is positioned. A plurality of fiducial targets can be positioned around the turntable to enable calibration of the sensor system, and a control mechanism can automatically rotate the turntable when the sensor system is positioned on the turntable. The system can include one or more computing systems that receive a data log corresponding to sensor data recorded by the sensor system as the sensor system rotates on the turntable, and analyze the sensor data to determine a set of calibration parameters to calibrate the sensor system.

Claims (40)

1. A vehicle sensor calibration system for self-driving vehicles comprising:

a turntable on which a sensor system including a LIDAR sensor is positioned;

a plurality of fiducial targets positioned around the turntable to enable calibration of the sensor system;

a control mechanism to automatically rotate the turntable when the sensor system is positioned on the turntable; and

one or more computing systems that include one or more processors and one or more memory resources storing instructions that, when executed by the one or more processors, cause the one or more processors to:

receive, over a communication link with the sensor system, a data log corresponding to sensor data recorded by the sensor system as the sensor system rotates on the turntable; and

analyze the sensor data to determine a set of calibration parameters to calibrate the sensor system.

2. The vehicle sensor calibration system of claim 1 , wherein the vehicle sensor calibration system is provided in an indoor space, the vehicle sensor calibration system further comprising:

an environment control system to maximize signal-to-noise ratio for the sensor system during calibration, the environment control system to optimize at least lighting conditions and temperature conditions within the indoor space.

3. The vehicle sensor calibration system of claim 1 , wherein the executed instructions further cause the one or more processors to:

transmit the set of calibration parameters to the sensor system for automatic calibration of the sensor system.

4. The vehicle sensor calibration system of claim 1 , wherein the executed instructions cause the one or more processors to analyze the sensor data by running one or more mathematical models on the sensor data, the one or more mathematical models representing a calibrated sensor configuration for the sensor system.

5. The vehicle sensor calibration system of claim 4 , wherein the sensor system further includes at least one camera, and wherein the one or more mathematical models include a dedicated mathematical model for each of the LIDAR sensor and the at least one camera.

6. The vehicle sensor calibration system of claim 4 , wherein the one or more mathematical models implement gradient descent on the sensor data to determine the set of calibration parameters for each respective sensor of the sensor system.

7. The vehicle sensor calibration system of claim 1 , further comprising:

one or more detectors to detect a position of the sensor system on the turntable;

wherein the control mechanism automatically rotates the turntable based on the one or more detectors detecting the position of the sensor system on the turntable.

8. A method of calibrating a sensor system of a self-driving vehicle, the method being performed by one or more processors of a vehicle sensor calibration system and comprising:

detecting a sensor system including a LIDAR sensor on a turntable;

in response to detecting the sensor system on the turntable, rotating the turntable using a control mechanism to provide the sensor system with a sensor view of a plurality of fiducial targets, the plurality of fiducial targets being positioned around the turntable at different locations;

receiving, over a communication link with the sensor system, a data log corresponding to the sensor view recorded by the sensor system as the sensor system rotates on the turntable; and

analyzing the sensor data to determine a set of calibration parameters to calibrate the sensor system.

9. The method of claim 8 , wherein the vehicle sensor calibration system is provided in an indoor space, and wherein the vehicle sensor calibration system comprises an environment control system to maximize signal-to-noise ratio for the sensor system during calibration, the environment control system to optimize at least lighting conditions and temperature conditions within the indoor space.

10. The method of claim 8 , further comprising:

transmitting the set of calibration parameters to the sensor system for automatic calibration of the sensor system.

11. The method of claim 8 , the one or more processors analyze the sensor data by running one or more mathematical models on the sensor data, the one or more mathematical models representing a calibrated sensor configuration for the sensor system.

12. The method of claim 11 , wherein the sensor system further includes at least one camera, and wherein the one or more mathematical models include a dedicated mathematical model for each of the LIDAR sensor and the at least one camera.

13. The method of claim 11 , wherein the one or more mathematical models implement gradient descent on the sensor data to determine the set of calibration parameters for each respective sensor of the sensor system.

14. The method of claim 10 , wherein the vehicle sensor calibration system comprises one or more detectors to detect a position of the sensor system on the turntable, and wherein the one or more processors utilize the control mechanism to automatically rotate the turntable based on the one or more detectors detecting the position of the sensor system on the turntable.

15. A non-transitory computer readable medium storing instructions that, when executed by one or more processors of a vehicle sensor calibration system, cause the one or more processors to:

detect a sensor system including a LIDAR sensor on a turntable;

in response to detecting the sensor system on the turntable, rotate the turntable using a control mechanism to provide the sensor system with a sensor view of a plurality of fiducial targets, the plurality of fiducial targets being positioned around the turntable at different locations;

receive, over a communication link with the sensor system, a data log corresponding to the sensor view from the sensor system recorded as the sensor system rotates on the turntable; and

analyze the sensor data to determine a set of calibration parameters to calibrate the sensor system.

16. The non-transitory computer readable medium of claim 15 , wherein the executed instructions further cause the one or more processors to:

transmit the set of calibration parameters to the sensor system for automatic calibration of the sensor system.

17. The non-transitory computer readable medium of claim 15 , wherein the executed instructions cause the one or more processors to analyze the sensor data by running one or more mathematical models on the sensor data, the one or more mathematical models representing a calibrated sensor configuration for the sensor system.

18. The non-transitory computer readable medium of claim 17 , wherein the sensor system further includes at least one camera, and wherein the one or more mathematical models include a dedicated mathematical model for each of the LIDAR sensor and the at least one camera.

19. The non-transitory computer readable medium of claim 17 , wherein the one or more mathematical models implement gradient descent on the sensor data to determine the set of calibration parameters for each respective sensor of the sensor system.

20. The non-transitory computer readable medium of claim 15 , wherein the vehicle sensor calibration system comprises one or more detectors to detect a position of the sensor system on the turntable, and wherein the one or more processors utilize the control mechanism to automatically rotate the turntable based on the one or more detectors detecting the position of the sensor system on the turntable.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 14, 2024
From: UATC, LLC
To: AURORA OPERATIONS, INC.
Reel/Frame 067733/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE NATURE OF CONVEYANCE FROM CHANGE OF NAME TO ASSIGNMENT PREVIOUSLY RECORDED ON REEL 050353 FRAME 0884. ASSIGNOR(S) HEREBY CONFIRMS THE CORRECT CONVEYANCE SHOULD BE ASSIGNMENT. Recorded Nov 27, 2019
From: UBER TECHNOLOGIES, INC.
To: UATC, LLC
Reel/Frame 051145/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 8, 2019
From: VALOIS, JEAN-SEBASTIAN; BRADLEY, DAVID MCALLISTER; WATSON, ADAM CHARLES; MELICK, PETER ANTHONY; MILLER, ANDREW GILBERT
To: UBER TECHNOLOGIES, INC.
Reel/Frame 050651/0324 →
CHANGE OF NAME Recorded Sep 12, 2019
From: UBER TECHNOLOGIES, INC.
To: UATC, LLC
Reel/Frame 050353/0884 →