IP Library Granted Patent US 12,475,581
Granted Patent B2
US 12,475,581 · App. 18/367,632 · Granted Nov 18, 2025

System for underwater depth perception having an image sensor and a complementary sensor

Inventors: Christopher Allan Gilson (Markham, CA); Stanley James Brown (Waterloo, CA)
Assignee: VOYIS IMAGING INC.
G06T7/50G06T7/70
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Quick Facts
Patent No.
US 12,475,581
App. No.
18/367,632
Granted
Nov 18, 2025
Kind
B2
Abstract

Systems described herein use either multiple image sensors or one image sensor and a complementary sensor to provide underwater depth perception. The systems include a computing system that provides the underwater depth perception based on data sensed by the multiple image sensors or the one image sensor and the complementary sensor. The systems can include a submersible device (such as a submersible mobile machine) that includes a holder configured to hold the one image sensor. The holder can be configured to hold the computing system in addition to the one image sensor. And, in some embodiments, the holder is configured to hold the complementary sensor in addition to the computing system and the one image sensor. Alternatively, in some embodiments, the holder is configured to hold the multiple image sensors. And, the holder can be configured to hold the computing system in addition to the multiple image sensors.

Claims (43)

1 . A system, comprising:

an image sensor, the image sensor comprising any type of sensor that captures an image based on reflected or emitted electromagnetic radiation or mechanical waves;

a complementary sensor, the complementary sensor being configured to complement the image sensor,

wherein the complementary sensor comprises an inertial measurement unit (IMU), an inertial navigation system (INS), a pressure sensor, a sonar device, or a doppler velocity log (DVL) device, or any combination thereof;

a computing system, configured to determine attributes of underwater depth perception to provide underwater depth perception based on data sensed by the image sensor and the complementary sensor, wherein the computing system, the image sensor, and the complementary sensor are configured to operate together to measure a relative position of an object in an image captured by the image sensor and according to a virtual position of the complementary sensor to provide the underwater depth perception;

controller instructions configured to control parts and operations of a submersible device according to the determined attributes of the depth perception; and

a submersible device, comprising the controller instructions, the image sensor, and the complementary sensor.

2 . The system of claim 1 , wherein computing by the computing system to provide the underwater depth perception occurs onboard the submersible device.

3 . The system of claim 1 , wherein the complementary sensor comprises an IMU and is configured to sense movement of the image sensor, wherein the computing system or the IMU is configured to determine movement information associated with the image sensor based on the movement sensed by the IMU to complement the data sensed by the image sensor and to generate depth perception information according to a combination of the movement information and the data sensed by the image sensor.

4 . The system of claim 1 , wherein the complementary sensor comprises a pressure sensor and is configured to sense pressure near the image sensor, wherein the computing system or the pressure sensor is configured to determine water depth of the image sensor based on the pressure sensed by the pressure sensor to complement the data sensed by the image sensor and to generate depth perception information according to a combination of the water depth and the data sensed by the image sensor.

5 . The system of claim 1 , wherein the complementary sensor comprises a sonar device and is configured to sense distances to objects in front of the image sensor corresponding to objects the image sensor captures in the data sensed by the image sensor, wherein the computing system or the sonar device is configured to determine the distances to the objects in front of the image sensor to complement the data sensed by the image sensor and to generate depth perception information according to a combination of the distances to the objects in front of the image sensor and the data sensed by the image sensor.

6 . The system of claim 1 , wherein the complementary sensor comprises a DVL device, wherein the computing system or the DVL device is configured to use velocity information sensed by the DVL device to analyze movement of the image sensor to compliment the data sensed by the image sensor and to generate depth perception information according to a combination of the analyzed movement of the image sensor and the data sensed by the image sensor.

7 . The system of claim 1 , wherein the complementary sensor comprises any sensor that provides position or orientation information directly, wherein the computing system or such a sensor is configured to use the position or orientation information to analyze movement, position, or orientation of the image sensor to compliment the data sensed by the image sensor and to generate depth perception information according to a combination of the analyzed movement, position, or orientation of the image sensor and the data sensed by the image sensor.

8 . The system of claim 1 , wherein the complementary sensor comprises an ultra-short baseline (USBL) device or an inertial navigation system (INS) device, wherein the computing system or the USBL or INS device is configured to use position or orientation information sensed by the USBL or INS device to analyze movement, position, or orientation of the image sensor to compliment the data sensed by the image sensor and to generate depth perception information according to a combination of the analyzed movement, position, or orientation of the image sensor and the data sensed by the image sensor.

9 . The system of claim 1 , wherein the image sensor, the complementary sensor, and the computing system are configured to operate effectively while the submersible device is completely submerged, and wherein the submersible device comprises a holder and the holder is configured to hold the computing system, the image sensor, and the complementary sensor.

10 . The system of claim 1 , wherein the computing system is further configured to provide underwater image color correction, based on the underwater depth perception.

11 . The system of claim 1 , wherein the computing system is further configured to automate underwater target recognition, based on the underwater depth perception.

12 . The system of claim 1 ,

wherein the controller instructions are part of a first control system,

wherein the system further comprises a second control system of a manipulator of the submersible device, and

wherein the second control system is configured to control parts and operations of the manipulator according to the determined attributes of the depth perception.

13 . A system, comprising:

a submersible device; and

a manipulator of the submersible device, wherein the submersible device, further comprises:

an image sensor, the image sensor comprising any type of sensor that captures an image based on reflected or emitted electromagnetic radiation or mechanical waves;

a complementary sensor, the complementary sensor being configured to complement the image sensor, wherein the complementary sensor comprises an inertial measurement unit (IMU), an inertial navigation system (INS), a pressure sensor, a sonar device, or a doppler velocity log (DVL) device, or any combination thereof;

a computing system, configured to determine attributes of underwater depth perception to provide underwater depth perception based on data sensed by the image sensor and the complementary sensor; and

controller instructions configured to control parts and operations of the submersible device according to the determined attributes of the depth perception, wherein the parts and operations includes parts and operations of the manipulator of the submersible device.

14 . The system of claim 13 , wherein operations of the submersible device comprises automated navigation of the submersible device.

15 . The system of claim 13 , wherein computing by the computing system to provide the underwater depth perception occurs onboard the submersible device, and wherein the image sensor, the complementary sensor, and the computing system are configured to operate effectively while the submersible device is completely submerged.

16 . The system of claim 15 , wherein the submersible device comprises a holder and the holder is configured to hold the computing system, the image sensor, and the complementary sensor.

17 . A system, comprising:

an image sensor, the image sensor comprising any type of sensor that captures an image based on reflected or emitted electromagnetic radiation or mechanical waves;

a complementary sensor, the complementary sensor being configured to complement the image sensor, wherein the complementary sensor comprises an inertial measurement unit (IMU), an inertial navigation system (INS), a pressure sensor, a sonar device, or a doppler velocity log (DVL) device, or any combination thereof;

a computing system, configured to determine attributes of underwater depth perception to provide underwater depth perception based on data sensed by the image sensor and the complementary sensor;

a submersible device;

a first control system configured to control movement of the submersible device according to the determined attributes of the depth perception; and

a second control system configured to control operations of a manipulator of the submersible device according to the determined attributes of the depth perception,

wherein the computing system, the image sensor, and the complementary sensor are configured to operate together to measure a relative position of an object in an image captured by the image sensor and according to a virtual position of the complementary sensor to provide the underwater depth perception, and

wherein computing by the computing system to provide the underwater depth perception occurs onboard the submersible device.

18 . The system of claim 17 , wherein the image sensor, the complementary sensor, and the computing system are configured to operate effectively while the submersible device is completely submerged 7 , and wherein the submersible device comprises the sensors, the control systems, and the computing system.

19 . The system of claim 18 , wherein the submersible device comprises a holder and the holder is configured to hold the computing system, the image sensor, and the complementary sensor.

20 . The system of claim 19 , wherein the image sensor comprises a camera.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 5, 2023
From: BROWN, STANLEY JAMES; GILSON, CHRISTOPHER ALLAN
To: VOYIS IMAGING INC.
Reel/Frame 065138/0229 →
Continuity (1)
Related Publication 20250086813A1 · Mar 13, 2025
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