IP Library Granted Patent US 12,701,323
Granted Patent B2
US 12,701,323 · App. 18/942,949 · Granted Aug 4, 2026

Vehicular vision system using image data transmission and power supply via a coaxial cable

Inventors: Joern Ihlenburg (Berlin, DE); Jens Steigerwald (Sailauf-Eichenberg, DE); Michael Dominik Schöppner (Künzell, DE)
Assignee: Magna Electronics Inc.
H04N23/66B60R16/02G08G1/165H01B1/02H01B3/445H01B7/0216H01B11/18H04N7/10H04N7/181H04N7/183H04N23/63H04N23/65
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Quick Facts
Patent No.
US 12,701,323
App. No.
18/942,949
Filed
Nov 11, 2024
Granted
Aug 4, 2026
Kind
B2
Art Unit
2422
USPC
348/148
Abstract

A vehicular vision system includes an electronic control unit (ECU) disposed at a vehicle and a camera having a CMOS imaging sensor operable to capture image data. The ECU includes (i) a data processor and (ii) a DC power supply. A coaxial cable carries DC power from the DC power supply of the ECU to the camera. Image data captured by the camera is conveyed from the camera to the ECU via the coaxial cable. Calibration data may be conveyed from the camera to the ECU via the coaxial cable. The camera is in bidirectional communication with the ECU over the coaxial cable. The camera includes a data serializer and the ECU includes a data deserializer. The camera may include a front camera, a rear-viewing camera or an internal cabin surveillance camera.

Claims (98)

1 . A vehicular vision system, said vehicular vision system comprising:

a front camera disposed at a vehicle equipped with said vehicular vision system;

said front camera comprising a CMOS imaging sensor operable to capture image data;

wherein said front camera is disposed at a windshield of the equipped vehicle and views forward through the windshield of the equipped vehicle;

an electronic control unit (ECU) disposed at the equipped vehicle and comprising (i) a data processor and (ii) a DC power supply;

wherein a coaxial cable carries DC power from the DC power supply of the ECU to said front camera;

wherein DC power carried by the coaxial cable from the DC power supply of the ECU to said front camera is at an electrical current less than or equal to 900 mA;

wherein image data captured by said front camera is conveyed from said front camera to the ECU via the coaxial cable;

wherein calibration data is conveyed from said front camera to the ECU via the coaxial cable;

wherein said front camera is in bidirectional communication with the ECU via the coaxial cable;

wherein said front camera comprises a data serializer and the ECU comprises a data deserializer; and

wherein said vehicular vision system, responsive to processing at the data processor of the ECU of image data captured by said front camera and conveyed to the ECU via the coaxial cable, generates an output for a headlamp control system of the equipped vehicle.

2 . The vehicular vision system of claim 1 , wherein said vehicular vision system, responsive to processing at the data processor of the ECU of image data captured by said front camera and conveyed to the ECU via the coaxial cable, generates an output for the headlamp control system of the equipped vehicle and for at least one selected from the group consisting of (i) a lane departure warning system of the equipped vehicle and (ii) a traffic sign recognition system of the equipped vehicle.

3 . The vehicular vision system of claim 2 , wherein conveyance of image data captured by said front camera from said front camera to the ECU via the coaxial cable utilizes low-voltage differential signaling (LVDS).

4 . The vehicular vision system of claim 1 , wherein conveyance of image data captured by said front camera from said front camera to the ECU via the coaxial cable utilizes low-voltage differential signaling (LVDS).

5 . The vehicular vision system of claim 1 , wherein the coaxial cable comprises (i) an inner metallic core, (ii) a dielectric medium, (iii) a foil screen, (iv) an outer metallic conductor and (v) an outer sheath.

6 . The vehicular vision system of claim 1 , wherein signal attenuation by the coaxial cable is below 100 dB at a frequency of 1 GHz per 100 m length of the coaxial cable.

7 . The vehicular vision system of claim 1 , wherein signal attenuation by the coaxial cable is below 150 dB at a frequency of 2 GHz per 100 m length of the coaxial cable.

8 . The vehicular vision system of claim 1 , wherein signal attenuation by the coaxial cable is below 180 dB at a frequency of 3 GHz per 100 m length of the coaxial cable.

9 . The vehicular vision system of claim 1 , wherein image data captured by said front camera is conveyed via the coaxial cable at a data transmission rate of at least 1.6 Gbps.

10 . The vehicular vision system of claim 1 , wherein, based at least in part on calibration data conveyed via the coaxial cable from said front camera to the ECU, said front camera is identified.

11 . The vehicular vision system of claim 1 , wherein, based at least in part on calibration data conveyed via the coaxial cable from said front camera to the ECU, the vehicular vision system is automatically calibrated, without any manual inputs or reading of physical labels at said front camera.

12 . The vehicular vision system of claim 1 , wherein the coaxial cable conveys calibration data from said front camera to the ECU responsive to a triggering event.

13 . The vehicular vision system of claim 1 , wherein the coaxial cable conveys calibration data from said front camera to the ECU at an initial activation of said front camera.

14 . The vehicular vision system of claim 1 , wherein said front camera comprises a printed circuit board (PCB) having a coaxial cable connector disposed thereat.

15 . The vehicular vision system of claim 1 , wherein image data captured by said front camera that is serialized at the data serializer is conveyed to the ECU via the coaxial cable using a Gigabit Multimedia Serial Link (GMSL) protocol and is deserialized at the ECU by the data deserializer.

16 . The vehicular vision system of claim 1 , wherein image data captured by said front camera that is serialized at the data serializer is conveyed to the ECU via the coaxial cable using an FPD-Link protocol and is deserialized at the ECU by the data deserializer.

17 . The vehicular vision system of claim 1 , wherein a rear-viewing camera is disposed at the equipped vehicle, and wherein said rear-viewing camera views at least rearward of the equipped vehicle, and wherein said rear-viewing camera comprising a CMOS imaging sensor operable to capture image data, and wherein image data captured by said rear-viewing camera is conveyed from said rear-viewing camera to the ECU via another coaxial cable connecting said rear-viewing camera with the ECU, and wherein said rear-viewing camera is in bidirectional communication with the ECU over the other coaxial cable connecting said rear-viewing camera with the ECU, wherein the other coaxial cable commonly carries (i) image data captured by said rear-viewing camera to the ECU for processing at the data processor of the ECU and (ii) DC power from the DC power supply of the ECU to said rear-viewing camera, and wherein said rear-viewing camera comprises a data serializer and the ECU comprises another data deserializer, and wherein image data captured by said rear-viewing camera is serialized at the data serializer and is conveyed to the ECU via the other coaxial cable connecting said rear-viewing camera with the ECU and is deserialized at the ECU by the other data deserializer.

18 . The vehicular vision system of claim 17 , wherein said rear-viewing camera comprises a rear backup camera.

19 . The vehicular vision system of claim 18 , wherein said rear backup camera is part of a multi-camera surround view system of the equipped vehicle.

20 . The vehicular vision system of claim 1 , wherein conveyance of image data captured by said front camera from said front camera to the ECU via the coaxial cable utilizes asymmetric low-voltage differential signaling (LVDS).

21 . A vehicular vision system, said vehicular vision system comprising:

a front camera disposed at a vehicle equipped with said vehicular vision system;

said front camera comprising a CMOS imaging sensor operable to capture image data;

wherein said front camera is disposed at a windshield of the equipped vehicle and views forward through the windshield of the equipped vehicle;

an electronic control unit (ECU) disposed at the equipped vehicle and comprising (i) a data processor and (ii) a DC power supply;

wherein a coaxial cable carries DC power from the DC power supply of the ECU to said front camera;

wherein image data captured by said front camera is conveyed from said front camera to the ECU via the coaxial cable;

wherein image data captured by said front camera is conveyed via the coaxial cable at a data transmission rate of at least 1.6 Gbps;

wherein calibration data is conveyed from said front camera to the ECU via the coaxial cable;

wherein said front camera is in bidirectional communication with the ECU via the coaxial cable;

wherein said front camera comprises a data serializer and the ECU comprises a data deserializer;

wherein a rear-viewing camera is disposed at the equipped vehicle;

wherein said rear-viewing camera views at least rearward of the equipped vehicle;

wherein said rear-viewing camera comprising a CMOS imaging sensor operable to capture image data;

wherein image data captured by said rear-viewing camera is conveyed from said rear-viewing camera to the ECU via another coaxial cable connecting said rear-viewing camera with the ECU;

wherein said rear-viewing camera is in bidirectional communication with the ECU over the other coaxial cable connecting said rear-viewing camera with the ECU;

wherein the other coaxial cable commonly carries (i) image data captured by said rear-viewing camera to the ECU for processing at the data processor of the ECU and (ii) DC power from the DC power supply of the ECU to said rear-viewing camera;

wherein said rear-viewing camera comprises a data serializer and the ECU comprises another data deserializer;

wherein image data captured by said rear-viewing camera is serialized at the data serializer and is conveyed to the ECU via the other coaxial cable connecting said rear-viewing camera with the ECU and is deserialized at the ECU by the other data deserializer; and

wherein said vehicular vision system, responsive to processing at the data processor of the ECU of image data captured by said front camera and conveyed to the ECU via the coaxial cable, generates an output for a headlamp control system of the equipped vehicle.

22 . The vehicular vision system of claim 21 , wherein said rear-viewing camera comprises a rear backup camera.

23 . The vehicular vision system of claim 22 , wherein said vehicular vision system, responsive to processing at the data processor of the ECU of image data captured by said front camera and conveyed to the ECU via the coaxial cable, generates an output for the headlamp control system of the equipped vehicle and for at least one selected from the group consisting of (i) a lane departure warning system of the equipped vehicle and (ii) a traffic sign recognition system of the equipped vehicle.

24 . The vehicular vision system of claim 22 , wherein said rear backup camera is part of a multi-camera surround view system of the equipped vehicle.

25 . The vehicular vision system of claim 21 , wherein conveyance of image data captured by said front camera from said front camera to the ECU via the coaxial cable utilizes low-voltage differential signaling (LVDS).

26 . The vehicular vision system of claim 25 , wherein signal attenuation by the coaxial cable is below 100 dB at a frequency of 1 GHz per 100 m length of the coaxial cable.

27 . The vehicular vision system of claim 25 , wherein signal attenuation by the coaxial cable is below 150 dB at a frequency of 2 GHz per 100 m length of the coaxial cable.

28 . The vehicular vision system of claim 25 , wherein signal attenuation by the coaxial cable is below 180 dB at a frequency of 3 GHz per 100 m length of the coaxial cable.

29 . The vehicular vision system of claim 25 , wherein DC power carried by the coaxial cable from the DC power supply of the ECU to said front camera is at an electrical current less than or equal to 900 mA.

30 . The vehicular vision system of claim 21 , wherein, based at least in part on calibration data conveyed via the coaxial cable from said front camera to the ECU, said front camera is identified.

31 . The vehicular vision system of claim 21 , wherein, based at least in part on calibration data conveyed via the coaxial cable from said front camera to the ECU, the vehicular vision system is automatically calibrated, without any manual inputs or reading of physical labels at said front camera.

32 . The vehicular vision system of claim 21 , wherein the coaxial cable conveys calibration data from said front camera to the ECU responsive to a triggering event.

33 . The vehicular vision system of claim 21 , wherein the coaxial cable conveys calibration data from said front camera to the ECU at an initial activation of said front camera.

34 . The vehicular vision system of claim 21 , wherein said front camera comprises a printed circuit board (PCB) having a coaxial cable connector disposed thereat.

35 . The vehicular vision system of claim 34 , wherein image data captured by said front camera that is serialized at the data serializer is conveyed to the ECU via the coaxial cable using a Gigabit Multimedia Serial Link (GMSL) protocol and is deserialized at the ECU by the data deserializer.

36 . The vehicular vision system of claim 34 , wherein image data captured by said front camera that is serialized at the data serializer is conveyed to the ECU via the coaxial cable using an FPD-Link protocol and is deserialized at the ECU by the data deserializer.

37 . The vehicular vision system of claim 21 , wherein conveyance of image data captured by said front camera from said front camera to the ECU via the coaxial cable utilizes asymmetric low-voltage differential signaling (LVDS).

38 . The vehicular vision system of claim 37 , wherein said rear-viewing camera comprises a rear backup camera.

39 . The vehicular vision system of claim 38 , wherein said rear backup camera is part of a multi-camera surround view system of the equipped vehicle.

40 . A vehicular vision system, said vehicular vision system comprising:

an internal cabin surveillance camera disposed at a vehicle equipped with said vehicular vision system, said internal cabin surveillance camera viewing within an internal cabin of the equipped vehicle;

said internal cabin surveillance camera comprising a CMOS imaging sensor operable to capture image data;

an electronic control unit (ECU) disposed at the equipped vehicle and comprising (i) a data processor and (ii) a DC power supply;

wherein a coaxial cable carries DC power from the DC power supply of the ECU to said internal cabin surveillance camera;

wherein DC power carried by the coaxial cable from the DC power supply of the ECU to said internal cabin surveillance camera is at an electrical current less than or equal to 900 mA;

wherein image data captured by said internal cabin surveillance camera is conveyed from said internal cabin surveillance camera to the ECU via the coaxial cable;

wherein image data captured by said internal cabin surveillance camera is conveyed via the coaxial cable at a data transmission rate of at least 1.6 Gbps;

wherein said internal cabin surveillance camera is in bidirectional communication with the ECU via the coaxial cable;

wherein said internal cabin surveillance camera comprises a data serializer and the ECU comprises a data deserializer; and

wherein said vehicular vision system, responsive to processing at the data processor of the ECU of image data captured by said internal cabin surveillance camera and conveyed to the ECU via the coaxial cable, detects an object present in the internal cabin of the equipped vehicle.

41 . The vehicular vision system of claim 40 , wherein image data captured by said internal cabin surveillance camera that is serialized at the data serializer is conveyed to the ECU via the coaxial cable using an FPD-Link protocol and is deserialized at the ECU by the data deserializer.

42 . The vehicular vision system of claim 40 , wherein conveyance of image data captured by said internal cabin surveillance camera from said internal cabin surveillance camera to the ECU via the coaxial cable utilizes low-voltage differential signaling (LVDS).

43 . The vehicular vision system of claim 42 , wherein signal attenuation by the coaxial cable is below 100 dB at a frequency of 1 GHz per 100 m length of the coaxial cable.

44 . The vehicular vision system of claim 42 , wherein signal attenuation by the coaxial cable is below 150 dB at a frequency of 2 GHz per 100 m length of the coaxial cable.

45 . The vehicular vision system of claim 42 , wherein signal attenuation by the coaxial cable is below 180 dB at a frequency of 3 GHz per 100 m length of the coaxial cable.

46 . The vehicular vision system of claim 42 , wherein calibration data is conveyed from said internal cabin surveillance camera to the ECU via the coaxial cable.

47 . The vehicular vision system of claim 46 , wherein the coaxial cable conveys calibration data from said internal cabin surveillance camera to the ECU at an initial activation of said internal cabin surveillance camera.

48 . The vehicular vision system of claim 46 , wherein, based at least in part on calibration data conveyed via the coaxial cable from said internal cabin surveillance camera to the ECU, said internal cabin surveillance camera is identified.

49 . The vehicular vision system of claim 46 , wherein, based at least in part on calibration data conveyed via the coaxial cable from said internal cabin surveillance camera to the ECU, the vehicular vision system is automatically calibrated, without any manual inputs or reading of physical labels at said internal cabin surveillance camera.

50 . The vehicular vision system of claim 46 , wherein the coaxial cable conveys calibration data from said internal cabin surveillance camera to the ECU responsive to a triggering event.

51 . The vehicular vision system of claim 42 , wherein said internal cabin surveillance camera comprises a printed circuit board (PCB) having a coaxial cable connector disposed thereat.

52 . The vehicular vision system of claim 42 , wherein image data captured by said internal cabin surveillance camera that is serialized at the data serializer is conveyed to the ECU via the coaxial cable using a Gigabit Multimedia Serial Link (GMSL) protocol and is deserialized at the ECU by the data deserializer.

53 . The vehicular vision system of claim 42 , wherein conveyance of image data captured by said internal cabin surveillance camera from said internal cabin surveillance camera to the ECU via the coaxial cable utilizes asymmetric low-voltage differential signaling (LVDS).

54 . The vehicular vision system of claim 40 , wherein a rear-viewing camera is disposed at the equipped vehicle, and wherein said rear-viewing camera views at least rearward of the equipped vehicle, and wherein said rear-viewing camera comprising a CMOS imaging sensor operable to capture image data, and wherein image data captured by said rear-viewing camera is conveyed from said rear-viewing camera to the ECU via another coaxial cable connecting said rear-viewing camera with the ECU, and wherein said rear-viewing camera is in bidirectional communication with the ECU over the other coaxial cable connecting said rear-viewing camera with the ECU, wherein the other coaxial cable commonly carries (i) image data captured by said rear-viewing camera to the ECU for processing at the data processor of the ECU and (ii) DC power from the DC power supply of the ECU to said rear-viewing camera, and wherein said rear-viewing camera comprises a data serializer and the ECU comprises another data deserializer, and wherein image data captured by said rear-viewing camera is serialized at the data serializer and is conveyed to the ECU via the other coaxial cable connecting said rear-viewing camera with the ECU and is deserialized at the ECU by the other data deserializer.

55 . The vehicular vision system of claim 54 , wherein said rear-viewing camera comprises a rear backup camera.

56 . The vehicular vision system of claim 55 , wherein said rear backup camera is part of a multi-camera surround view system of the equipped vehicle.

57 . The vehicular vision system of claim 40 , wherein a front camera is disposed at the equipped vehicle, and wherein said front camera views at least forward of the equipped vehicle, and wherein said front camera comprising a CMOS imaging sensor operable to capture image data, and wherein image data captured by said front camera is conveyed from said front camera to the ECU via another coaxial cable connecting said front camera with the ECU, and wherein said front camera is in bidirectional communication with the ECU over the other coaxial cable connecting said front camera with the ECU, wherein the other coaxial cable commonly carries (i) image data captured by said front camera to the ECU for processing at the data processor of the ECU and (ii) DC power from the DC power supply of the ECU to said front camera, and wherein said front camera comprises a data serializer and the ECU comprises another data deserializer, and wherein image data captured by said front camera is serialized at the data serializer and is conveyed to the ECU via the other coaxial cable connecting said front camera with the ECU and is deserialized at the ECU by the other data deserializer.

58 . The vehicular vision system of claim 57 , wherein said front camera is disposed at a windshield of the equipped vehicle and views forward through the windshield of the equipped vehicle.

Continuity (14)
Continuation 18411326 · Jan 12, 2024
Continuation 18305490 · Apr 24, 2023
Continuation 17643874 · Dec 13, 2021
Continuation 17086541 · Nov 2, 2020
Continuation 16792422 · Feb 17, 2020
Continuation 16401163 · May 2, 2019
Continuation 15899111 · Feb 19, 2018
Continuation 15438825 · Feb 22, 2017
Continuation 14343936 · Sep 19, 2012
Provisional Application 61653664 · May 31, 2012
Provisional Application 61567446 · Dec 6, 2011
Provisional Application 61567150 · Dec 6, 2011
Provisional Application 61537279 · Sep 21, 2011
Related Publication 20250071416A1 · Feb 27, 2025
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