IP Library Granted Patent US 11,794,740
Granted Patent B2
US 11,794,740 · App. 17/226,644 · Granted Oct 24, 2023

Smart cruise control system and method of controlling the same

Inventor: Giyeon Won (Suwon-si, KR)
Assignee: HL KLEMOVE CORP.
B60W30/165B60W30/162B60W2420/42B60W2420/52
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Quick Facts
Patent No.
US 11,794,740
App. No.
17/226,644
Granted
Oct 24, 2023
Kind
B2
Abstract

A smart cruise control system includes a controller communicatively connected to a first sensor obtaining front image data and a second sensor obtaining front radar data, wherein the controller is configured to recognize a front vehicle based on the front image data and the front radar data, and in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data, control the vehicle so that the vehicle is not accelerated even if the distance between the vehicle and the front vehicle recognized in the front image data is greater than the preset distance.

Claims (52)

1. A smart cruise control system comprising:

a first sensor mounted to a vehicle, having a field of view in front of the vehicle, and configured to obtain front image data;

a second sensor mounted to the vehicle, having a field of sensing in front of the vehicle, and configured to obtain front radar data; and

a controller communicatively connected to the first sensor and the second sensor,

wherein the controller is configured to:

recognize a front vehicle based on the front image data and the front radar data,

determine the recognized front vehicle as a target vehicle in response to the front vehicle being recognized in both the front image data and the front radar data,

accelerate the vehicle in response to a distance between the vehicle and the target vehicle being greater than a preset distance in order to maintain the distance between the vehicle and the target vehicle,

in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data, control the vehicle so that the vehicle is not accelerated even if the distance between the vehicle and the front vehicle recognized in the front image data is greater than the preset distance, and

in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data and the distance between the vehicle and the front vehicle recognized in the front image data being smaller than the preset distance, decelerate the vehicle.

2. The smart cruise control system according to claim 1 , wherein, in response to the front vehicle not being recognized in both the front image data and the front radar data, the controller is configured to control the vehicle so that a speed of the vehicle becomes a preset speed.

3. The smart cruise control system according to claim 1 , wherein the controller is configured to determine a target acceleration of the vehicle based on the distance between the vehicle and the target vehicle.

4. The smart cruise control system according to claim 1 , wherein, in response to the distance between the vehicle and the target vehicle being smaller than the preset distance, the controller is configured to decelerate the vehicle.

5. The smart cruise control system according to claim 1 , wherein, in response to the distance between the vehicle and the target vehicle being the preset distance, the controller is configured to control the vehicle to maintain a speed of the vehicle.

6. The smart cruise control system according to claim 1 , wherein the controller is configured to calculate a free space based on the front image data, and to determine a distance between the vehicle and a boundary line of the free space in front of the vehicle as the distance between the vehicle and the front vehicle.

7. A method comprising:

obtaining, from a first sensor, front image data of a vehicle;

obtaining, from a second sensor, front radar data of the vehicle;

processing, by a controller, the front image data and the front radar data;

recognizing, by the controller, a front vehicle based on the front image data and the front radar data;

determining, by the controller, the recognized front vehicle as a target vehicle in response to the front vehicle being recognized in both the front image data and the front radar data;

accelerating, by the controller, the vehicle in response to a distance between the vehicle and the target vehicle being greater than a preset distance in order to maintain the distance between the vehicle and the target vehicle;

in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data, controlling, by the controller, the vehicle so that the vehicle is not accelerated even if the distance between the vehicle and the front vehicle recognized in the front image data is greater than the preset distance; and

in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data and the distance between the vehicle and the front vehicle recognized in the front image data being smaller than the preset distance, decelerating, by the controller, the vehicle.

8. The method according to claim 7 , further comprising:

in response to the front vehicle not being recognized in both the front image data and the front radar data, controlling, by the controller, the vehicle so that a speed of the vehicle becomes a preset speed.

9. The method according to claim 7 , wherein the accelerating of the vehicle in response to a distance between the vehicle and the target vehicle being greater than a preset distance in order to maintain the distance between the vehicle and the target vehicle comprises:

determining a target acceleration of the vehicle based on the distance between the vehicle and the target vehicle; and

accelerating the vehicle with the target acceleration.

10. The method according to claim 7 , further comprising:

in response to the distance between the vehicle and the target vehicle being smaller than the preset distance, decelerating, by the controller, the vehicle.

11. The method according to claim 7 , further comprising:

in response to the distance between the vehicle and the target vehicle being the preset distance, controlling, by the controller, the vehicle to maintain a speed of the vehicle.

12. The method according to claim 7 , wherein the controlling of the vehicle so that the vehicle is not accelerated even if the distance between the vehicle and the front vehicle recognized in the front image data is greater than the preset distance comprises:

calculating a free space based on the front image data; and

determining a distance between the vehicle and a boundary line of the free space in front of the vehicle as the distance between the vehicle and the front vehicle.

13. A non-transitory computer-readable medium storing computer-executable instructions, which when executed by a processor, cause the processor to:

receive front image data of a vehicle and front radar data of the vehicle;

recognize a front vehicle based on the front image data and the front radar data;

determine the recognized front vehicle as a target vehicle in response to the front vehicle being recognized in both the front image data and the front radar data;

accelerate the vehicle in response to a distance between the vehicle and the target vehicle being greater than a preset distance in order to maintain the distance between the vehicle and the target vehicle;

in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data, control the vehicle so that the vehicle is not accelerated even if the distance between the vehicle and the front vehicle recognized in the front image data is greater than the preset distance; and

in response to the front vehicle being not recognized in the front radar data and the front vehicle being recognized in the front image data and the distance between the vehicle and the front vehicle recognized in the front image data being smaller than the preset distance, decelerating, by the controller, the vehicle.

14. The non-transitory computer-readable medium of claim 13 , further storing instructions, which when executed by the processor, cause the processor to:

in response to the front vehicle not being recognized in both the front image data and the front radar data, control the vehicle so that a speed of the vehicle becomes a preset speed.

15. The non-transitory computer-readable medium of claim 13 , further storing instructions, which when executed by the processor, cause the processor to:

determine a target acceleration of the vehicle based on the distance between the vehicle and the target vehicle; and

accelerate the vehicle with the target acceleration.

16. The non-transitory computer-readable medium of claim 13 , further storing instructions, which when executed by the processor, cause the processor to:

in response to the distance between the vehicle and the target vehicle being smaller than the preset distance, decelerate the vehicle.

17. The non-transitory computer-readable medium of claim 13 , further storing instructions, which when executed by the processor, cause the processor to:

in response to the distance between the vehicle and the target vehicle being the preset distance, control the vehicle to maintain a speed of the vehicle.

Assignments (3)
MERGER Recorded Aug 23, 2022
From: MANDO MOBILITY SOLUTIONS CORPORATION
To: HL KLEMOVE CORP.
Reel/Frame 060874/0494 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2021
From: MANDO CORPORATION
To: MANDO MOBILITY SOLUTIONS CORPORATION
Reel/Frame 058042/0307 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2021
From: WON, GIYEON
To: MANDO CORPORATION
Reel/Frame 055879/0883 →
Priority Claims (1)
KR 10-2020-0044671 · Apr 13, 2020 · national
Continuity (1)
Related Publication 20210316728A1 · Oct 14, 2021