IP Library › Granted Patent US 12,221,156
Granted Patent B2
US 12,221,156 · App. 17/978,753 · Granted Feb 11, 2025

Vehicle parking control device and method therefor

Inventor: Seung Hun Noh (Hwaseong-Si, KR)
Assignees: Hyundai Motor Company; Kia Corporation
B62D15/0285B60W30/06B60W30/18018B60W30/18054B60T2201/10B60W2420/403B60W2420/408B60W2510/1005B60W2510/20B60W2540/12B60W2540/225B60W2552/53B60W2554/404
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Quick Facts
Patent No.
US 12,221,156
App. No.
17/978,753
Granted
Feb 11, 2025
Kind
B2
Abstract

A vehicle parking control device includes a data collection module that collects vehicle data, and at least one processor electrically connected to the data collection module, wherein the at least one processor may obtain the vehicle data through the data collection module, determine whether a vehicle satisfies a first parking condition based on location information of the vehicle included in the vehicle data, determine whether the vehicle satisfies a second parking condition, based on state information of the vehicle included in the vehicle data when the vehicle satisfies the first parking condition, activate a parking mode when the vehicle satisfies the second parking condition, and control the vehicle according to the parking mode. It is possible to prevent accidents and enhance the driver's convenience by controlling the behavior of the vehicle during parking.

Claims (55)

1. A vehicle parking control apparatus comprising:

at least one processor,

wherein the at least one processor is configured for:

obtaining vehicle data;

determining whether a vehicle satisfies a first parking condition based on location information of the vehicle included in the vehicle data;

determining whether the vehicle satisfies a second parking condition, based on state information of the vehicle included in the vehicle data when the vehicle satisfies the first parking condition;

activating a parking mode when the vehicle satisfies the second parking condition; and

controlling the vehicle according to the parking mode, and

wherein the at least one processor is configured to:

after the parking mode is activated,

obtain driver gaze information through a camera;

obtain gear shifting information from a gear shifting sensor; and

control the vehicle according to the parking mode based on the driver gaze information and the gear shifting information.

2. The vehicle parking control apparatus of claim 1 , wherein the at least one processor is configured to obtain the vehicle data via at least one of a global positioning system (GPS), a front camera, a driver state warning (DSW) camera, a radar, a steering angle sensor, the gear shifting sensor, or a brake pedal sensor.

3. The vehicle parking control apparatus of claim 1 , wherein the at least one processor is configured to:

in response to determining that the vehicle is entering a parking lot or the vehicle is located in the parking lot based on the location information of the vehicle,

identify at least one of at least one other vehicle parked nearby or a parking line; and

conclude that the first parking condition is satisfied when the at least one of the at least one other vehicle or the parking line is identified.

4. The vehicle parking control apparatus of claim 1 , wherein the at least one processor is configured to:

in response to determining that the vehicle is located near an on-street parking lot based on the location information of the vehicle,

identify at least one of at least one other vehicle parked nearby, a parking line, or a moving state of a nearby vehicle; and

conclude that the first parking condition is satisfied when at least one of the at least one other vehicle or the parking line is identified and the moving state of the nearby vehicle is similar to a moving state of the vehicle.

5. The vehicle parking control apparatus of claim 1 ,

wherein the state information of the vehicle includes at least one of a steering angle sensor value or a brake sensor value, and

wherein the at least one processor is configured to conclude that the vehicle satisfies the second parking condition when the steering angle sensor value is greater than a first threshold value or when the brake sensor value is greater than a second threshold value while the vehicle satisfies the first parking condition.

6. The vehicle parking control apparatus of claim 1 , wherein the at least one processor is configured to shift a gear to a neutral (N) position when the at least one processor concludes that a driver's gaze direction is a forward direction and the gear is set in succession to a reverse (R) position based on the driver gaze information and the gear shifting information.

7. The vehicle parking control apparatus of claim 1 , wherein the at least one processor is configured to shift a gear to a neutral (N) position when the at least one processor concludes that a driver's gaze direction is a rearward direction and the gear is set in succession to a drive (D) position based on the driver gaze information and the gear shifting information.

8. The vehicle parking control apparatus of claim 1 ,

wherein the state information of the vehicle includes at least one of a steering angle sensor value, a brake sensor value or the gear shifting information, and

wherein the at least one processor is configured to conclude that the second parking condition is identified when the steering angle sensor value is greater than a first threshold value, when the brake sensor value is greater than a second threshold value, or when a gear shifter position is changed based on the gear shifting information.

9. The vehicle parking control apparatus of claim 7 , wherein the at least one processor is configured to automatically release an auto vehicle hold (AVH) function or an idle stop and go (ISG) function according to the parking mode in response to the parking mode being activated when the at least one processor concludes that the vehicle satisfies the second parking condition.

10. A vehicle parking control method comprising:

obtaining, by at least one processor, vehicle data;

determining, by the at least one processor, whether a vehicle satisfies a first parking condition based on location information of the vehicle included in the vehicle data;

determining, by the at least one processor, whether the vehicle satisfies a second parking condition, based on state information of the vehicle included in the vehicle data when the vehicle satisfies the first parking condition;

activating, by the at least one processor, a parking mode when the at least one processor concludes that the vehicle satisfies the second parking condition;

controlling, by the at least one processor, the vehicle according to the parking mode;

obtaining, by the at least one processor, driver gaze information through a camera after the parking mode is activated;

obtaining, by the at least one processor, gear shifting information from a gear shifting sensor; and

controlling, by the at least one processor, the vehicle according to the parking mode based on the driver gaze information and the gear shifting information.

11. The vehicle parking method of controlling claim 10 , wherein the obtaining, by the at least one processor, of the vehicle data includes:

obtaining, by the at least one processor, the vehicle data via at least one of a global positioning system (GPS), a front camera, a driver state warning (DSW) camera, a radar, a steering angle sensor, the gear shifting sensor, or a brake pedal sensor.

12. The vehicle parking method of controlling claim 10 , wherein the determining of whether the vehicle satisfies the first parking condition includes:

identifying, by the at least one processor, at least one of at least one other vehicle or a parking line in response to determining that the vehicle is entering a parking lot or the vehicle is located in the parking lot, based on the location information of the vehicle; and

concluding that the first parking condition is satisfied when at least one of the at least one other vehicle or the parking line is identified.

13. The vehicle parking method of controlling claim 11 , wherein the determining of whether the vehicle satisfies the first parking condition includes:

identifying at least one of at least one other vehicle parked nearby, a parking line, or a moving state of a nearby vehicle, in response to determining that the vehicle is located adjacent to an on-street parking lot based on the location information of the vehicle; and

concluding that the first parking condition is satisfied when at least one of the at least one other vehicle or the parking line is identified and the moving state of the nearby vehicle is similar to a moving state of the vehicle.

14. The vehicle parking method of controlling claim 10 , wherein the state information of the vehicle includes at least one of a steering angle sensor value or a brake sensor value, and

wherein the determining of whether the vehicle satisfies the second parking condition includes concluding, by the at least one processor, that the vehicle satisfies the second parking condition when the steering angle sensor value is greater than a first threshold value or when the brake sensor value is greater than a second threshold value while the vehicle satisfies the first parking condition.

15. The vehicle parking method of controlling claim 10 , wherein the controlling of the vehicle according to the parking mode includes shifting, by the at least one processor, a gear to a neutral (N) position when the at least one processor concludes that a driver's gaze direction is a forward direction and the gear is set in succession to a reverse (R) position based on the driver gaze information and the gear shifting information.

16. The vehicle parking method of controlling claim 10 , wherein the controlling of the vehicle according to the parking mode includes shifting, by the at least one processor, a gear to a neutral (N) position when the at least one processor concludes that a driver's gaze direction is a rearward direction and the gear is set in succession to a drive (D) position based on the driver gaze information and the gear shifting information.

17. The vehicle parking method of controlling claim 10 , wherein the state information of the vehicle includes at least one of a steering angle sensor value, a brake sensor value or the gear shifting information and

wherein the determining of whether the vehicle satisfies the second parking condition includes concluding, by the at least one processor, that the second parking condition is identified when the steering angle sensor value is greater than a first threshold value, when the brake sensor value is greater than a second threshold value, or when a gear shifter position is changed based on the gear shifting information.

18. The vehicle parking method of controlling claim 17 , wherein the controlling of the vehicle according to the parking mode includes automatically releasing, by the at least one processor, an auto vehicle hold (AVH) function or an idle stop and go (ISG) function according to the parking mode in response to the parking mode being activated when the at least one processor concludes that the vehicle satisfies the second parking condition.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2022
From: NOH, SEUNG HUN
To: HYUNDAI MOTOR COMPANY; KIA CORPORATION
Reel/Frame 061618/0705 →
Priority Claims (1)
KR 10-2022-0050245 · Apr 22, 2022 · national
Continuity (1)
Related Publication 20230339467A1 · Oct 26, 2023
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