IP Library Granted Patent US 12,214,778
Granted Patent B2
US 12,214,778 · App. 18/712,586 · Granted Feb 4, 2025

Parking assistance method and parking assistance device

Inventors: Takeshi Watanabe (Kanagawa, JP); Yasuhiro Suzuki (Kanagawa, JP); Muku Takeda (Kanagawa, JP)
Assignee: Nissan Motor Co., Ltd.
B60W30/06B60W2554/4041B60W2720/10
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Quick Facts
Patent No.
US 12,214,778
App. No.
18/712,586
Granted
Feb 4, 2025
Kind
B2
Abstract

A parking assistance method including: detecting a target object position that is a relative position with respect to the own vehicle; retrieving a known target object and a relative positional relationship between the known target object and a target parking position from a storage device; based on the detected target object position detected and a relative positional relationship between the known target object and a target parking position, estimating a relative position of the target parking position with respect to a current position of the own vehicle; based on the estimated relative position, calculating a target travel trajectory from a current position of the own vehicle to the target parking position; determining estimation precision of the estimated relative position; when the estimation precision is low, limiting a speed limit of movement speed at which the own vehicle is caused to travel along the target travel trajectory to a speed lower.

Claims (27)

1. A parking assistance method comprising:

by a sensor mounted on an own vehicle, detecting a target object around the own vehicle and a target object position, the target object position being a relative position of the target object with respect to the own vehicle;

retrieving a known target object and a relative positional relationship between the known target object and a target parking position, the known target object and the relative positional relationship being stored in a storage device in advance, from the storage device;

based on a target object position detected by the sensor and a relative positional relationship between the known target object and a target parking position, estimating a relative position of the target parking position with respect to a current position of the own vehicle;

based on the estimated relative position, calculating a target travel trajectory from a current position of the own vehicle to a relative position of the target parking position;

determining estimation precision of the estimated relative position; and

when the estimation precision is low, limiting a speed limit of movement speed at which the own vehicle is caused to travel along the target travel trajectory to a speed lower than a speed limit when the estimation precision is high.

2. The parking assistance method according to claim 1 , wherein when a number of target objects detected by the sensor is small, the parking assistance method determines that the estimation precision is lower than the estimation precision when the number of the target objects is large.

3. The parking assistance method according to claim 1 , wherein when a number of known target objects stored in the storage device is small, the parking assistance method determines that the estimation precision is lower than the estimation precision when the number of the known target objects is large.

4. The parking assistance method according to claim 1 , wherein

the parking assistance method, by associating the target object detected by the sensor with the known target object stored in the storage device, estimates a relative position of the target parking position with respect to a current position of the own vehicle, and

when a number of known target objects associated with target objects detected by the sensor is small, the parking assistance method determines that the estimation precision is lower than the estimation precision when the number of the known target objects associated with the target objects detected by the sensor is large.

5. The parking assistance method according to claim 1 , wherein

the parking assistance method estimates a relative position of the target parking position with respect to a current position of the own vehicle in such a manner that an average of respective distances between a plurality of target objects detected by the sensor and a plurality of known target objects stored in the storage device becomes small, and

when the average is large, the parking assistance method determines that the estimation precision is lower than the estimation precision when the average is small.

6. The parking assistance method according to claim 1 comprising:

calculating a movement speed plan in which movement speed at each position on the target travel trajectory from a current position of the own vehicle to the target parking position is set;

calculating a corrected movement speed plan by correcting movement speed at a position at which a movement speed higher than the speed limit is set in the movement speed plan, to the speed limit; and

based on the corrected movement speed plan, controlling movement speed at which the own vehicle is caused to travel along the target travel trajectory.

7. The parking assistance method according to claim 1 comprising:

detecting movement speed of the own vehicle; and

when movement speed of the own vehicle traveling along the target travel trajectory is higher than the speed limit, controlling movement speed of the own vehicle to less than or equal to the speed limit.

8. The parking assistance method according to claim 1 comprising: detecting distance from the own vehicle to an obstacle around the own vehicle by the sensor; and when detected distance is less than a predetermined distance, causing the own vehicle to stop.

9. A parking assistance device comprising:

a sensor mounted on an own vehicle and configured to detect a target object around the own vehicle and a target object position, the target object position being a relative position of the target object with respect to the own vehicle;

a storage device configured to store a known target object and a relative positional relationship between the known target object and a target parking position; and

a controller configured to: based on a target object position detected by the sensor and a relative positional relationship between the known target object and a target parking position, estimate a relative position of the target parking position with respect to a current position of the own vehicle; based on the estimated relative position, calculate a target travel trajectory from a current position of the own vehicle to a relative position of the target parking position; determine estimation precision of the estimated relative position; and when the estimation precision is low, limit a speed limit of movement speed at which the own vehicle is caused to travel along the target travel trajectory to a speed lower than a speed limit when the estimation precision is high.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 22, 2024
From: WATANABE, TAKESHI; SUZUKI, YASUHIRO; TAKEDA, MUKU
To: NISSAN MOTOR CO., LTD.
Reel/Frame 067497/0195 →
Continuity (1)
Related Publication 20250010846A1 · Jan 9, 2025
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