IP Library › Granted Patent US 12,447,991
Granted Patent B2
US 12,447,991 · App. 17/780,556 · Granted Oct 21, 2025

Vehicle lane change control method and vehicle lane change control device

Inventors: Yasuhisa Hayakawa (Kanagawa, JP); Fuminori Takeda (Kanagawa, JP); Yoshiya Kusatomi (Kanagawa, JP)
Assignee: Nissan Motor Co., Ltd.
B60W60/001B60W30/143B60W30/18163B60W30/182G08G1/052G08G1/167B60W2554/80B60W2720/00
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Quick Facts
Patent No.
US 12,447,991
App. No.
17/780,556
Granted
Oct 21, 2025
Kind
B2
Abstract

A driving control method is performed to execute a lane-change control for controlling a host vehicle to autonomously change lanes from a first lane to an adjacent second lane using a processor of a driving control device that controls vehicle speed and steering of the host vehicle traveling in the first lane in an autonomous driving mode. The processor determines that the lane-change control can be executed upon determining that the other vehicle has been detected in a detection zone of the second lane, based on a detection result of a sensor. The processor determines that the lane-change control cannot be executed upon determining that the other has not been detected within the detection zone of the second lane. The processor outputs information regarding whether the lane-change control can be executed.

Claims (59)

1. A driving control method for executing a lane-change control for controlling a host vehicle to autonomously change lanes from a first lane to a second lane that is adjacent the first lane using a processor of a driving control device that controls vehicle speed and steering of the host vehicle traveling in the first lane in an autonomous driving mode, the driving control method comprising:

the processor

using a sensor mounted on the host vehicle to determine whether another vehicle is detected in the second lane within a prescribed detection zone and is positioned behind the host vehicle,

determining that the lane-change control can be executed upon determining that the other vehicle has been detected within the prescribed detection zone and is positioned behind the host vehicle,

determining that the lane-change control cannot be executed upon determining that no vehicle has been detected within the prescribed detection zone or upon determining that the other vehicle is not behind the host vehicle, and

outputting lane change information that the lane-change control can be executed to move the host vehicle in front of the other vehicle based on the determination that the lane-change control can be executed,

the processor being configured to execute the lane-change control to autonomously change lanes only upon determining that the other vehicle is in the prescribed detection zone and behind the host vehicle.

2. The driving control method according to claim 1 , wherein

the processor

detects a vehicle speed of the other vehicle upon determining that the other vehicle has been detected within the prescribed detection zone,

determines that the lane-change control can be executed upon determining the vehicle speed of the host vehicle is greater than or equal to the vehicle speed of the other vehicle, and

outputs a command to the driving control device to control the vehicle speed such that the vehicle speed of the host vehicle becomes greater than or equal to the vehicle speed of the other vehicle.

3. The driving control method according to claim 1 , wherein

the processor

detects the vehicle speed of the host vehicle and the vehicle speed of the other vehicle, and

cancels a determination that the other vehicle has been detected upon determining the vehicle speed of the other vehicle is greater than the vehicle speed of the host vehicle and the difference between the vehicle speed of the other vehicle and the vehicle speed of the host vehicle is greater than or equal to a prescribed speed difference.

4. The driving control method according to claim 1 , wherein

the processor

detects a relative position of the other vehicle with respect to the host vehicle, and

cancels a determination that the other vehicle has been detected upon determining the other vehicle is traveling ahead of the host vehicle and a distance between the host vehicle and the other vehicle is greater than or equal to a prescribed distance in a direction of travel of the host vehicle.

5. The drive control method according to claim 1 , wherein

the processor cancels a determination that the other vehicle has been detected upon determining the other vehicle is a two-wheeled vehicle.

6. The driving control method according to claim 1 , wherein

the processor outputs the lane-change information to an output device suggesting that the lane-change control be executed upon determining the lane-change control can be executed, and

the processor outputs a command to the driving control device to execute the lane-change control upon an instruction to execute the lane-change control being input to an input device based on the lane-change information.

7. The driving control method according to claim 1 , wherein

the processor outputs a command to the driving control device to execute the lane-change control upon determining the lane-change control can be executed.

8. The driving control method according to claim 1 , wherein

the processor outputs a command to the driving control device to prohibit execution of the lane-change control upon determining the other vehicle is not detected within the prescribed detection zone.

9. The driving control method according to claim 1 , wherein

the processor can switch between a driving mode between a first mode, which requires visual monitoring of surrounding conditions of the host vehicle by a driver, and a second mode, which is the autonomous driving mode in which the processor executes the monitoring of the surrounding conditions of the host vehicle,

the processor determines that the lane-change control using the second mode can be executed upon determining that the other vehicle has been detected within the prescribed detection zone, and

the processor determines that the lane-change control using the second mode cannot be executed and sets the driving mode to the first mode upon determining that the other vehicle has not been detected within the prescribed detection zone.

10. The driving control method according to claim 9 , wherein

the first mode is a hands-on mode in which steering control by the processor is inoperable when a driver of the host vehicle is not holding a steering wheel of the host vehicle, and

the second mode is a hands-off mode in which steering control by the processor is operable even if the driver's hands leave the steering wheel.

11. The driving control method according to claim 1 , wherein

the processor

determines whether there is a required space in the second lane for the host vehicle to execute a lane change, and

outputs a command to the driving control device to prohibit execution of the lane-change control upon determining that the required space is not available.

12. A driving control device comprising:

a processor that controls a vehicle speed and a steering of a host vehicle traveling in a first lane in an autonomous driving mode to cause the host vehicle to autonomously change lanes from the first lane to a second lane that is adjacent the first lane, and

an other vehicle detection unit configured to detect other vehicles traveling in the second lane, wherein

the processor

determines whether another vehicle is detected traveling within a prescribed detection zone in the second lane and is positioned behind the host vehicle based on a detection result of the other vehicle detection unit,

determines that a lane-change control can be executed upon determining that the other vehicle has been detected within the prescribed detection zone and behind the host vehicle,

determines that execution of the lane-change control cannot be executed upon determining that no vehicle has been detected within the prescribed detection zone or that the other vehicle is not behind the host vehicle, and

outputs lane change information that the lane-change control can be executed to move the host vehicle in front of the other vehicle based on the determination that the lane-change control can be executed,

the processor being configured to execute the lane-change control to autonomously change lanes only upon determining that the other vehicle is in the prescribed detection zone and behind the host vehicle.

13. The driving control method according to claim 1 , wherein

the processor outputs the lane-change information to an output device suggesting that the lane-change control using a first mode that can be executed upon determining the lane-change control can be executed while the host vehicle is traveling in a second mode.

14. The driving control method according to claim 1 , wherein

prescribed detection zone is a region in which the processor is able to monitor the behavior of the other vehicle.

15. The driving control method according to claim 14 , wherein

the region is in the second lane adjacent the host vehicle and extends forward and rearward of the host vehicle.

16. The driving control method according to claim 1 , wherein

prescribed detection zone is a region in the second lane adjacent the host vehicle that extends forward and rearward of the host vehicle.

17. The driving control method according to claim 1 , wherein

the processor controls the host vehicle to stay in the first lane without changing lanes upon determining that the lane-change control cannot be executed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2022
From: HAYAKAWA, YASUHISA; TAKEDA, FUMINORI; KUSATOMI, YOSHIYA
To: NISSAN MOTOR CO., LTD.
Reel/Frame 060034/0628 →
Continuity (1)
Related Publication 20230347926A1 · Nov 2, 2023
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