Jeesu Kim

Pusan National University
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South Korea

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Articles (16)

A Deep Reinforcement Learning Strategy for Surrounding Vehicles-Based Lane-Keeping Control

As autonomous vehicles (AVs) are advancing to higher levels of autonomy and performance, the associated technologies are becoming increasingly diverse. Lane-keeping systems (LKS), corresponding to a key functionality of AVs, considerably enhance driver convenience. With drivers increasingly relying on autonomous driving technologies, the importance of safety features, such as fail-safe mechanisms in the event of sensor failures, has gained prominence. Therefore, this paper proposes a reinforcement learning (RL) control method for lane-keeping, which uses surrounding object information derived through LiDAR sensors instead of camera sensors for LKS. This approach uses surrounding vehicle and object information as observations for the RL framework to maintain the vehicle’s current lane. The learning environment is established by integrating simulation tools, such as IPG CarMaker, which incorporates vehicle dynamics, and MATLAB Simulink for data analysis and RL model creation. To further validate the applicability of the LiDAR sensor data in real-world settings, Gaussian noise is introduced in the virtual simulation environment to mimic sensor noise in actual operational conditions.

Year:

2023

Collaborators (6)

Tae-Kyoung Kim

Gachon University

SOUTH KOREA

Chang-Seok Kim

Pusan National University

SOUTH KOREA

Inki Kim

Assistant Professor

Sungkyunkwan University

SOUTH KOREA

Jinwoo Yoo

Kookmin University

SOUTH KOREA

Chulhong Kim

-

SOUTH KOREA

Wonseok Choi

Assistant Professor

Catholic University of Korea School of Medicine

SOUTH KOREA
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