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Enhanced Image Preprocessing Method for an Autonomous Vehicle Agent Systemopen access

Authors
Huang, KaisiWen, MingyunPark, JisunSung, YunsickPark, Jong HyukCho, Kyungeun
Issue Date
Apr-2021
Publisher
COMSIS CONSORTIUM
Keywords
Image preprocessing; Reinforcement learning; Deep Q learning
Citation
COMPUTER SCIENCE AND INFORMATION SYSTEMS, v.18, no.2, pp 461 - 479
Pages
19
Indexed
SCIE
SCOPUS
Journal Title
COMPUTER SCIENCE AND INFORMATION SYSTEMS
Volume
18
Number
2
Start Page
461
End Page
479
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/5144
DOI
10.2298/CSIS200212005H
ISSN
1820-0214
2406-1018
Abstract
Excessive training time is a major issue face when training autonomous vehicle agents with neural networks by using images as input. This paper proposes a deep time-economical Q network (DQN) input image preprocessing method to train an autonomous vehicle agent in a virtual environment. The environmental information is extracted from the virtual environment. A top-view image of the entire environment is then redrawn according to the environmental information. During training of the DQN model, the top-view image is cropped to place the vehicle agent at the center of the cropped image. The current frame top-view image is combined with the images from the previous two training iterations. The DQN model use this combined image as input. The experimental results indicate higher performance and shorter training time for the DQN model trained with the preprocessed images compared with that trained without preprocessing.
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