Deep Learning and Control Algorithms of Direct Perception for Autonomous Driving
October 26, 2019 ยท Declared Dead ยท ๐ Applied intelligence (Boston)
"No code URL or promise found in abstract"
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Authors
Der-Hau Lee, Kuan-Lin Chen, Kuan-Han Liou, Chang-Lun Liu, Jinn-Liang Liu
arXiv ID
1910.12031
Category
cs.LG: Machine Learning
Cross-listed
cs.RO
Citations
62
Venue
Applied intelligence (Boston)
Last Checked
5 months ago
Abstract
Based on the direct perception paradigm of autonomous driving, we investigate and modify the CNNs (convolutional neural networks) AlexNet and GoogLeNet that map an input image to few perception indicators (heading angle, distances to preceding cars, and distance to road centerline) for estimating driving affordances in highway traffic. We also design a controller with these indicators and the short-range sensor information of TORCS (the open racing car simulator) for driving simulated cars to avoid collisions. We collect a set of images from a TORCS camera in various driving scenarios, train these CNNs using the dataset, test them in unseen traffics, and find that they perform better than earlier algorithms and controllers in terms of training efficiency and driving stability. Source code and data are available on our website.
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