Please use this identifier to cite or link to this item: https://rda.sliit.lk/handle/123456789/1039
Title: Computer Vision for Autonomous Driving
Authors: Kanchana, B
Peiris, R
Perera, D
Jayasinghe, D
Kasthurirathna, D
Keywords: Computer Vision
Autonomous Driving
Issue Date: 9-Dec-2021
Publisher: IEEE
Citation: B. Kanchana, R. Peiris, D. Perera, D. Jayasinghe and D. Kasthurirathna, "Computer Vision for Autonomous Driving," 2021 3rd International Conference on Advancements in Computing (ICAC), 2021, pp. 175-180, doi: 10.1109/ICAC54203.2021.9671099.
Series/Report no.: 2021 3rd International Conference on Advancements in Computing (ICAC);Pages 175-180
Abstract: Computer vision in self-driving vehicles can lead to research and development of futuristic vehicles that can mitigate the road accidents and assist in a safer driving environment. By using the self-driving technology, the riders can be roamed to their destinations without using human interaction. But in recent times self-driving vehicle technology is still at the early stage. Mostly in the rushed areas like cities it becomes challenging to deploy such autonomous systems because even a small amount of data can cause a critical accident situation. In Order to increase the autonomous driving conditions computer vision and deep learning-based approaches are tended to be used. Finding the obstacles on the road and analyzing the current traffic flow are mainly focused areas using computer vision-based approaches. As well as many researchers using deep learning-based approaches like convolutional neural networks to enhance the autonomous driving conditions. This research paper focused on the evaluation of computer vision used in self-driving vehicles.
URI: http://rda.sliit.lk/handle/123456789/1039
ISBN: 978-1-6654-0862-2
Appears in Collections:Research Papers - Dept of Computer Science and Software Engineering
Research Papers - School of Natural Sciences
Research Papers - SLIIT Staff Publications

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