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Title: | Lane Detection Using Deep Learning for Rainy Conditions | Authors: | Hadhrami Ab Ghani Atiqullah Mohamed Daud Rosli Besar Zamani Md Sani Mohd Nazeri Kamaruddin Syabeela Syahali |
Keywords: | Deep learning;Training;Lane detection;Roads;Computational modeling;Feature extraction;Classification algorithms | Issue Date: | 2023 | Publisher: | Institute of Electrical and Electronics Engineers Inc. | Conference: | Proceedings of the 9th International Conference on Computer and Communication Engineering, ICCCE 2023 | Abstract: | Prior research has shown that various road marker classification mechanisms in clear or dry weather conditions have high accuracy performance. However, the performance tends to be lower under rainy driving conditions due to the reduced quality of the road image when detecting the five classes of road markers which are Single, Single-Single, Dashed, Solid-Dashed, and Dashed-Solid. To address this challenging condition, lane marker detection based on deep learning approach is proposed in this paper. The target weather condition is rainy, which is very challenging as it causes the surface of the roads, especially the area which includes the lane marker to become blurry and unclear due to the rainwater. In order to carefully select the right features of the road such that the lane marker can be classified and detected successfully. The lane marker object is captured from the frames of the video clips taken from established published video datasets. With this fast and better lane marker detection, the achievable classification precision is satisfactory although the weather is rainy. |
Description: | Scopus |
URI: | http://hdl.handle.net/123456789/4953 | ISSN: | 979-835032521-8 | DOI: | 10.1109/ICCCE58854.2023.10246071 |
Appears in Collections: | Faculty of Data Science and Computing - Proceedings |
Files in This Item:
File | Description | Size | Format | |
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ICCCE2023format_camera-ready_lane_detect.pdf | Lane Detection Using Deep Learning for Rainy Conditions | 454.39 kB | Adobe PDF | View/Open |
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