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International Journal of Advanced Computer Science and Applications(IJACSA), Volume 15 Issue 5, 2024.
Abstract: This paper presents a novel approach to real-time road lane-line detection using the Mask R-CNN framework, with the aim of enhancing the safety and efficiency of autonomous driving systems. Through extensive experimentation and analysis, the proposed system demonstrates robust performance in accurately detecting and segmenting lane boundaries under diverse driving conditions. Leveraging deep learning techniques, the system exhibits a high level of accuracy in handling complex scenarios, including variations in lighting conditions and occlusions. Real-time processing capabilities enable instantaneous feedback, contributing to improved driving safety and efficiency. However, challenges such as model generalizability, interpretability, computational efficiency, and resilience to adverse weather conditions remain to be addressed. Future research directions include optimizing the system's performance across different geographic regions and road types and enhancing its adaptability to adverse weather conditions. The findings presented in this paper contribute to the ongoing efforts to advance autonomous driving technology, with implications for improving road safety and transportation efficiency in real-world settings. The proposed system holds promise for practical deployment in autonomous vehicles, paving the way for safer and more efficient transportation systems in the future.
Gulbakhram Beissenova, Dinara Ussipbekova, Firuza Sultanova, Karasheva Nurzhamal, Gulmira Baenova, Marzhan Suimenova, Kamar Rzayeva, Zhanar Azhibekova and Aizhan Ydyrys, “Real-Time Road Lane-Lines Detection using Mask-RCNN Approach” International Journal of Advanced Computer Science and Applications(IJACSA), 15(5), 2024. http://dx.doi.org/10.14569/IJACSA.2024.0150583
@article{Beissenova2024,
title = {Real-Time Road Lane-Lines Detection using Mask-RCNN Approach},
journal = {International Journal of Advanced Computer Science and Applications},
doi = {10.14569/IJACSA.2024.0150583},
url = {http://dx.doi.org/10.14569/IJACSA.2024.0150583},
year = {2024},
publisher = {The Science and Information Organization},
volume = {15},
number = {5},
author = {Gulbakhram Beissenova and Dinara Ussipbekova and Firuza Sultanova and Karasheva Nurzhamal and Gulmira Baenova and Marzhan Suimenova and Kamar Rzayeva and Zhanar Azhibekova and Aizhan Ydyrys}
}
Copyright Statement: This is an open access article licensed under a Creative Commons Attribution 4.0 International License, which permits unrestricted use, distribution, and reproduction in any medium, even commercially as long as the original work is properly cited.