Enhanced Safety in Multi-Lane Automated Driving Through Semantic Features
Zhou Li,
Jiajia Li,
Gengming Xie
et al.
Abstract:Accurate lane detection is crucial for the safety and reliability of multi-lane automated driving, where the complexity of traffic scenarios is significantly heightened. Leveraging the semantic segmentation capabilities of deep learning, we develop a modified U-Net architecture tailored for the precise identification of lane lines. Our model is trained and validated on a robust dataset from Kaggle, comprising 2975 annotated training images and 500 test images with masks. Empirical results demonstrate the model… Show more
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