基于梯度角直方图和方向符号边缘的车道标记鲁棒提取

R. Satzoda, S. Sathyanarayana, T. Srikanthan
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引用次数: 19

摘要

在本文中,我们提出了一种新的基于分块的技术,用于在复杂场景中鲁棒提取车道标记边缘,例如存在阴影、车辆、其他道路标记等。这些技术基于车道标记的特性,涉及两个阶段的处理:(1)使用梯度角直方图生成定制的边缘图;(2)结合霍夫变换的方向符号边缘来识别车道标记。结果表明,所提出的技术在真实道路场景中收集的测试数据上显示出高达98%的检测准确率,代表了各种复杂的情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust extraction of lane markings using gradient angle histograms and directional signed edges
In this paper, we propose novel block-based techniques for robust extraction of lane marking edges in complex scenarios, such as in the presence of shadows, vehicles, other road markings etc. The techniques are based on the properties of lane markings and involve a two-stage processing: (1) generation of customized edge maps using histograms of gradient angles, and (2) directional signed edges in combination with Hough Transform to identify lane markings. It is shown that the proposed techniques show a detection accuracy of as high as 98% on test data collected on real road scenarios, representing the various complex cases.
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