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Lane Detection Based on Connection of Various Feature Extraction Methods

机译:基于多种特征提取方法联系的车道检测

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Lane detection is a challenging problem. It has attracted the attention of the computer vision community for several decades. Essentially, lane detection is a multifeature detection problem that has become a real challenge for computer vision and machine learning techniques. Although many machine learning methods are used for lane detection, they are mainly used for classification rather than feature design. But modern machine learning methods can be used to identify the features that are rich in recognition and have achieved success in feature detection tests. However, these methods have not been fully implemented in the efficiency and accuracy of lane detection. In this paper, we propose a new method to solve it. We introduce a new method of preprocessing and ROI selection. The main goal is to use the HSV colour transformation to extract the white features and add preliminary edge feature detection in the preprocessing stage and then select ROI on the basis of the proposed preprocessing. This new preprocessing method is used to detect the lane. By using the standard KITTI road database to evaluate the proposed method, the results obtained are superior to the existing preprocessing and ROI selection techniques.
机译:车道检测是一个具有挑战性的问题。几十年来,它吸引了计算机视觉界的关注。本质上,车道检测是一种多特征检测问题,已经成为计算机视觉和机器学习技术的真正挑战。尽管许多机器学习方法用于车道检测,但它们主要用于分类而不是特征设计。但是,现代机器学习方法可用于识别特征丰富的特征,并在特征检测测试中取得成功。但是,这些方法在车道检测的效率和准确性方面尚未完全实现。在本文中,我们提出了一种新的解决方法。我们介绍了一种预处理和ROI选择的新方法。主要目标是使用HSV颜色转换来提取白色特征,并在预处理阶段添加初步的边缘特征检测,然后根据所提出的预处理选择ROI。这种新的预处理方法用于检测车道。通过使用标准的KITTI道路数据库评估提出的方法,获得的结果优于现有的预处理和ROI选择技术。

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