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A Method for Accurate Road Centerline Extraction From a Classified Image

机译:一种从分类图像中准确提取道路中心线的方法

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摘要

Accurate road centerline extraction plays an important role in practical remote sensing applications. Most existing centerline extraction methods have many limitations when the classified image contains complicated objects such as curvilinear, close, or short extent features. To cope with these limitations, this study presents a novel accurate centerline extraction method that integrates tensor voting, principal curves, and the geodesic method. The proposed method consists of three main steps. Tensor voting is first used to extract feature points from the classified image. The extracted feature points are then projected onto the principal curves. Finally, the feature points are linked by the geodesic method to create the central line. The experimental results demonstrate that the proposed method, which is automatic, provides a comparatively accurate solution for centerline extraction from a classified image.
机译:准确的道路中心线提取在实际的遥感应用中起着重要作用。当分类的图像包含复杂的对象(例如曲线,闭合或短范围特征)时,大多数现有的中心线提取方法都有许多局限性。为了解决这些局限性,本研究提出了一种新颖的,准确的中心线提取方法,该方法将张量投票,主曲线和测地线方法集成在一起。所提出的方法包括三个主要步骤。首先使用张量投票从分类图像中提取特征点。然后将提取的特征点投影到主曲线上。最后,通过测地线方法将特征点链接起来以创建中心线。实验结果表明,该方法是自动的,为从分类图像中提取中心线提供了一个相对准确的解决方案。

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