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Performance improvement of edge detection based on edge likelihood index

机译:基于边缘似然指数的边缘检测性能改进

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摘要

One of the problems of conventional edge detectors is the difficulty in distinguishing noise and true edges correctly using a simple measurement, such as gradient, local energy, or phase congruency. This paper proposes a performance improvement algorithm for edge detection based on a composite measurement called Edge Likelihood Index (ELI). In principle, given a raw edge map obtained from any edge detectors, edge contours can be extracted where gradient, continuity and smoothness of each contour are measured. The ELI of an edge contour is defined as directly proportional to its gradient and length, and inversely proportional to its smoothness, which offers a more flexible representation of true edges, such as those with low gradient, but continuous and smooth. The proposed method was tested on the South Florida data sets, using the Canny edge operator for edge detection, and evaluated using the Receiver Operator Characteristic curves. It can be shown that the proposed method reduces Bayes risk of ROC curves by over 10% in the aggregate test results.
机译:常规边缘检测器的问题之一是难以使用简单的测量方法(例如梯度,局部能量或相位一致性)正确区分噪声和真实边缘。本文提出了一种基于边缘测度指数(ELI)的复合测量算法,用于边缘检测的性能改进算法。原则上,给定从任何边缘检测器获得的原始边缘图,可以提取边缘轮廓,并在其中测量每个轮廓的梯度,连续性和平滑度。边缘轮廓的ELI定义为与它的坡度和长度成正比,与它的平滑度成反比,这提供了真实边缘(例如那些具有低梯度但连续且平滑的边缘)的更灵活表示。使用Canny边缘算子进行边缘检测,并在South Florida数据集上对提出的方法进行了测试,并使用Receiver Operator特征曲线对其进行了评估。可以证明,所提出的方法在总体测试结果中将贝叶斯的ROC曲线风险降低了10%以上。

著录项

  • 作者

    He X; Yung NHC;

  • 作者单位
  • 年度 2005
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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