基于快速局部尺度控制的模糊边缘检测

Yuan Wu, Weifeng Wu, Qian Huang, Xiaoli Dong
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引用次数: 0

摘要

从自然图像的非均匀背景中提取边缘模糊的目标,目前还处于探索阶段。为了定位模糊边缘,算法采用容错方法,为图像的每个像素点建立唯一的、局部可计算的最小可靠尺度。通过简化每个像素的二阶导数计算过程,采用沿其梯度方向的卷积掩模。将局部尺度控制与LoG算法相结合,降低了梯度方向二阶导数计算的计算复杂度。在实验中对三种不同类型的典型模糊图像进行了不同算法的粗略基准测试。实验结果表明,该算法能够精确地定位和提取模糊边缘,并且运行速度快,可以实现一些实时应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fast Local Scale Control Based Blur Edge Detection
Extracting objects with blurred edges from inhomogeneous background in the natural images is still under exploring. To locate blurred edges, a fault-tolerant method is adopted in the algorithm, to establish the unique, locally calculable minimum reliable scale for each pixel of the image. By simplifying the process of calculating the second derivation for each pixel, the convolution mask along its gradient direction is used. The calculation complexity of second derivation calculation in the gradient direction is reduced by combining the local scale control with LoG algorithm. Different algorithms are roughly benchmarked in the experiments among three different kinds of typical blurred images. The results show that the proposed algorithm localizes and extracts the blurred edges precisely, moreover it runs fast enough to perform some kind of real-time applications.
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