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Hypothesis Testing for Fourier Based Edge Detection Methods

机译:基于傅立叶边缘检测方法的假设检验

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摘要

Edge detection is an essential task in image processing. In some applications, such as Magnetic Resonance Imaging, the information about an image is available only through its frequency (Fourier) data. In this case, edge detection is particularly challenging, as it requires extracting local information from global data. The problem is exacerbated when the data are noisy. This paper proposes a new edge detection algorithm which combines the concentration edge detection method (Gelb and Tadmor in Appl. Comput. Harmon. Anal. 7:101-135, 1999) with statistical hypothesis testing. The result is a method that achieves a high probability of detection while maintaining a low probability of false detection.
机译:边缘检测是图像处理中的基本任务。在某些应用中,例如磁共振成像,有关图像的信息只能通过其频率(傅立叶)数据获得。在这种情况下,边缘检测特别具有挑战性,因为它需要从全局数据中提取局部信息。当数据嘈杂时,这个问题变得更加严重。本文提出了一种新的边缘检测算法,该算法将集中边缘检测方法(Appl。Comput。Harmon。Anal。7:101-135,1999中的Gelb和Tadmor)与统计假设检验相结合。结果是一种在保持低的错误检测概率的同时实现高的检测概率的方法。

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