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A local fuzzy thresholding methodology for multiregion image segmentation

机译:用于多区域图像分割的局部模糊阈值方法

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Thresholding is a direct and simple approach to extract different regions from an image. In its basic formulation, thresholding searches for a global value that maximizes the separation between output classes. The use of a single hard threshold value is precisely the source of important segmentation errors in many scenarios like noisy images or uneven illumination. If no connectivity or closed objects are considered, the method is prone to produce isolated pixels. In this paper a new multiregion thresholding methodology is presented to overcome the common drawbacks of thresholding methods when images are corrupted with artifacts and noise. It is based on relating each pixel in the image to different output centroids via a fuzzy membership function, avoiding any initial hard decision. The starting point of the technique is the definition of the output centroids using a clustering method compatible with most thresholding techniques in the literature. The method makes use of the spatial information through a local aggregation step where the membership degree of each pixel is modified by local information that takes into account the memberships of the surrounding pixels. This makes the method robust to noise and artifacts. The general formulation of the proposed methodology allows the design of spatial aggregations for multiple applications, including the possibility of including heuristic information via a fuzzy inference rule base. (C) 2015 Elsevier B.V. All rights reserved.
机译:阈值化是一种从图像中提取不同区域的直接而简单的方法。在其基本表述中,阈值搜索将最大化输出类之间的距离的全局值。在许多情况下(例如嘈杂的图像或照明不均匀),使用单个硬阈值恰恰是重要的分割错误的来源。如果没有考虑连通性或封闭的物体,则该方法易于产生孤立的像素。在本文中,提出了一种新的多区域阈值方法,以克服当图像被伪影和噪声破坏时阈值方法的常见缺点。它基于通过模糊隶属函数将图像中的每个像素与不同的输出质心相关联,从而避免了任何初始的硬决策。该技术的起点是使用与文献中大多数阈值技术兼容的聚类方法来定义输出质心。该方法通过局部聚合步骤利用空间信息,其中,通过考虑周围像素的隶属度的局部信息来修改每个像素的隶属度。这使得该方法对噪声和伪影具有鲁棒性。所提出方法的一般表述允许设计用于多种应用的空间聚合,包括通过模糊推理规则库包括启发式信息的可能性。 (C)2015 Elsevier B.V.保留所有权利。

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