A New Approach for Multilevel Threshold Selection

Papamarkos N., Gatos B.
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引用次数: 120

Abstract

This paper describes a new method for multilevel threshold selection of gray level images. The proposed method includes three main stages. First, a hill-clustering technique is applied to the image histogram in order to approximately determine the peak locations of the histogram. Then, the histogram segments between the peaks are approximated by rational functions using a linear minimax approximation algorithm. Finally, the application of the one-dimensional Golden search minimization algorithm gives the global minimum of each rational function, which corresponds to a multilevel threshold value. Experimental results for histograms with two or more peaks are presented.

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一种多层阈值选择的新方法
本文提出了一种灰度图像的多级阈值选择新方法。该方法包括三个主要阶段。首先,对图像直方图应用山丘聚类技术,近似确定直方图的峰值位置;然后,利用线性极大极小逼近算法用有理函数逼近峰值之间的直方图片段。最后,应用一维金搜索最小化算法,给出每个有理函数的全局最小值,并对应一个多级阈值。给出了具有两个或多个峰的直方图的实验结果。
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