An MDL Approach to Color Image Segmentation

Kaikuo Xu, Hongwei Zhang, Tianyun Yan, Wei Wei, S. Fei, Wen Qiang
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引用次数: 1

Abstract

In this paper, we propose an unsupervised colorimage segmentation method based on image features encoding. In this method, image segmentation is treated as minimizing the feature coding length. Image features are firstly obtained by any proper transformation that maps image data to feature space. Then a two-part MDL(Minimum Description Length) coding algorithm is proposed to encode image features: the histogram on each image channel is used to estimate the probability density function of the image features and the coding lengths foreach image channel and each partition border are summed together to determine the total coding length. A parameter free algorithm is proposed to minimize the MDL the coding length. We demonstrate that this algorithm can achieve good performance in visual evaluations with images from Berkeley image database.
彩色图像分割的MDL方法
本文提出了一种基于图像特征编码的无监督彩色图像分割方法。在该方法中,图像分割被视为最小化特征编码长度。首先通过将图像数据映射到特征空间的任意适当变换得到图像特征。然后提出了一种两部分MDL(Minimum Description Length,最小描述长度)编码算法对图像特征进行编码:利用各图像通道上的直方图估计图像特征的概率密度函数,并将各图像通道和各分割边界的编码长度相加,确定总编码长度。提出了一种使MDL编码长度最小的无参数算法。实验结果表明,该算法对伯克利图像数据库中的图像进行视觉评价,取得了较好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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