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Color text image binarization based on binary texture analysis

机译:基于二进制纹理分析的彩色文本图像二值化

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摘要

In this paper, a novel binarization algorithm for color text images is presented. This algorithm effectively integrates color clustering and binary texture analysis, and is capable of handling situations with complex backgrounds. In this algorithm, dimensionality reduction and graph theoretical clustering are first employed. As the result, binary images related to clusters can be obtained. Binary texture analysis is then performed on each candidate binary image. Two kinds of effective texture features, run-length histogram and spatial-size distribution related respectively, are extracted and explored. Cooperating with an LDA classifier, the optimal candidate of the best binarization effect is obtained. Experiments with images collected from Internet has been carried out and compared with existing techniques, both show the effectiveness of the algorithm.
机译:本文提出了一种新颖的彩色文本图像二值化算法。该算法有效地集成了颜色聚类和二进制纹理分析,并且能够处理具有复杂背景的情况。在该算法中,首先采用降维和图理论聚类。结果,可以获得与聚类有关的二进制图像。然后对每个候选二进制图像执行二进制纹理分析。提取并探索了两种有效的纹理特征,分别是游程直方图和空间大小分布。与LDA分类器协作,可以获得最佳二值化效果的最佳候选者。已经进行了从互联网收集的图像的实验,并将其与现有技术进行了比较,均显示了该算法的有效性。

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