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An improved binarization algorithm based on a water flow model for document image with inhomogeneous backgrounds

机译:改进的基于水流模型的二值化背景文档图像二值化算法

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A segmentation algorithm using a water flow model [Kim et al., Pattern Recognition 35 (2002) 265-2771 has already been presented where a document image can be efficiently divided into two regions, characters and background, due to the property of locally adaptive thresholding. However, this method has not decided when to stop the iterative process and required long processing time. Plus, characters on poor contrast backgrounds often fail to be separated successfully. Accordingly, to overcome the above drawbacks to the existing method, the current paper presents an improved approach that includes extraction of regions of interest (ROIs), an automatic stopping criterion, and hierarchical thresholding. Experimental results show that the proposed method can achieve a satisfactory binarization quality, especially for document images with a poor contrast background, and is significantly faster than the existing method. (c) 2005 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:已经提出了使用水流模型的分割算法[Kim等人,Pattern Recognition 35(2002)265-2771,由于局部自适应的特性,其中文档图像可以有效地分为两个区域,字符和背景。阈值化。但是,该方法尚未确定何时停止迭代过程,并且需要较长的处理时间。另外,对比度差的背景上的字符通常无法成功分离。因此,为了克服现有方法的上述缺点,当前论文提出了一种改进的方法,该方法包括感兴趣区域(ROI)的提取,自动停止标准和分级阈值。实验结果表明,该方法可以达到满意的二值化质量,特别是对于对比度背景较差的文档图像,其速度明显快于现有方法。 (c)2005模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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