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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Background-thinning-based approach for separating and recognizing connected handwritten digit strings
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Background-thinning-based approach for separating and recognizing connected handwritten digit strings

机译:基于背景稀疏的分离和识别连接的手写数字字符串的方法

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摘要

Most algorithms for segmenting connected handwritten digit strings are based on the analysis of the foreground pixel distributions and the features on the upper/lower contours of the image. In this paper, a new approach is presented to segment connected handwritten two-digit strings based on the thinning of background regions. The algorithm first locates several feature points on the background skeleton of a digit image. Possible segmentation paths are then constructed by matching these feature points. With geometric property measures, all the possible segmentation paths are ranked using fuzzy rules generated from a decision-tree approach. Finally, the top ranked segmentation paths are tested one by one by an optimized nearest neighbor classifier until one of these candidates is accepted based on an acceptance criterion. Experimental results on NIST special database 3 show that our approach can achieve a correct classification rate of 92.5% with only 4.7% of digit strings rejected, which compares favorably with the other techniques tested.
机译:用于分割连接的手写数字字符串的大多数算法都是基于对前景像素分布以及图像上/下轮廓上的特征的分析。在本文中,提出了一种基于背景区域的细化来分割连接的手写两位字符串的新方法。该算法首先在数字图像的背景骨架上定位几个特征点。然后通过匹配这些特征点来构造可能的分割路径。使用几何属性量度,使用从决策树方法生成的模糊规则对所有可能的分割路径进行排序。最后,由最优化的最近邻分类器逐个测试排名最高的分割路径,直到根据接受标准接受这些候选者之一为止。在NIST专用数据库3上的实验结果表明,我们的方法可以正确地达到92.5%的分类率,而只有4.7%的数字字符串被拒绝,这与其他测试技术相比具有优势。

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