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Grouping Text Lines in Online Handwritten Japanese Documents by Combining Temporal and Spatial Information

机译:通过组合时空信息将联机手写日语文档中的文本行分组

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We present an effective approach for grouping text lines in online handwritten Japanese documents by combining temporal and spatial information. Initially, strokes are grouped into text line strings according to off-stroke distances. Each text line string is segmented into text lines by dynamic programming (DP) optimizing a cost function trained by the minimum classification error (MCE) method. Over-segmented text lines are then merged with a support vector machine (SVM) classifier for making mergeon-merge decisions, and last, a spatial merge module corrects the segmentation errors caused by delayed strokes. In experiments on the TUAT Kondate database, the proposed approach achieves the Entity Detection Metric (EDM) rate of 0.8816, the Edit-Distance Rate (EDR) of 0.1234, which demonstrates the superiority of our approach.
机译:我们提出了一种通过组合时空信息将在线手写日语文档中的文本行进行分组的有效方法。最初,笔划根据笔划外距离分为文本行字符串。通过优化最小化分类误差(MCE)方法训练的成本函数的动态编程(DP),将每个文本行字符串分割为多个文本行。然后,将过度细分的文本行与支持向量机(SVM)分类器合并,以做出合并/非合并决策,最后,空间合并模块纠正由延迟笔画引起的分段错误。在TUAT Kondate数据库上进行的实验中,所提出的方法实现了0.8816的实体检测度量(EDM)率,0.1234的编辑距离率(EDR),这证明了我们方法的优越性。

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