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Online handwritten cursive word recognition using segmentation-free and segmentation-based methods

机译:使用无分段和基于分段的方法进行在线手写草书单词识别

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This paper describes a comparison between online handwritten cursive word recognition using segmentation-free method and that using segmentation-based method. To search the optimal segmentation and recognition path as the recognition result, we attempt two methods: segmentation-free and segmentation-based, where we expand the search space using a character-synchronous beam search strategy. The probable search paths are evaluated by integrating character recognition scores with geometric characteristics of the character patterns in a Conditional Random Field (CRF) model. Our methods restrict the search paths from the trie lexicon of words and preceding paths during path search. We show this comparison on a publicly available dataset (lAM-OnDB).
机译:本文介绍了使用无分段方法的在线手写草书单词识别与基于分段的方法的在线手写草书单词识别之间的比较。为了搜索作为识别结果的最佳分割和识别路径,我们尝试了两种方法:无分割和基于分割,其中我们使用字符同步波束搜索策略扩展了搜索空间。通过在条件随机场(CRF)模型中将字符识别分数与字符模式的几何特征相集成来评估可能的搜索路径。我们的方法在路径搜索过程中限制了单词trie词典和先前路径的搜索路径。我们在公开可用的数据集(lAM-OnDB)上显示了此比较。

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