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Discriminative power of online handwritten words for writer recognition

机译:在线手写单词对作者识别的判别力

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This paper is aimed at exploring the potential of online words to perform biometric writer recognition. Most of the scientific literature dealing with online writer recognition has focused on signature and somehow disregarded handwritten text. Using a novel recognition system based on stroke categorization and dynamic time warping, it is shown that short sequences of online text (words and combinations of a small number of words) perform remarkably well not only in identification but also in verification. Experimentation is performed with a dataset comprising 320 writers who donated 4 repetitions of 16 different Spanish words. With a single word, identification rate ranges from 80.6% to 95.6% and verification error from 1.57% to 5.55%. When two words are combined, the best identification rate increases up to 99.7% and the best verification error decreases until 0.63%
机译:本文旨在探讨在线单词执行生物识别作者识别的潜力。涉及在线作家认可的大多数科学文献都集中在签名和以某种方式忽视的手写文本上。使用基于笔划分类和动态时间规整的新型识别系统,可以显示在线文本的短序列(单词和少量单词的组合)不仅在识别方面而且在验证方面也表现出色。实验由一个数据集执行,该数据集包含320位作家,这些作者捐赠了16个不同的西班牙单词的4次重复。单字识别率从80.6%到95.6%,验证错误从1.57%到5.55%。当两个单词组合在一起时,最佳识别率提高到99.7%,最佳验证误差降低到0.63%

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