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Discriminant substrokes for online handwriting recognition

机译:在线手写识别的判别笔划

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摘要

A discriminant-based framework for automatic recognition of online handwriting data is presented in this paper. We identify the substrokes that are more useful in discriminating between two online strokes. A similarity/dissimilarity score is computed based on the discriminatory potential of various parts of the stroke for the classification task. The discriminatory potential is then converted to the relative importance of the substroke. Experimental verification on online data such as numerals, characters supports our claims. We achieve an average reduction of 41% in the classification error rate on many test sets of similar character pairs.
机译:本文提出了一种基于判别式的在线手写数据自动识别框架。我们确定了在区分两个在线笔划时更有用的子笔划。基于笔划各个部分对分类任务的辨别潜力,计算相似度/不相似度得分。歧视性潜力然后被转换为次中风的相对重要性。在线数据(例如数字,字符)的实验验证支持我们的主张。在许多相似字符对的测试集上,我们将分类错误率平均降低了41%。

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