在线手写体日文字符识别中混淆字符识别减少错误

Xiang-Dong Zhou, Da-Han Wang, M. Nakagawa, Cheng-Lin Liu
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引用次数: 5

摘要

为了减少在线手写体日文字符识别的分类错误,提出了一种成本较低的混淆字符识别方法。在使用基线二次分类器通过交叉验证构建混淆集之后,训练逻辑回归(LR)分类器来区分每个集中的字符。LR分类器使用从基线分类器的现有向量中选择的子空间特征,因此除了权重之外没有额外的参数,与基线分类器相比消耗的存储空间较小。以改进的二次判别函数(MQDF)作为基线分类器在TUAT HANDS数据库上进行的实验表明,该方法大大减少了非汉字引起的混淆。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Error Reduction by Confusing Characters Discrimination for Online Handwritten Japanese Character Recognition
To reduce the classification errors of online handwritten Japanese character recognition, we propose a method for confusing characters discrimination with little additional costs. After building confusing sets by cross validation using a baseline quadratic classifier, a logistic regression (LR) classifier is trained to discriminate the characters in each set. The LR classifier uses subspace features selected from existing vectors of the baseline classifier, thus has no extra parameters except the weights, which consumes a small storage space compared to the baseline classifier. In experiments on the TUAT HANDS databases with the modified quadratic discriminant function (MQDF) as baseline classifier, the proposed method has largely reduced the confusion caused by non-Kanji characters.
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