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Rejection Optimization Based on Threshold Mapping for Offline Handwritten Chinese Character Recognition

机译:基于阈值映射的脱机手写汉字识别拒绝优化

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In this paper, a rejection optimization method based on rejection threshold mapping is proposed. Different from conventional rejection methods which use the same rejection threshold for all samples, this technique utilizes the local information of samples to optimize the rejection threshold. The samples with the same class pair in the first two recognition candidates are treated as the same sample category. Based on the rejection distribution of the sample categories, the parameters of rejection threshold mapping of similar character pairs are learned and stored. When performing rejection, the corresponding mapping parameters are searched according to the class pair in the first two recognition candidates, and applied on the input threshold. The transformed threshold is used in final rejection decision. The experiments show that it is able to decrease error rate under same rejection rate on handwritten Chinese character recognition which verify its effectiveness.
机译:提出了一种基于拒绝阈值映射的拒绝优化方法。与对所有样本使用相同拒绝阈值的常规拒绝方法不同,此技术利用样本的本地信息来优化拒绝阈值。在前两个识别候选中具有相同类别对的样本被视为相同的样本类别。基于样本类别的拒绝分布,学习并存储相似字符对的拒绝阈值映射参数。在执行拒绝时,根据前两个识别候选中的类对搜索对应的映射参数,并将其应用于输入阈值。转换后的阈值将用于最终拒绝决策。实验表明,在相同汉字识别率下,能够降低手写体汉字识别的错误率,验证了其有效性。

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