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Use of a Confusion Network to Detect and Correct Errors in an On-Line Handwritten Sentence Recognition System

机译:使用混淆网络来检测在线手写句子识别系统中的错误

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In this paper we investigate the integration of a confusion network into an on-line handwritten sentence recognition system. The word posterior probabilities from the confusion network are used as confidence scored to detect potential errors in the output sentence from the Maximum A Posteriori decoding on a word graph. Dedicated classifiers (here, SVMs) are then trained to correct these errors and combine the word posterior probabilities with other sources of knowledge. A rejection phase is also introduced in the detection process. Experiments on handwritten sentences show a 28.5 % relative reduction of the word error rate.
机译:在本文中,我们调查混淆网络集成到一条在线手写句子识别系统中。来自混淆网络的单词后验概率被用作置信度,以检测输出句子中的潜在误差从单词图上的最大后序解码。然后培训专用分类器(此处,SVMS)以纠正这些错误,并将Word后续概率与其他知识源相结合。抑制阶段也在检测过程中引入。手写句子的实验显示了28.5%相对减少了单词错误率。

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