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Correcting recognition errors via discriminative utterance verification

机译:通过鉴别的话语验证纠正识别误差

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Utterance verification (UV) is a process by which the output of a speech recognizer is verified to determine if the input speech actually includes the recognized keyword(s). The output of the speech verifier is a binary decision to accept or reject the recognized utterance based on a UV confidence score. In this paper, we extend the notion of utterance verification to not only detect errors but also to selectively correct them. We perform error correction by flipping the hypotheses produced by an N-best recognizer in cases when the top candidate has a UV confidence score that is lower than that of the next candidate. We propose two measures for computing confidence scores and investigate the use of a hybrid confidence measure that combines the two measures into a single score. Using this hybrid confidence measure and an N-best algorithm, we obtained an 11% improvement in word-error rate on a connected digit recognition task. This improvement was achieved while still maintaining reliable detection of non-keyword speech and misrecognitions.
机译:话语验证(UV)是验证语音识别器的输出,以确定输入语音是否实际上包括识别的关键字。语音验证者的输出是基于UV置信度得分接受或拒绝所识别的话语的二进制决定。在本文中,我们将话语验证的概念扩展到不仅检测错误,而且选择性地纠正它们。当顶部候选者具有低于下一个候选者的UV置信度分数时,通过翻转由N最佳识别器产生的假设来执行纠错。我们提出了两项​​措施来计算置信度评分,并调查使用混合置信度量,将两种措施结合在一起。使用这种混合置信度量和n个最佳算法,我们在连接的数字识别任务上获得了11%的字错误率的提高。这种改进是实现的,同时仍然保持不可能的非关键词言语和误导的检测。

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