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Quality Estimation for Automatic Speech Recognition

机译:自动语音识别的质量估计

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We address the problem of estimating the quality of Automatic Speech Recognition (ASR) output at utterance level, without recourse to manual reference transcriptions and when information about system's confidence is not accessible. Given a source signal and its automatic transcription, we approach this problem as a regression task where the word error rate of the transcribed utterance has to be predicted. To this aim, we explore the contribution of different feature sets and the potential of different algorithms in testing conditions of increasing complexity. Results show that our automatic quality estimates closely approximate the word error rate scores calculated over reference transcripts, outperforming a strong baseline in all the testing conditions.
机译:我们解决的问题是在话语级别上估计自动语音识别(ASR)输出的质量,而无需借助手动参考转录,以及在无法获得有关系统置信度的信息时。给定一个源信号及其自动转录,我们将此问题作为回归任务处理,其中必须预测转录语音的词错误率。为此,我们探索了不同功能集的贡献以及不同算法在复杂性不断提高的测试条件下的潜力。结果表明,我们的自动质量估算值非常接近参考成绩单上计算出的单词错误率得分,在所有测试条件下均优于强基准。

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