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Testing and tuning an automatic speech recognition system using synthetic inputs generated from an acoustic model of the speech recognition system

机译:使用从语音识别系统的声学模型生成的合成输入来测试和调整自动语音识别系统

摘要

A system and method of testing a speech recognition system by providing pronunciations to the speech recognizer. First a text document is provided to the system and converted into a sequence of phonemes representative of the words in the text. The phonemes are then converted to model units, such as Hidden Markov Models. From the models a probability is obtained for each model or state, and feature vectors are determined. The feature vector matching the most probable vector for each state is selected for each model. These ideal feature vectors are provided to the speech recognizer, and processed. The end result is compared with the original text, and modifications to the system can be made based on the output text.
机译:一种通过向语音识别器提供发音来测试语音识别系统的系统和方法。首先,将文本文档提供给系统,并将其转换为代表文本中单词的音素序列。然后将音素转换为模型单位,例如“隐马尔可夫模型”。从模型中获得每种模型或状态的概率,并确定特征向量。为每个模型选择与每个状态的最可能矢量匹配的特征矢量。这些理想特征向量被提供给语音识别器并进行处理。将最终结果与原始文本进行比较,然后可以根据输出文本对系统进行修改。

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