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Modelling Human Speech Recognition using Automatic Speech Recognition Paradigms in SpeM

机译:在SpeM中使用自动语音识别范例对人类语音识别进行建模

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摘要

We have recently developed a new model of human speech recognition, based on automatic speech recognition techniques [1]. The present paper has two goals. First, we show that the new model performs well in the recognition of lexically ambiguous input. These demonstrations suggest that the model is able to operate in the same optimal way as human listeners. Second, we discuss how to relate the behaviour of a recogniser, designed to discover the optimum path through a word lattice, to data from human listening experiments. We argue that this requires a metric that combines both path-based and word-based measures of recognition performance. The combined metric varies continuously as the input speech signal unfolds over time.
机译:我们最近基于自动语音识别技术[1]开发了一种新的人类语音识别模型。本论文有两个目标。首先,我们证明了新模型在识别词义不明确的输入方面表现良好。这些演示表明,该模型能够以与人类听众相同的最佳方式运行。其次,我们讨论如何将旨在通过单词晶格发现最佳路径的识别器的行为与人类听力实验的数据相关联。我们认为这需要一种结合基于路径和基于单词的识别性能度量的度量。随着输入语音信号随时间展开,组合的度量会连续变化。

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