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Dealing with Limited and Noisy Data in ASR: a Hybrid Knowledge-based and Statistical Approach

机译:在ASR中处理有限和嘈杂的数据:混合知识和统计方法

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In this talk, I will focus on the importance of integrating knowledge of human speech production and speech perception mechanisms, and language-specific information with statisticallybased, data-driven approaches to develop robust and scalable automatic speech recognition (ASR) systems. As we will demonstrate, the need for such hybrid systems is especially critical when the ASR system is dealing with noisy data, when adaptation data are limited (for the case of speaker normalization and adaptation), and when dealing with accents.
机译:在这次谈话中,我将专注于将人类语音生产和语音感知机制的知识集成,以及具有统计数据,数据驱动的方法的语言特定信息,以开发强大和可扩展的自动语音识别(ASR)系统。正如我们将演示的那样,当ASR系统处理噪声数据时,对这种混合系统的需求尤其重要,当时适应数据受到限制时(对于扬声器归一化和适配的情况),并且在处理重音时。

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