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On the application of reverberation suppression to robust speech recognition

机译:混响抑制在鲁棒语音识别中的应用

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In this paper, we study the effect of the design parameters of a single-channel reverberation suppression algorithm on reverberation-robust speech recognition. At the same time, reverberation compensation at the speech recognizer is investigated. The analysis reveals that it is highly beneficial to attenuate only the reverberation tail after approximately 50 ms while coping with the early reflections and residual late-reverberation by training the recognizer on moderately reverberant data. It will be shown that the overall system at its optimum configuration yields a very promising recognition performance even in strongly reverberant environments. Since the reverberation suppression algorithm is evidenced to significantly reduce the dependency on the training data, it allows for a very efficient training of acoustic models that are suitable for a wide range of reverberation conditions. Finally, experiments with an “ideal” reverberation suppression algorithm are carried out to cross-check the inferred guidelines.
机译:本文研究了单通道混响抑制算法的设计参数对混响鲁棒语音识别的影响。同时,研究了语音识别器上的混响补偿。分析表明,仅在大约50毫秒后衰减混响尾巴,同时通过在中等混响数据上训练识别器来应对早期反射和残留的后期混响,这是非常有益的。可以看出,即使在强烈混响的环境中,整个系统在其最佳配置下也可以产生非常有希望的识别性能。由于已证明混响抑制算法可以显着减少对训练数据的依赖性,因此它可以非常有效地训练适用于各种混响条件的声学模型。最后,使用“理想”混响抑制算法进行了实验,以交叉检查推断出的准则。

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