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Fusion of standard and alternative acoustic sensors for robust automatic speech recognition

机译:标准和替代声学传感器的融合,可实现强大的自动语音识别

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This paper focuses on the problem of environmental noises in human-human communication and in automatic speech recognition. To deal with this problem, the use of alternative acoustic sensors -which are attached to the talker and receive the uttered speech through skin or bones- is investigated. In the current study, throat microphones and ear bone microphones are integrated with standard microphones using several fusion methods. The results obtained show that the recognition rates in noisy environments are drastically increased when these sensors are integrated with standard microphones. Moreover, the system does not show any recognition degradations in clean environments. In fact, recognition rates also increase slightly in clean environments. Using late fusion to integrate a throat microphone, an ear bone microphone, and a standard microphone, we achieved a 44% relative improvement in recognition rate in a noisy environment and a 24% relative improvement in recognition rate in a clean environment.
机译:本文着眼于人与人之间的交流和自动语音识别中的环境噪声问题。为了解决这个问题,研究了使用替代的声音传感器-附着在讲话者身上,并通过皮肤或骨骼接收发出的语音。在当前的研究中,使用几种融合方法将喉头麦克风和耳骨麦克风与标准麦克风集成在一起。获得的结果表明,当这些传感器与标准麦克风集成在一起时,在嘈杂环境中的识别率将大大提高。此外,该系统在干净的环境中不会显示任何识别性能下降。实际上,在干净的环境中,识别率也会略有提高。使用后期融合技术将喉部麦克风,耳骨麦克风和标准麦克风集成在一起,我们在嘈杂环境中的识别率相对提高了44%,在干净环境中的识别率相对提高了24%。

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