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Unsupervised noise reduction scheme for voice-based information retrieval in mobile environments

机译:用于移动环境中基于语音的信息检索的无监督降噪方案

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摘要

This study proposes an unsupervised noise reduction scheme that improves the performance of voice-based information retrieval tasks in mobile environments. Various types of noises could interfere with speech processing tasks, and noise reduction has become an essential technique in this field. In particular, noise reduction needs to be carefully processed in mobile environments based on the speech coding system and the client-server architecture. In this study, we propose an effective noise reduction scheme that employs the adaptive comb filtering technique. A way of directly using several codec parameters during the filtering process is also investigated. In particular, we modify the conventional comb filter using line spectral pair parameters. To verify the efficiency of the proposed noise reduction approach, we conducted speech recognition experiments using the Aurora2 database. Our approach provided superior recognition performance under various noise conditions compared to the conventional techniques.
机译:这项研究提出了一种无监督的降噪方案,该方案可以提高移动环境中基于语音的信息检索任务的性能。各种类型的噪声可能会干扰语音处理任务,降噪已成为该领域的一项必不可少的技术。特别是,降噪需要在基于语音编码系统和客户端-服务器体系结构的移动环境中仔细处理。在这项研究中,我们提出了一种采用自适应梳状滤波技术的有效降噪方案。还研究了在过滤过程中直接使用多个编解码器参数的方法。特别是,我们使用线谱对参数修改了常规梳状滤波器。为了验证所提出的降噪方法的效率,我们使用Aurora2数据库进行了语音识别实验。与传统技术相比,我们的方法在各种噪声条件下均​​提供了卓越的识别性能。

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