语音增强:方法与应用综述

Siddharth Chhetri, M. Joshi, C. Mahamuni, Repana Naga Sangeetha, Tushar Roy
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引用次数: 2

摘要

本文对语音增强技术及其应用进行了综述。它讨论了非平稳噪声、混响和重叠语音的挑战。探索了梳状滤波、基于lpc的滤波、自适应滤波、HMM滤波、维纳滤波、ML估计、贝叶斯估计、MMSE估计、变换域方法、基于人工智能的方法。讨论了每种方法的有效性和挑战。重点介绍了在电信、语音控制系统、助听器、语音识别和音频恢复方面的应用。本文介绍了语音增强的成果和进展。为该领域的研究人员、工程师和实践者提供了有价值的见解。研究结果有助于选择合适的技术来提高语音质量和可理解性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speech Enhancement: A Survey of Approaches and Applications
The paper provides a comprehensive overview of speech enhancement techniques and their applications. It discusses challenges in non-stationary noise, reverberation, and overlapping speech. Approaches like comb filtering, LPC-based filtering, and adaptive filtering, HMM filtering, Wiener filtering, ML estimation, Bayesian estimation, MMSE estimation, and transform domain methods, AI-based approaches are explored. The effectiveness and challenges of each approach are discussed. Applications in telecommunications, voice-controlled systems, hearing aids, speech recognition, and audio restoration are highlighted. The paper presents outcomes and advancements in speech enhancement. Valuable insights are provided for researchers, engineers, and practitioners in the field. The findings aid in selecting suitable techniques for improved speech quality and intelligibility.
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