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Overview of speech enhancement techniques for automatic speaker recognition

机译:用于自动说话人识别的语音增强技术概述

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Real world conditions differ from ideal or laboratory conditions, causing mismatch between training and testing phases, and consequently, inducing performance degradation in automatic speaker recognition systems. Many strategies have been adopted to cope with acoustical degradation; in some applications of speaker identification systems a clean sample of speech, prior to the recognition stage, is needed. This has justified the use of procedures that may reduce the impact of acoustical noise on the desired signal, giving rise to techniques involved in the enhancement of noisy speech. A comparative performance analysis of single-channel (based in classical spectral subtraction and some derived alternatives), dual-channel (based in adaptive noise cancelling) and multi-channel (using microphone arrays) speech enhancement techniques, with different types of noise at different SNRs, as a pre-processing stage to an ergodic HMM-based speaker recognizer, is presented.
机译:现实条件不同于理想条件或实验室条件,从而导致训练和测试阶段之间不匹配,从而导致自动说话人识别系统的性能下降。已经采取了许多策略来应对声衰减。在说话者识别系统的某些应用中,在识别阶段之前需要干净的语音样本。这证明使用可以减少声学噪声对所需信号的影响的程序是合理的,从而产生了涉及增强语音噪声的技术。对单通道(基于经典频谱减法和某些派生的替代方案),双通道(基于自适应噪声消除)和多通道(使用麦克风阵列)语音增强技术的性能比较分析,不同类型的噪声不同作为基于HMM遍历的说话人识别器的预处理阶段,介绍了SNR。

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