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A New Algorithm for Speech Enhancement Using Wavelet Packet Transform Based on Auditory Model

机译:基于听觉模型的小波包变换的语音增强算法

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Human auditory has non-linear characteristics, while wavelet packet transform (WPT) has flexible analysis ability to time-frequency property so that it is more compatible to simulate the human auditory model. In this paper, human auditory model is analyzed, after which a new algorithm for speech enhancement using node- threshold wavelet packet transform based on bark-scaled decomposition is established, multi-resolution singular spectral entropy method is applied to estimate the node noise, and uses soft threshold to deal wavelet transform coefficient. The experiments show that this algorithm is valid on various noise conditions, especially for color noise and non-stationary noise conditions.
机译:人类听觉具有非线性特性,而小波包变换(WPT)具有灵活的时间频率性能的能力,以便模拟人类听觉模型更加兼容。在本文中,分析了人类听觉模型,之后建立了使用基于树皮缩放分解的节点阈值小波分组变换的新的语音增强算法,应用多分辨率奇异谱熵方法来估计节点噪声,以及使用软阈值来处理小波变换系数。实验表明,该算法对各种噪声条件有效,特别是对于彩色噪声和非静止噪声条件。

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