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Adaptive Noise Estimation Using Least-Squares Line in Wavelet Packet Transform Domain

机译:小波包变换域中基于最小二乘线的自适应噪声估计

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摘要

In this letter, we suggest a noise estimation method which can be applied for speech enhancement in various noise environments. The proposed method consists of the following two main processes to analyze and estimate efficiently the noise from the noisy speech. First, a least-squares line is used, which is obtained by applying coefficient magnitudes in node with a uniform wavelet packet transform to a least squares method. Next, a differential forgetting factor and a correlation coefficient per sub-band are applied, where each subband consists of several nodes with the uniform wavelet packet transform. In particular, this approach has the ability to update noise estimation by using the estimated noise at the previous frame only instead of employing the statistical information of long past frames and explicit nonspeech frames detection consisted of noise signals. In objective assessments, we observed that the performance of the proposed method was better than that of the compared methods. Furthermore, our method showed a reliable result even at low SNR.
机译:在这封信中,我们提出了一种噪声估计方法,可以将其应用于各种噪声环境中的语音增强。所提出的方法包括以下两个主要过程,以有效地分析和估计来自嘈杂语音的噪声。首先,使用最小二乘线,该线是通过将均匀小波包变换的节点中的系数大小应用于最小二乘法而获得的。接下来,应用每个子带的差分遗忘因子和相关系数,其中每个子带由具有统一小波包变换的几个节点组成。特别地,该方法具有仅通过使用前一帧处的估计噪声而不是采用过去的帧的统计信息和由噪声信号组成的显式非语音帧检测来更新噪声估计的能力。在客观评估中,我们观察到该方法的性能优于比较方法。此外,即使在低SNR的情况下,我们的方法也显示出可靠的结果。

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