Improvement of Speech Source Localization in Noisy Environment Using Overcomplete Rational-Dilation Wavelet Transforms

Di Liu, Andy W. H. Khong
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引用次数: 1

Abstract

The generalized cross-correlation using the phase transform prefilter remains popular for the estimation of time-differences-of-arrival. However it is not robust to noise and as a consequence, the performance of direction-of-arrival algorithms is often degraded under low signal-to-noise condition. We propose to address this problem through the use of a wavelet-based speech enhancement technique since the wavelet transform can achieve good denoising performance. The over complete rational-dilation wavelet transform is then exploited to effectively process speech signals due to its higher frequency resolution. In addition, we exploit the joint distribution of the speech in the wavelet domain and develop a novel local noise variance estimator based on the bivariate shrinkage function. As will be shown, our proposed algorithm achieves good direction-of-arrival performance in the presence of noise.
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利用过完备有理扩张小波变换改进噪声环境下语音源定位
利用相位变换预滤波器的广义互相关仍然是估计到达时间差的常用方法。然而,它对噪声的鲁棒性不强,在低信噪比条件下,到达方向算法的性能往往会下降。由于小波变换可以获得良好的去噪性能,我们建议通过使用基于小波的语音增强技术来解决这个问题。然后利用过完备的理性膨胀小波变换,由于其较高的频率分辨率,有效地处理语音信号。此外,我们利用语音在小波域的联合分布,提出了一种基于二元收缩函数的局部噪声方差估计方法。如图所示,我们提出的算法在存在噪声的情况下具有良好的到达方向性能。
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