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On the Estimation of Complex Speech DFT Coefficients Without Assuming Independent Real and Imaginary Parts

机译:不考虑实部和虚部独立的复语音DFT系数的估计

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This letter considers the estimation of speech signals contaminated by additive noise in the discrete Fourier transform (DFT) domain. Existing complex-DFT estimators assume independency of the real and imaginary parts of the speech DFT coefficients, although this is not in line with measurements. In this letter, we derive some general results on these estimators, under more realistic assumptions. Assuming that speech and noise are independent, speech DFT coefficients have uniform phase, and that noise DFT coefficients have a Gaussian density, we show theoretically that the spectral gain function for speech DFT estimation is real and upper-bounded by the corresponding gain function for spectral magnitude estimation. We also show that the minimum mean-square error (MMSE) estimator of the speech phase equals the noisy phase. No assumptions are made about the distribution of the speech spectral magnitudes. Recently, speech spectral amplitude estimators have been derived under a generalized-Gamma amplitude distribution. As an example, we will derive the corresponding complex-DFT estimators, without making the independence assumption.
机译:这封信考虑了在离散傅立叶变换(DFT)域中被加性噪声污染的语音信号的估计。现有的复数DFT估计器假定语音DFT系数的实部和虚部都是独立的,尽管这与测量结果不一致。在这封信中,我们在更现实的假设下得出了这些估计量的一些一般结果。假设语音和噪声是独立的,语音DFT系数具有均匀的相位,并且噪声DFT系数具有高斯密度,则我们从理论上证明语音DFT估计的频谱增益函数是实数,并且由对应的频谱增益函数上界幅度估计。我们还显示语音阶段的最小均方误差(MMSE)估计器等于噪声阶段。没有对语音频谱幅度的分布做任何假设。近来,已经在广义伽马幅度分布下导出了语音频谱幅度估计器。例如,我们将推导相应的复数DFT估计量,而无需进行独立性假设。

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