首页> 外文会议>IEEE Workshop on Applications of Signal Processing to Audio and Acoustics >MAXIMUM LIKELIHOOD ESTIMATION OF THE LATE REVERBERANT POWER SPECTRAL DENSITY IN NOISY ENVIRONMENTS
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MAXIMUM LIKELIHOOD ESTIMATION OF THE LATE REVERBERANT POWER SPECTRAL DENSITY IN NOISY ENVIRONMENTS

机译:嘈杂环境中延迟混响功率谱密度的最大似然估计

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An estimate of the power spectral density (PSD) of the late rever-beration is often required by dereverberation algorithms. In this work, we derive a novel multichannel maximum likelihood (ML) estimator for the PSD of the reverberation that can be applied in noisy environments. The direct path is first blocked by a blocking matrix and the output is considered as the observed data. Then, the ML criterion for estimating the reverberation PSD is stated. As a closed-form solution for the maximum likelihood estimator (MLE) is unavailable, a Newton method for maximizing the ML criterion is derived. Experimental results show that the proposed estimator provides an accurate estimate of the PSD, and is outperforming competing estimators. Moreover, when used in a multi-microphone noise reduction and dereverberation algorithm, the estimated rever-beration PSD is shown to provide improved performance measures as compared with the competing estimators.
机译:DERERATION算法通常需要估计后反射纤维的功率谱密度(PSD)。在这项工作中,我们推导出一种新的多声道最大可能性(ML)估算器,用于可以在嘈杂环境中应用的混响的PSD。直接路径首先被阻塞矩阵阻断,并且输出被认为是观察到的数据。然后,规定了用于估计混响PSD的M1标准。作为最大似然估计器(MLE)的闭合方案不可用,推导出用于最大化ML标准的牛顿方法。实验结果表明,建议的估计人提供了对PSD的准确估计,并且表现优于竞争估算。此外,当在多麦克风降噪和DERE失眠算法中使用时,估计的反射纤维PSD被示出与竞争估计器相比提供改进的性能措施。

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