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Maximum likelihood PSD estimation for speech enhancement in reverberant and noisy conditions

机译:用于混响和嘈杂条件下语音增强的最大似然PSD估计

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We propose a novel Power Spectral Density (PSD) estimator for multi-microphone systems operating in reverberant and noisy conditions. The estimator is derived using the maximum likelihood approach and is based on a blocked and pre-whitened additive signal model. The intended application of the estimator is in speech enhancement algorithms, such as the Multi-channel Wiener Filter (MWF) and the Minimum Variance Distortionless Response (MVDR) beamformer. We evaluate these two algorithms in a speech dereverberation task and compare the performance obtained using the proposed and a competing PSD estimator. Instrumental performance measures indicate an advantage of the proposed estimator over the competing one. In a speech intelligibility test all algorithms significantly improved the word intelligibility score. While the results suggest a minor advantage of using the proposed PSD estimator, the difference between algorithms was found to be statistically significant only in some of the experimental conditions.
机译:我们为在混响和嘈杂条件下运行的多麦克风系统提出了一种新颖的功率谱密度(PSD)估计器。估计器是使用最大似然方法得出的,并基于已阻塞和预先加白的加性信号模型。估计器的预期应用是语音增强算法,例如多通道维纳滤波器(MWF)和最小方差无失真响应(MVDR)波束形成器。我们在语音去混响任务中评估了这两种算法,并比较了使用拟议的和竞争性的PSD估计器获得的性能。仪器性能指标表明拟议的估计量优于竞争的估计量。在语音清晰度测试中,所有算法均显着提高了单词清晰度。尽管结果表明使用建议的PSD估算器的次要优势,但是发现算法之间的差异仅在某些实验条件下才具有统计学意义。

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