首页> 外文会议>Electrical and Electronics Engineers in Israel, 1996., Nineteenth Convention of >Iterative-batch and sequential algorithms for single microphone speech enhancement
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Iterative-batch and sequential algorithms for single microphone speech enhancement

机译:单麦克风语音增强的迭代批量和顺序算法

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Speech quality and intelligibility might significantly deteriorate in the presence of background noise, especially when the speech signal is subject to subsequent processing. We represent a class of Kalman-filter based speech enhancement algorithms with some extensions, modifications, and improvements. The first algorithm employs the estimate-maximize (EM) method to iteratively estimate the spectral parameters of the speech and noise parameters. The enhanced speech signal is obtained as a byproduct of the parameter estimation algorithm. The second algorithm is a sequential, computationally efficient, gradient descent algorithm. We discuss various topics concerning the practical implementation of these algorithms. An experimental study, using real speech and noise signals is provided to compare these algorithms with alternative speech enhancement algorithms, and to compare the performance of the iterative and sequential algorithms.
机译:在存在背景噪声的情况下,语音质量和清晰度可能会显着下降,尤其是当语音信号要进行后续处理时。我们代表一类基于卡尔曼滤波器的语音增强算法,并进行了一些扩展,修改和改进。第一种算法采用估计最大化(EM)方法来迭代估计语音和噪声参数的频谱参数。获得增强的语音信号作为参数估计算法的副产品。第二种算法是顺序的,计算效率高的梯度下降算法。我们讨论了有关这些算法的实际实现的各种主题。提供了使用真实语音和噪声信号的实验研究,以将这些算法与替代语音增强算法进行比较,并比较迭代算法和顺序算法的性能。

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