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Mathematical Morphology Preprocessing to Mitigate AWGN Effects: Improving Pitch Tracking Performance in Hard Noise Conditions

机译:用于缓解AWGN效应的数学形态学:改善硬噪声条件下的音高跟踪性能

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摘要

In this paper we show how a nonlinear preprocessing of speech signal -with high noise- based on morphological filters improves the performance of robust algorithms for pitch tracking (RAPT). This result happens for a very simple morphological filter. More sophisticated ones could even improve such results. Mathematical morphology is widely used in image processing in where it has found a great amount of applications. Almost all its formulations derived in the two-dimensional framework are easily reformulated to be adapted to one-dimensional context.
机译:在本文中,我们展示了语音信号的非线性预处理 - 基于形态过滤器的高噪声提高了俯仰跟踪(RAPT)的鲁棒算法的性能。这结果发生了非常简单的形态过滤器。更复杂的人甚至可以改善这样的结果。数学形态广泛用于在它发现大量应用程序的图像处理中。几乎所有在二维框架中得出的所有制剂都易于重新重新重新重新重新设计以适应一维上下文。

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