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Inventory-style speech enhancement with uncertainty-of-observation techniques

机译:具有观测不确定性技术的库存式语音增强

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We present a new method for inventory-style speech enhancement that significantly improves over earlier approaches [1]. Inventory-style enhancement attempts to resynthesize a clean speech signal from a noisy signal via corpus-based speech synthesis. The advantage of such an approach is that one is not bound to trade noise suppression against signal distortion in the same way that most traditional methods do. A significant improvement in perceptual quality is typically the result. Disadvantages of this new approach, however, include speaker dependency, increased processing delays, and the necessity of substantial system training. Earlier published methods relied on a-priori knowledge of the expected noise type during the training process [1]. In this paper we present a new method that exploits uncertainty-of-observation techniques to circumvent the need for noise specific training. Experimental results show that the new method is not only able to match, but outperform the earlier approaches in perceptual quality.
机译:我们提出了一种新的库存风格语音增强方法,显着提高了更早的方法[1]。库存风格的增强试图通过基于语料库的语音合成从嘈杂信号中重新合成清洁语音信号。这种方法的优点是,一种不束缚对信号失真的贸易噪声抑制,同样的方式是大多数传统方法所做的方式。感知质量的显着改善通常是结果。然而,这种新方法的缺点包括扬声器依赖性,增加的处理延迟以及大量系统培训的必要性。早期公布的方法依赖于培训过程中的预期噪声类型的先验知识[1]。在本文中,我们提出了一种新的方法,该方法利用了观测不确定的技术来规避噪声特异性培训的需求。实验结果表明,新方法不仅能够匹配,而且优于感知质量的早期方法。

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