2021
DOI: 10.48550/arxiv.2109.02011
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A Two-stage Complex Network using Cycle-consistent Generative Adversarial Networks for Speech Enhancement

Abstract: Cycle-consistent generative adversarial networks (CycleGAN) have shown their promising performance for speech enhancement (SE), while one intractable shortcoming of these CycleGAN-based SE systems is that the noise components propagate throughout the cycle and cannot be completely eliminated.Additionally, conventional CycleGAN-based SE systems only estimate the spectral magnitude, while the phase is unaltered. Motivated by the multi-stage learning concept, we propose a novel two-stage denoising system that com… Show more

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