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Multi-scenario deep learning for multi-speaker source separation

2018-08-24 · Jeroen Zegers, Hugo Van hamme

Research in deep learning for multi-speaker source separation has received a boost in the last years. However, most studies are restricted to mixtures of a specific number of speakers, called a specific scenario. While some works included experiments for different scenarios, research towards combining data of different scenarios or creating a single model for multiple scenarios have been very rare. In this work it is shown that data of a specific scenario is relevant for solving another scenario. Furthermore, it is concluded that a single model, trained on different scenarios is capable of matching performance of scenario specific models.

📄 PDF Abstract BibTeX arXiv:1808.08095

Code (1)

JeroenZegers/Nabu-MSSS 공식 구현 tf

Tasks

Deep LearningMulti-Speaker Source Separation

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