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Lars Thieling

1 accepted papers

2021

Recurrent Phase Reconstruction Using Estimated Phase Derivatives from Deep Neural Networks

ICASSP 2021accepted

This paper presents a deep neural network (DNN)-based system for phase reconstruction of speech signals solely from their magnitude spectrograms. The phase is very sensitive to time shifts. Therefore it is meaningful to estimate the phase derivatives instead of the phase directly, e.g., using DNNs a…

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