Paper

Batch-normalized joint training for DNN-based distant speech recognition

Improving distant speech recognition is a crucial step towards flexible human-machine interfaces. Current technology, however, still exhibits a lack of robustness, especially when adverse acoustic conditions are met. Despite the significant progress made in the last years on both speech enhancement and speech recognition, one potential limitation of state-of-the-art technology lies in composing modules that are not well matched because they are not trained jointly.

2016 IEEE Spoken Language Technology Workshop (SLT)Published 2016-12-01Paper link

Authors: Mirco Ravanelli · Philemon Brakel · Maurizio Omologo · Yoshua Bengio

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