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The NiuTrans End-to-End Speech Translation System for IWSLT 2021 Offline Task (2107.02444v2)

Published 6 Jul 2021 in cs.CL

Abstract: This paper describes the submission of the NiuTrans end-to-end speech translation system for the IWSLT 2021 offline task, which translates from the English audio to German text directly without intermediate transcription. We use the Transformer-based model architecture and enhance it by Conformer, relative position encoding, and stacked acoustic and textual encoding. To augment the training data, the English transcriptions are translated to German translations. Finally, we employ ensemble decoding to integrate the predictions from several models trained with the different datasets. Combining these techniques, we achieve 33.84 BLEU points on the MuST-C En-De test set, which shows the enormous potential of the end-to-end model.

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Authors (7)
  1. Chen Xu (186 papers)
  2. Xiaoqian Liu (24 papers)
  3. Xiaowen Liu (12 papers)
  4. Laohu Wang (2 papers)
  5. Canan Huang (3 papers)
  6. Tong Xiao (119 papers)
  7. Jingbo Zhu (79 papers)
Citations (5)

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