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IMS' Systems for the IWSLT 2021 Low-Resource Speech Translation Task

Domaine:

natural language processing

Type de record:

paper
Créateur:
DenMagVu,
Hôte:avatar
This paper describes the submission to the IWSLT 2021 Low-Resource Speech Translation Shared Task by IMS team. We utilize state-of-the-art models combined with several data augmentation, multi-task and transfer learning approaches for the automatic speech recognition (ASR) and machine translation (MT) steps of our cascaded system. Moreover, we also explore the feasibility of a full end-to-end speech translation (ST) model in the case of very constrained amount of ground truth labeled data. Our best system achieves the best performance among all submitted systems for Congolese Swahili to English and French with BLEU scores 7.7 and 13.7 respectively, and the second best result for Coastal Swahili to English with BLEU score 14.9. IWSLT 2021

Visit

arxiv.org

Tasks

automatic speech recognitionmachine translationspeech processingspeech translation

Languages

Swahili

Tags

Computation and LanguageSoundAudio and Speech Processing

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