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LLaST: Improved End-to-end Speech Translation System Leveraged by Large Language Models (2407.15415v1)

Published 22 Jul 2024 in cs.CL

Abstract: We introduces LLaST, a framework for building high-performance LLM based Speech-to-text Translation systems. We address the limitations of end-to-end speech translation(E2E ST) models by exploring model architecture design and optimization techniques tailored for LLMs. Our approach includes LLM-based speech translation architecture design, ASR-augmented training, multilingual data augmentation, and dual-LoRA optimization. Our approach demonstrates superior performance on the CoVoST-2 benchmark and showcases exceptional scaling capabilities powered by LLMs. We believe this effective method will serve as a strong baseline for speech translation and provide insights for future improvements of the LLM-based speech translation framework. We release the data, code and models in https://github.com/openaudiolab/LLaST.

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Authors (5)
  1. Xi Chen (1035 papers)
  2. Songyang Zhang (116 papers)
  3. Qibing Bai (6 papers)
  4. Kai Chen (512 papers)
  5. Satoshi Nakamura (94 papers)
Citations (4)