Repository containing the open source code of works published at the FBK MT unit.
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Updated
Jul 1, 2024 - Python
Repository containing the open source code of works published at the FBK MT unit.
StreamSpeech is an “All in One” seamless model for offline and simultaneous speech recognition, speech translation and speech synthesis.
A fast speech-to-any translation model that supports simultaneous decoding and offers 28× speedup.
Paper list of simultaneous translation / streaming translation, including text-to-text machine translation and speech-to-text translation.
Source code for ICLR 2023 spotlight paper "Hidden Markov Transformer for Simultaneous Machine Translation"
Source code for ACL 2023 paper "End-to-End Simultaneous Speech Translation with Differentiable Segmentation"
Official implementation for EMNLP 2023 paper "Non-autoregressive Streaming Transformer for Simultaneous Translation"
Code for the INTERSPEECH 2023 paper "Learning When to Speak: Latency and Quality Trade-offs for Simultaneous Speech-to-Speech Translation with Offline Models"
Code for EMNLP 2022 main conference paper "Information-Transport-based Policy for Simultaneous Translation"
Source code for our EMNLP 2022 paper "Wait-info Policy: Balancing Source and Target at Information Level for Simultaneous Machine Translation"
PyTorch toolkit for streaming speech recognition, speech translation and simultaneous translation based on fairseq.
Implementation of the paper "Anticipation-Free Training for Simultaneous Machine Translation"
Code for EMNLP 2021 oral paper "Universal Simultaneous Machine Translation with Mixture-of-Experts Wait-k Policy"
Code for ACL 2022 main conference paper "Modeling Dual Read/Write Paths for Simultaneous Machine Translation"
Code for ACL 2022 findings paper "Gaussian Multi-head Attention for Simultaneous Machine Translation"
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