Hendrik Pesch
2018
Neural Speech Translation at AppTek
Evgeny Matusov
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Patrick Wilken
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Parnia Bahar
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Julian Schamper
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Pavel Golik
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Albert Zeyer
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Joan Albert Silvestre-Cerda
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Adrià Martínez-Villaronga
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Hendrik Pesch
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Jan-Thorsten Peter
Proceedings of the 15th International Conference on Spoken Language Translation
This work describes AppTek’s speech translation pipeline that includes strong state-of-the-art automatic speech recognition (ASR) and neural machine translation (NMT) components. We show how these components can be tightly coupled by encoding ASR confusion networks, as well as ASR-like noise adaptation, vocabulary normalization, and implicit punctuation prediction during translation. In another experimental setup, we propose a direct speech translation approach that can be scaled to translation tasks with large amounts of text-only parallel training data but a limited number of hours of recorded and human-translated speech.
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Co-authors
- Evgeny Matusov 1
- Patrick Wilken 1
- Parnia Bahar 1
- Julian Schamper 1
- Pavel Golik 1
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