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Textless Speech-to-Speech Translation on Real Data

About

We present a textless speech-to-speech translation (S2ST) system that can translate speech from one language into another language and can be built without the need of any text data. Different from existing work in the literature, we tackle the challenge in modeling multi-speaker target speech and train the systems with real-world S2ST data. The key to our approach is a self-supervised unit-based speech normalization technique, which finetunes a pre-trained speech encoder with paired audios from multiple speakers and a single reference speaker to reduce the variations due to accents, while preserving the lexical content. With only 10 minutes of paired data for speech normalization, we obtain on average 3.2 BLEU gain when training the S2ST model on the VoxPopuli S2ST dataset, compared to a baseline trained on un-normalized speech target. We also incorporate automatically mined S2ST data and show an additional 2.0 BLEU gain. To our knowledge, we are the first to establish a textless S2ST technique that can be trained with real-world data and works for multiple language pairs. Audio samples are available at https://facebookresearch.github.io/speech_translation/textless_s2st_real_data/index.html .

Ann Lee, Hongyu Gong, Paul-Ambroise Duquenne, Holger Schwenk, Peng-Jen Chen, Changhan Wang, Sravya Popuri, Yossi Adi, Juan Pino, Jiatao Gu, Wei-Ning Hsu• 2021

Related benchmarks

TaskDatasetResultRank
Automatic Speech RecognitionML-SUPERB 10-min Normal
CER36.5
26
Language IdentificationML-SUPERB 10-min Normal
LID Accuracy81.9
18
Speech-to-speech translationVoxPopuli Es-En (test)
BLEU19.4
11
Speech-to-speech translationVoxPopuli Fr-En (test)
BLEU Score20.3
11
Speech-to-speech translationVoxPopuli En-Es (test)
BLEU23
11
Speech-to-speech translationVoxPopuli En-Fr (test)
BLEU Score18.9
11
Language IdentificationML-SUPERB 1hr Normal
Accuracy87.7
10
Speaker VerificationVoxCeleb 10min context Normal
EER2.19
10
Speaker VerificationVoxCeleb 1hr context Normal
EER0.0219
10
Automatic Speech RecognitionML-SUPERB 1hr Normal
CER30.9
10
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