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facebook_wav2vec2-xls-r-300m

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language:

  • multilingual
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  • vot
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  • yo
  • zu language_bcp47:
  • zh-HK
  • zh-TW
  • fy-NL datasets:
  • common_voice
  • multilingual_librispeech tags:
  • speech
  • xls_r
  • xls_r_pretrained license: apache-2.0

Wav2Vec2-XLS-R-300M

Facebook's Wav2Vec2 XLS-R counting 300 million parameters.

XLS-R is Facebook AI's large-scale multilingual pretrained model for speech (the "XLM-R for Speech"). It is pretrained on 436k hours of unlabeled speech, including VoxPopuli, MLS, CommonVoice, BABEL, and VoxLingua107. It uses the wav2vec 2.0 objective, in 128 languages. When using the model make sure that your speech input is sampled at 16kHz.

Note: This model should be fine-tuned on a downstream task, like Automatic Speech Recognition, Translation, or Classification. Check out this blog for more information about ASR.

XLS-R Paper

Authors: Arun Babu, Changhan Wang, Andros Tjandra, Kushal Lakhotia, Qiantong Xu, Naman Goyal, Kritika Singh, Patrick von Platen, Yatharth Saraf, Juan Pino, Alexei Baevski, Alexis Conneau, Michael Auli

Abstract This paper presents XLS-R, a large-scale model for cross-lingual speech representation learning based on wav2vec 2.0. We train models with up to 2B parameters on 436K hours of publicly available speech audio in 128 languages, an order of magnitude more public data than the largest known prior work. Our evaluation covers a wide range of tasks, domains, data regimes and languages, both high and low-resource. On the CoVoST-2 speech translation benchmark, we improve the previous state of the art by an average of 7.4 BLEU over 21 translation directions into English. For speech recognition, XLS-R improves over the best known prior work on BABEL, MLS, CommonVoice as well as VoxPopuli, lowering error rates by 20%-33% relative on average. XLS-R also sets a new state of the art on VoxLingua107 language identification. Moreover, we show that with sufficient model size, cross-lingual pretraining can outperform English-only pretraining when translating English speech into other languages, a setting which favors monolingual pretraining. We hope XLS-R can help to improve speech processing tasks for many more languages of the world.

The original model can be found under https://github.com/pytorch/fairseq/tree/master/examples/wav2vec#wav2vec-20.

Usage

See this google colab for more information on how to fine-tune the model.

You can find other pretrained XLS-R models with different numbers of parameters:

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Files & hashes

PathSizesha1sha256
README.md3.6 KB (3,735 B)c337307aa03692b9444f94414fa28df9e95425e7eefcc8bd0709b1acc42f4b16000148fe445531db0eece77212cc09c20f54a320
config.json1.5 KB (1,568 B)2e7517d6705d22aef2fa4fd0bcc83b47f4757bd30bffa0d0e98153e883b828d86491f3c6062cb563dc9d7a9cfd1790da30c286ac
preprocessor_config.json212 B (212 B)36ebe8b7c1cc967b3059f0494ae8a1069dd67655a2254a5b58f72cd4de3632f8eee64f3f098b7c1402128d2f419e7d00ae13e335
pytorch_model.bin1.18 GB (1,269,737,156 B)2e165782939d399482eb072863e5a913a4699b2fd5e490574712ad0a6736923b9ed11d4cd51c78609c36205f704fc4e87b11d2e0

Cite this release

Canonical URL
https://aiseedbank.org/models/facebook_wav2vec2-xls-r-300m/
Slug
facebook_wav2vec2-xls-r-300m
Infohash
4ff872311a04d847dee7479ed49f4804fd4ca2f6
License
apache-2.0
Signing key fingerprint
85a3b32c3712427b

Every file carries a locally computed sha256 — verify a download against the signed sums: facebook_wav2vec2-xls-r-300m.SHA256SUMS (+ minisign signature).

Provenance

Upstream repositoryfacebook/wav2vec2-xls-r-300m
Revision (pinned)1a640f32ac3e39899438a2931f9924c02f080a54
Fetched at2026-09-03T22:58:29Z
License at fetchapache-2.0
Snapshot toolhuggingface · seedbank 0.1.0

Trackers

✓ verified · rehash-vs-hf-metadata at 2026-09-03T22:58:41Z

apache-2.01.18 GB (1,269,742,671 bytes)transformerspytorchwav2vec2pretrainingspeechxls_rxls_r_pretrainedmultilingualyuecebcnhhawsahscohsbvotwarendpoints_compatible115 languages (ab, af, sq …)paper: 2111.09296