Vietnamese Self-Supervised Learning Wav2Vec2 model
Model
We use wav2vec2 architecture for doing Self-Supervised learning
Data
Our self-supervised model is pre-trained on a massive audio set of 13k hours of Vietnamese youtube audio, which includes:
Clean audio
Noise audio
Conversation
Multi-gender and dialects
Download
We have already upload our pre-trained model to the Huggingface. The base model trained 35 epochs and the large model trained 20 epochs in about 30 days using TPU V3-8.
from transformers import Wav2Vec2ForPreTraining, Wav2Vec2Processor
model_name = 'nguyenvulebinh/wav2vec2-base-vi'# model_name = 'nguyenvulebinh/wav2vec2-large-vi'
model = Wav2Vec2ForPreTraining.from_pretrained(model_name)
processor = Wav2Vec2Processor.from_pretrained(model_name)
Since our model has the same architecture as the English wav2vec2 version, you can use
this notebook
for more information on how to fine-tune the model.
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