mirror of
https://github.com/modelscope/FunASR
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| .. | ||
| modelscope_utils | ||
| paraformer_large_infer.sh | ||
| path.sh | ||
| README.md | ||
| RESULTS.md | ||
| utils | ||
ModelScope: Paraformer-large Model
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ModelScope: Paraformer-Large Model
- Fast: Non-autoregressive (NAR) model, the Paraformer can achieve comparable performance to the state-of-the-art AR transformer, with more than 10x speedup.
- Accurate: SOTA in a lot of public ASR tasks, with a very significant relative improvement, capable of industrial implementation.
- Convenient: Quickly and easily download Paraformer-large from Modelscope for finetuning and inference.
- Support finetuning and inference on AISHELL-1 and AISHELL-2.
- Support inference on AISHELL-1, AISHELL-2, Wenetspeech, SpeechIO and other audio.
How to infer using a pretrained ModelScope Paraformer-large Model
Inference
- Setting parameters in
paraformer_large_infer.sh- ori_data: please set the speechio raw data path
- data_dir: data output dictionary
- exp_dir: the result path
- model_name: speech_paraformer-large_asr_nat-zh-cn-16k-common-vocab8404-pytorch # base model, download from modelscope
- test_sets: please set the testsets name
- Then you can run the pipeline to infer with:
sh ./paraformer_large_infer.sh