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---
license: apache-2.0
datasets:
  - doof-ferb/vlsp2020_vinai_100h
  - doof-ferb/fpt_fosd
  - doof-ferb/infore1_25hours
  - doof-ferb/infore2_audiobooks
  - quocanh34/viet_vlsp
  - linhtran92/final_dataset_500hrs_wer0
  - linhtran92/viet_youtube_asr_corpus_v2
  - google/fleurs
  - mozilla-foundation/common_voice_16_1
  - vivos
language: ["vi"]
metrics: ["wer"]
library_name: transformers
base_model: openai/whisper-tiny
pipeline_tag: automatic-speech-recognition
model-index:
- name: doof-ferb/whisper-tiny-vi
  results:
  - task:
      type: automatic-speech-recognition
    dataset:
      type: mozilla-foundation/common_voice_16_1
      name: Mozilla CommonVoice (Vietnamese) v16.1
      config: vi
      split: test
    metrics:
      - type: wer
        value: 26.6
        verified: false
  - task:
      type: automatic-speech-recognition
    dataset:
      type: google/fleurs
      name: Google FLEURS (Vietnamese)
      config: vi_vn
      split: test
    metrics:
      - type: wer
        value: 37.1
        verified: false
  - task:
      type: automatic-speech-recognition
    dataset:
      type: vivos
      name: ĐHQG TPHCM VIVOS
      split: test
    metrics:
      - type: wer
        value: 18.7
        verified: false
---

whisper tiny fine-tuned on a very big collection of vietnamese speech datasets

TODO:
- [x] training then publish checkpoint (*no ETA*)
- [x] evaluate WER on Common Voice & FLEURS
- [ ] convert to `openai-whisper`, `whisper.cpp`, `faster-whisper`
- [ ] convert to ONNX: to try `k2-fsa/sherpa-onnx` & `zhuzilin/whisper-openvino`

21k steps, warm-up 5%, batch size 16×2 (kaggle free T4×2)

all training + evaluation scripts are on my repo: https://github.com/phineas-pta/fine-tune-whisper-vi