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  1. README.md +131 -0
  2. config.json +69 -0
  3. example.mp3 +0 -0
  4. hyperparams.yaml +90 -0
  5. preprocessor_config.json +8 -0
README.md CHANGED
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  ---
 
 
 
 
 
 
 
 
 
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  license: apache-2.0
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ---
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ---
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+ language:
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+ - en
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+ thumbnail: null
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+ pipeline_tag: automatic-speech-recognition
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+ tags:
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+ - CTC
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+ - pytorch
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+ - speechbrain
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+ - Transformer
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  license: apache-2.0
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+ datasets:
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+ - commonvoice.14.0
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+ metrics:
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+ - wer
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+ - cer
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+ model-index:
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+ - name: asr-wav2vec2-commonvoice-14-en
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+ results:
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+ - task:
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+ name: Automatic Speech Recognition
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+ type: automatic-speech-recognition
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+ dataset:
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+ name: CommonVoice Corpus 14.0 (English)
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+ type: mozilla-foundation/common_voice_14.0
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+ config: en
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+ split: test
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+ args:
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+ language: en
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+ metrics:
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+ - name: Test WER
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+ type: wer
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+ value: '16.68'
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  ---
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+
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+ <iframe src="https://ghbtns.com/github-btn.html?user=speechbrain&repo=speechbrain&type=star&count=true&size=large&v=2" frameborder="0" scrolling="0" width="170" height="30" title="GitHub"></iframe>
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+ <br/><br/>
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+
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+ # wav2vec 2.0 with CTC trained on CommonVoice English (No LM)
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+
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+ This repository provides all the necessary tools to perform automatic speech
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+ recognition from an end-to-end system pretrained on CommonVoice (English Language) within
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+ SpeechBrain. For a better experience, we encourage you to learn more about
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+ [SpeechBrain](https://speechbrain.github.io).
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+
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+ The performance of the model is the following:
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+
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+ | Release | Test CER | Test WER | GPUs |
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+ |:-------------:|:--------------:|:--------------:| :--------:|
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+ | 15-08-23 | 7.92 | 16.86 | 1xV100 32GB |
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+
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+ ## Pipeline description
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+
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+ This ASR system is composed of 2 different but linked blocks:
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+ - Tokenizer (unigram) that transforms words into unigrams and trained with
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+ the train transcriptions (train.tsv) of CommonVoice (en).
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+ - Acoustic model (wav2vec2.0 + CTC). A pretrained wav2vec 2.0 model ([wav2vec2-large-lv60](https://huggingface.co/facebook/wav2vec2-large-lv60)) is combined with two DNN layers and finetuned on CommonVoice DE.
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+ The obtained final acoustic representation is given to the CTC decoder.
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+
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+ The system is trained with recordings sampled at 16kHz (single channel).
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+ The code will automatically normalize your audio (i.e., resampling + mono channel selection) when calling *transcribe_file* if needed.
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+
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+ ## Install SpeechBrain
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+
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+ First of all, please install tranformers and SpeechBrain with the following command:
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+
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+ ```
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+ pip install speechbrain transformers
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+ ```
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+
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+ Please notice that we encourage you to read our tutorials and learn more about
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+ [SpeechBrain](https://speechbrain.github.io).
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+
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+ ### Transcribing your own audio files (in English)
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+
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+ ```python
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+ from speechbrain.pretrained import EncoderASR
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+
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+ asr_model = EncoderASR.from_hparams(source="speechbrain/asr-wav2vec2-commonvoice-14-en", savedir="pretrained_models/asr-wav2vec2-commonvoice-14-en")
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+ asr_model.transcribe_file("speechbrain/asr-wav2vec2-commonvoice-14-en/example-en.wav")
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+
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+ ```
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+ ### Inference on GPU
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+ To perform inference on the GPU, add `run_opts={"device":"cuda"}` when calling the `from_hparams` method.
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+
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+ ## Parallel Inference on a Batch
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+ Please, [see this Colab notebook](https://colab.research.google.com/drive/1hX5ZI9S4jHIjahFCZnhwwQmFoGAi3tmu?usp=sharing) to figure out how to transcribe in parallel a batch of input sentences using a pre-trained model.
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+
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+ ### Training
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+ The model was trained with SpeechBrain.
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+ To train it from scratch follow these steps:
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+ 1. Clone SpeechBrain:
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+ ```bash
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+ git clone https://github.com/speechbrain/speechbrain/
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+ ```
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+ 2. Install it:
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+ ```bash
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+ cd speechbrain
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+ pip install -r requirements.txt
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+ pip install -e .
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+ ```
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+
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+ 3. Run Training:
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+ ```bash
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+ cd recipes/CommonVoice/ASR/CTC/
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+ python train_with_wav2vec.py hparams/train_en_with_wav2vec.yaml --data_folder=your_data_folder
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+ ```
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+
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+ You can find our training results (models, logs, etc) [here](https://www.dropbox.com/sh/ch10cnbhf1faz3w/AACdHFG65LC6582H0Tet_glTa?dl=0).
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+
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+ ### Limitations
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+ The SpeechBrain team does not provide any warranty on the performance achieved by this model when used on other datasets.
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+
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+
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+ # **About SpeechBrain**
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+ - Website: https://speechbrain.github.io/
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+ - Code: https://github.com/speechbrain/speechbrain/
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+ - HuggingFace: https://huggingface.co/speechbrain/
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+
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+
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+ # **Citing SpeechBrain**
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+ Please, cite SpeechBrain if you use it for your research or business.
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+
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+ ```bibtex
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+ @misc{speechbrain,
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+ title={{SpeechBrain}: A General-Purpose Speech Toolkit},
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+ author={Mirco Ravanelli and Titouan Parcollet and Peter Plantinga and Aku Rouhe and Samuele Cornell and Loren Lugosch and Cem Subakan and Nauman Dawalatabad and Abdelwahab Heba and Jianyuan Zhong and Ju-Chieh Chou and Sung-Lin Yeh and Szu-Wei Fu and Chien-Feng Liao and Elena Rastorgueva and François Grondin and William Aris and Hwidong Na and Yan Gao and Renato De Mori and Yoshua Bengio},
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+ year={2021},
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+ eprint={2106.04624},
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+ archivePrefix={arXiv},
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+ primaryClass={eess.AS},
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+ note={arXiv:2106.04624}
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+ }
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+ ```
config.json ADDED
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+ {
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+ "speechbrain_interface": "EncoderASR",
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+ "activation_dropout": 0.1,
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+ "apply_spec_augment": true,
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+ "architectures": [
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+ "Wav2Vec2Model"
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+ ],
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+ "attention_dropout": 0.1,
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+ "bos_token_id": 1,
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+ "conv_bias": true,
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+ "conv_dim": [
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+ 512,
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+ 512,
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+ 512,
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+ 512,
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+ 512,
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+ 512,
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+ 512
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+ ],
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+ "conv_kernel": [
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+ 10,
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+ 3,
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+ 3,
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+ 3,
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+ 3,
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+ 2,
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+ 2
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+ ],
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+ "conv_stride": [
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+ 5,
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+ 2,
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+ 2,
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+ 2,
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+ 2,
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+ 2,
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+ 2
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+ ],
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+ "ctc_loss_reduction": "sum",
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+ "ctc_zero_infinity": false,
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+ "do_stable_layer_norm": true,
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+ "eos_token_id": 2,
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+ "feat_extract_activation": "gelu",
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+ "feat_extract_dropout": 0.0,
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+ "feat_extract_norm": "layer",
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+ "feat_proj_dropout": 0.1,
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+ "final_dropout": 0.1,
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+ "gradient_checkpointing": false,
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+ "hidden_act": "gelu",
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+ "hidden_dropout": 0.1,
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+ "hidden_dropout_prob": 0.1,
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+ "hidden_size": 1024,
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+ "initializer_range": 0.02,
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+ "intermediate_size": 4096,
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+ "layer_norm_eps": 1e-05,
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+ "layerdrop": 0.1,
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+ "mask_feature_length": 10,
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+ "mask_feature_prob": 0.0,
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+ "mask_time_length": 10,
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+ "mask_time_prob": 0.05,
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+ "model_type": "wav2vec2",
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+ "num_attention_heads": 16,
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+ "num_conv_pos_embedding_groups": 16,
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+ "num_conv_pos_embeddings": 128,
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+ "num_feat_extract_layers": 7,
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+ "num_hidden_layers": 24,
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+ "pad_token_id": 0,
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+ "transformers_version": "4.21.1",
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+ "vocab_size": 32
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+ }
example.mp3 ADDED
Binary file (63.2 kB). View file
 
hyperparams.yaml ADDED
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+ # ################################
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+ # Model: wav2vec2 + DNN + CTC
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+ # Augmentation: SpecAugment
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+ # Authors:
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+ # Sung-Lin Yeh 2021
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+ # Pooneh Mousavi 2023
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+ # ################################
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+
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+ # BPE parameters
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+ token_type: unigram # ["unigram", "bpe", "char"]
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+ character_coverage: 1.0
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+
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+ # Model parameters
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+ # activation: !name:torch.nn.LeakyReLU
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+ dnn_neurons: 1024
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+ wav2vec_output_dim: 1024
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+ dropout: 0.15
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+
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+ sample_rate: 16000
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+
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+ wav2vec2_hub: facebook/wav2vec2-large-lv60
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+
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+ # Outputs
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+ output_neurons: 1000 # BPE size, index(blank/eos/bos) = 0
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+
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+ # Decoding parameters
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+ # Be sure that the bos and eos index match with the BPEs ones
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+ blank_index: 0
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+ bos_index: 1
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+ eos_index: 2
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+
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+ enc: !new:speechbrain.nnet.containers.Sequential
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+ input_shape: [null, null, !ref <wav2vec_output_dim>]
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+ linear1: !name:speechbrain.nnet.linear.Linear
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+ n_neurons: !ref <dnn_neurons>
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+ bias: True
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+ bn1: !name:speechbrain.nnet.normalization.BatchNorm1d
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+ activation: !new:torch.nn.LeakyReLU
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+ drop: !new:torch.nn.Dropout
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+ p: !ref <dropout>
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+ linear2: !name:speechbrain.nnet.linear.Linear
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+ n_neurons: !ref <dnn_neurons>
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+ bias: True
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+ bn2: !name:speechbrain.nnet.normalization.BatchNorm1d
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+ activation2: !new:torch.nn.LeakyReLU
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+ drop2: !new:torch.nn.Dropout
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+ p: !ref <dropout>
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+ linear3: !name:speechbrain.nnet.linear.Linear
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+ n_neurons: !ref <dnn_neurons>
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+ bias: True
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+ bn3: !name:speechbrain.nnet.normalization.BatchNorm1d
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+ activation3: !new:torch.nn.LeakyReLU
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+
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+ wav2vec2: !new:speechbrain.lobes.models.huggingface_wav2vec.HuggingFaceWav2Vec2
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+ source: !ref <wav2vec2_hub>
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+ output_norm: True
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+ freeze: True
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+ save_path: wav2vec2_checkpoint
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+
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+ ctc_lin: !new:speechbrain.nnet.linear.Linear
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+ input_size: !ref <dnn_neurons>
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+ n_neurons: !ref <output_neurons>
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+
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+ log_softmax: !new:speechbrain.nnet.activations.Softmax
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+ apply_log: True
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+
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+ ctc_cost: !name:speechbrain.nnet.losses.ctc_loss
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+ blank_index: !ref <blank_index>
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+
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+ asr_model: !new:torch.nn.ModuleList
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+ - [!ref <enc>, !ref <ctc_lin>]
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+
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+ tokenizer: !new:sentencepiece.SentencePieceProcessor
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+
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+ encoder: !new:speechbrain.nnet.containers.LengthsCapableSequential
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+ wav2vec2: !ref <wav2vec2>
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+ enc: !ref <enc>
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+ ctc_lin: !ref <ctc_lin>
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+
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+ modules:
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+ encoder: !ref <encoder>
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+
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+ decoding_function: !name:speechbrain.decoders.ctc_greedy_decode
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+ blank_id: !ref <blank_index>
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+
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+ pretrainer: !new:speechbrain.utils.parameter_transfer.Pretrainer
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+ loadables:
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+ wav2vec2: !ref <wav2vec2>
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+ asr: !ref <asr_model>
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+ tokenizer: !ref <tokenizer>
preprocessor_config.json ADDED
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+ {
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+ "do_normalize": true,
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+ "feature_size": 1,
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+ "padding_side": "right",
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+ "padding_value": 0.0,
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+ "return_attention_mask": true,
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+ "sampling_rate": 16000
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+ }