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Add checkpoints

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README.md ADDED
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+ ---
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+ language: pt
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+ datasets:
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+ - Common Voice
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+ metrics:
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+ - wer
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+ tags:
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+ - audio
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+ - speech
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+ - wav2vec2
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+ - pt
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+ - Russian-speech-corpus
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+ - automatic-speech-recognition
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+ - speech
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+ - PyTorch
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+ license: apache-2.0
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+ model-index:
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+ - name: Edresson Casanova Wav2vec2 Large 100k Voxpopuli fine-tuned in Russian using the Common Voice 7.0, MAILABS plus data augmentation
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+ results:
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+ - task:
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+ name: Speech Recognition
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+ type: automatic-speech-recognition
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+ metrics:
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+ - name: Test Common Voice 7.0 WER
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+ type: wer
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+ value: 19.46
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+ ---
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+
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+ # Wav2vec2 Large 100k Voxpopuli fine-tuned in Russian using the Common Voice 7.0, MAILABS plus data augmentation
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+
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+ [Wav2vec2 Large 100k Voxpopuli](https://huggingface.co/facebook/wav2vec2-large-100k-voxpopuli) Wav2vec2 Large 100k Voxpopuli fine-tuned in Russian using the Common Voice 7.0, M-AILABS plus data augmentation method based on TTS and voice conversion.
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+
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+
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+
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+ # Use this model
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+
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+ ```python
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+
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+ from transformers import AutoTokenizer, Wav2Vec2ForCTC
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+
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+ tokenizer = AutoTokenizer.from_pretrained("Edresson/wav2vec2-large-100k-voxpopuli-ft-Common_Voice_plus_TTS-Dataset_plus_Data_Augmentation-russian")
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+
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+ model = Wav2Vec2ForCTC.from_pretrained("Edresson/wav2vec2-large-100k-voxpopuli-ft-Common_Voice_plus_TTS-Dataset_plus_Data_Augmentation-russian")
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+ ```
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+ # Results
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+ For the results check the [article (Soon)]()
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+
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+ # Example test with Common Voice Dataset
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+
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+
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+ ```python
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+ dataset = load_dataset("common_voice", "pt", split="test", data_dir="./cv-corpus-7.0-2021-07-21")
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+
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+ resampler = torchaudio.transforms.Resample(orig_freq=48_000, new_freq=16_000)
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+
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+ def map_to_array(batch):
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+ speech, _ = torchaudio.load(batch["path"])
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+ batch["speech"] = resampler.forward(speech.squeeze(0)).numpy()
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+ batch["sampling_rate"] = resampler.new_freq
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+ batch["sentence"] = re.sub(chars_to_ignore_regex, '', batch["sentence"]).lower().replace("’", "'")
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+ return batch
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+ ```
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+
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+ ```python
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+ ds = dataset.map(map_to_array)
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+ result = ds.map(map_to_pred, batched=True, batch_size=1, remove_columns=list(ds.features.keys()))
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+ print(wer.compute(predictions=result["predicted"], references=result["target"]))
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+ ```
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+
all_results.json ADDED
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+ {
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+ "epoch": 73.0,
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+ "eval_loss": 0.3584013879299164,
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+ "eval_runtime": 316.7442,
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+ "eval_samples": 8422,
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+ "eval_samples_per_second": 26.589,
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+ "eval_wer": 0.3019012195279999,
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+ "train_runtime": 465541.7438,
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+ "train_samples": 81775,
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+ "train_samples_per_second": 0.091
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+ }
config.json ADDED
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+ {
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+ "_name_or_path": "facebook/wav2vec2-large-100k-voxpopuli",
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+ "activation_dropout": 0.0,
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+ "apply_spec_augment": true,
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+ "architectures": [
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+ "Wav2Vec2ForCTC"
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+ ],
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+ "attention_dropout": 0.1,
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+ "bos_token_id": 1,
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+ "codevector_dim": 768,
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+ "contrastive_logits_temperature": 0.1,
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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": "mean",
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+ "ctc_zero_infinity": true,
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+ "diversity_loss_weight": 0.1,
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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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+ "feat_quantizer_dropout": 0.0,
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+ "final_dropout": 0.0,
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+ "gradient_checkpointing": true,
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+ "hidden_act": "gelu",
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+ "hidden_dropout": 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": 0.0,
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+ "mask_channel_length": 10,
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+ "mask_channel_min_space": 1,
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+ "mask_channel_other": 0.0,
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+ "mask_channel_prob": 0.0,
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+ "mask_channel_selection": "static",
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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_min_space": 1,
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+ "mask_time_other": 0.0,
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+ "mask_time_prob": 0.05,
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+ "mask_time_selection": "static",
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+ "model_type": "wav2vec2",
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+ "num_attention_heads": 16,
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+ "num_codevector_groups": 2,
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+ "num_codevectors_per_group": 320,
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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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+ "num_negatives": 100,
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+ "pad_token_id": 0,
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+ "proj_codevector_dim": 768,
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+ "transformers_version": "4.6.1",
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+ "vocab_size": 39
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+ }
config_train.json ADDED
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+ {
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+ "run_name": "Wav2Vec-fine-tuning-TEDx",
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+ "run_description": "Fine tuning TEDx",
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+ "seed": 42,
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+ // AUDIO PARAMS
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+ "sampling_rate": 16000,
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+
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+ // VOCABULARY PARAMETERS
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+ "vocab":{
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+ "vocab_path": "example/vocab_example_ru.json", // generic vocab for Portuguese
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+ "blank": "<pad>", // blank token for padding
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+ "silence": "|", // token between words
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+ "unk": "<unk>" // unk token
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+ },
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+
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+ // TRAINING
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+ "batch_size": 8, // Batch size for training.
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+ "mixed_precision": true, // level of optimization with NVIDIA's apex feature for automatic mixed FP16/FP32 precision (AMP), NOTE: currently only O1 is supported, and use "O1" to activate.
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+ "early_stop_epochs": 10, // If 0 disabled else Number of epochs for stop training with validation loss dont decrease
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+ "preprocess_dataset": false, // if true, the dataset will be pre-processed and saved in disk, otherwise the audio files will be loaded in each step. Preprocessing makes training faster, but requires much more disk space.
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+
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+ // OPTIMIZER
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+ "epochs": 100, // total number of epochs to train.
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+ "lr": 0.00003, // Initial learning rate.
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+ "gradient_accumulation_steps": 24,
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+
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+ // LOGGING
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+ "logging_steps": 100, // Number of steps to plot.
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+ "load_best_model_at_end": true,
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+ "save_total_limit": 3,
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+ "warmup_ratio": 0.04761904762142857, // 0 disable Ratio of total training steps used for a linear warmup from 0 to learning_rate
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+ "warmup_steps": 0, // 0 disable Number of steps used for a linear warmup from 0 to learning_rate
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+
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+ // DATA LOADING
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+ "num_loader_workers": 8, // number of training data loader processes. Don't set it too big. 4-8 are goo
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+
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+ // MODEL
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+ "freeze_feature_extractor": true, // Whether to freeze the feature extractor layers of the model.
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+ "attention_dropout": 0.1, // The dropout ratio for the attention probabilities.
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+ "activation_dropout": 0.1, // The dropout ratio for activations inside the fully connected layer.
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+ "hidden_dropout": 0.1, // The dropout probabilitiy for all fully connected layers in the embeddings, encoder, and pooler.
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+ "feat_proj_dropout": 0.1, // The dropout probabilitiy for all 1D convolutional layers in feature extractor.
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+ "mask_time_prob": 0.05, // Propability of each feature vector along the time axis to be chosen as the start of the vector span to be masked.
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+ "layerdrop": 0.0, // The LayerDrop probability.
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+ "gradient_checkpointing": true, // If True, use gradient checkpointing to save memory at the expense of slower backward pass.
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+
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+ // ToDo: Implement Time mask and Frequency Mask
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+ "audio_augmentation":[
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+ // additive noise and room impulse response (RIR) simulation similar to: https://arxiv.org/pdf/2009.14153.pdf
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+ {
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+ "name": "additive",
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+ "sounds_path":"../../datasets/musan/speech/", // download: https://www.openslr.org/17/
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+ "lru_cache_size": 32, // Maximum size of the LRU cache for storing noise files in memory
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+ "min_snr_in_db": 13.0,
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+ "max_snr_in_db": 20.0,
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+ // "sample_rate": 16000,
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+ "p": 0.25
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+ },
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+ {
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+ "name": "additive",
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+ "sounds_path":"../../datasets/musan/music/", // download: https://www.openslr.org/17/
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+ "lru_cache_size": 32, // Maximum size of the LRU cache for storing noise files in memory
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+ "min_snr_in_db": 5.0,
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+ "max_snr_in_db": 15.0,
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+ // "sample_rate": 16000,
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+ "p": 0.25
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+ },
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+ {
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+ "name": "additive",
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+ "sounds_path":"../../datasets/musan/noise/", // download: https://www.openslr.org/17/
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+ "lru_cache_size": 32, // Maximum size of the LRU cache for storing noise files in memory
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+ "min_snr_in_db": 0.0,
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+ "max_snr_in_db": 15.0,
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+ // "sample_rate": 16000,
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+ "p": 0.25
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+ },
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+ // rir filter proposed by: https://ieeexplore.ieee.org/document/7953152
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+ {
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+ "name": "rir",
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+ "ir_path": "../../datasets/RIRS_NOISES/simulated_rirs/", // download: https://www.openslr.org/28/
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+ "lru_cache_size": 128, // Maximum size of the LRU cache for storing noise files in memory
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+ // "sample_rate": 16000,
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+ "p": 0.25
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+ }
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+ ,
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+ // {
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+ // "name": "gain",
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+ // "min_gain_in_db": -18.0,
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+ // "max_gain_in_db": 6,
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+ // "p": 0.25 // propability of apply this method, 0 is disable
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+ // },
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+ {
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+ "name": "pitch_shift",
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+ "min_semitones": -4,
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+ "max_semitones": 4,
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+ "p": 0.25 // propability of apply this method, 0 is disable
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+ },
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+ {
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+ "name": "gaussian",
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+ "min_amplitude": 0.0001,
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+ "max_amplitude": 0.001,
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+ "p": 0.25 // propability of apply this method, 0 is disable
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+ }
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+ ],
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+
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+ // PATHS
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+ "output_path": "../checkpoints/Wav2Vec-voxpopuli/one-speaker/Final-paper/GT+GEN-dxg1/RU/100-epoch/",
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+ // CACHE
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+ "dataset_cache": "../datasets/",
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+
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+ // DATASETS
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+ "datasets":{
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+
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+ "files_path": "/workspace/edresson/datasets/Common_Voice/cv-corpus-7.0-2021-07-21/ru/", // relative path for audios It's will be join with the CS
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+ "train":
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+ [
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+ // this dicts is pass directly for the load dataset see the documentation: https://huggingface.co/docs/datasets/package_reference/loading_methods.html#datasets.load_dataset
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/Common_Voice/cv-corpus-7.0-2021-07-21/ru/train_converted.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ },
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/M-AILABS/ru_RU/train_converted.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ },
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/Common_Voice/cv-corpus-7.0-2021-07-21/ru/train_converted_copy_generated_en_speakers.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ },
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/M-AILABS/ru_RU/train_converted_copy_generated_VC_en_speakers_5_speakers_per_text_fixed.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ },
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/M-AILABS/ru_RU/train_converted.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ }
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+ ]
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+ ,
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+ "devel":
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+ [
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/Common_Voice/cv-corpus-7.0-2021-07-21/ru/dev_converted.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ }
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+
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+ ]
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+ ,
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+ "test":
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+ {
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+ "name": "csv",
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+ "path": "csv",
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+ "data_files": ["/workspace/edresson/datasets/Common_Voice/cv-corpus-7.0-2021-07-21/ru/test_converted.csv"], // csv files
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+ "text_column": "text",
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+ "path_column": "file_path"
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+ }
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+
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+ }//,
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+ // used only for test
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+ // "KenLM":{
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+ // "kenlm_model_path": "../../kenLM/binaries/subtitle/4-gram/lm.binary", // Path for KenLM model
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+ // "lexicon_path": "example/lexicon.lst", // file with all words for limit the decoder search
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+ // "beam": 2048,
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+ // "nbest": 1,
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+ // "beam_threshold": 25,
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+ // "lm_weight": 1,
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+ // "word_score": -1,
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+ // "sil_weight": 0
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+ // }
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+
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+
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+
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+ }
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+
eval_results.json ADDED
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+ {
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+ "epoch": 73.0,
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+ "eval_loss": 0.3584013879299164,
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+ "eval_runtime": 316.7442,
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+ "eval_samples": 8422,
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+ "eval_samples_per_second": 26.589,
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+ "eval_wer": 0.3019012195279999
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+ }
preprocessor_config.json ADDED
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+ {
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+ "do_normalize": true,
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+ "feature_extractor_type": "Wav2Vec2FeatureExtractor",
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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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+ }
pytorch_model.bin ADDED
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+ version https://git-lfs.github.com/spec/v1
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+ size 1262088988
special_tokens_map.json ADDED
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+ {"bos_token": "<s>", "eos_token": "</s>", "unk_token": "<unk>", "pad_token": "<pad>"}
tokenizer_config.json ADDED
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+ {"unk_token": "<unk>", "bos_token": "<s>", "eos_token": "</s>", "pad_token": "<pad>", "do_lower_case": false, "word_delimiter_token": "|"}
train_results.json ADDED
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+ {
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+ "epoch": 73.0,
3
+ "train_runtime": 465541.7438,
4
+ "train_samples": 81775,
5
+ "train_samples_per_second": 0.091
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