xls-r-et / errs
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loading configuration file https://huggingface.co/facebook/wav2vec2-xls-r-300m/resolve/main/config.json from cache at /home/sagrilaft/.cache/huggingface/transformers/dabc27df63e37bd2a7a221c7774e35f36a280fbdf917cf54cadfc7df8c786f6f.a3e4c3c967d9985881e0ae550a5f6f668f897db5ab2e0802f9b97973b15970e6
Model config Wav2Vec2Config {
"_name_or_path": "facebook/wav2vec2-xls-r-300m",
"activation_dropout": 0.0,
"adapter_kernel_size": 3,
"adapter_stride": 2,
"add_adapter": false,
"apply_spec_augment": true,
"architectures": [
"Wav2Vec2ForPreTraining"
],
"attention_dropout": 0.1,
"bos_token_id": 1,
"classifier_proj_size": 256,
"codevector_dim": 768,
"contrastive_logits_temperature": 0.1,
"conv_bias": true,
"conv_dim": [
512,
512,
512,
512,
512,
512,
512
],
"conv_kernel": [
10,
3,
3,
3,
3,
2,
2
],
"conv_stride": [
5,
2,
2,
2,
2,
2,
2
],
"ctc_loss_reduction": "sum",
"ctc_zero_infinity": false,
"diversity_loss_weight": 0.1,
"do_stable_layer_norm": true,
"eos_token_id": 2,
"feat_extract_activation": "gelu",
"feat_extract_dropout": 0.0,
"feat_extract_norm": "layer",
"feat_proj_dropout": 0.1,
"feat_quantizer_dropout": 0.0,
"final_dropout": 0.0,
"gradient_checkpointing": false,
"hidden_act": "gelu",
"hidden_dropout": 0.1,
"hidden_size": 1024,
"initializer_range": 0.02,
"intermediate_size": 4096,
"layer_norm_eps": 1e-05,
"layerdrop": 0.1,
"mask_feature_length": 10,
"mask_feature_min_masks": 0,
"mask_feature_prob": 0.0,
"mask_time_length": 10,
"mask_time_min_masks": 2,
"mask_time_prob": 0.075,
"model_type": "wav2vec2",
"num_adapter_layers": 3,
"num_attention_heads": 16,
"num_codevector_groups": 2,
"num_codevectors_per_group": 320,
"num_conv_pos_embedding_groups": 16,
"num_conv_pos_embeddings": 128,
"num_feat_extract_layers": 7,
"num_hidden_layers": 24,
"num_negatives": 100,
"output_hidden_size": 1024,
"pad_token_id": 0,
"proj_codevector_dim": 768,
"tdnn_dilation": [
1,
2,
3,
1,
1
],
"tdnn_dim": [
512,
512,
512,
512,
1500
],
"tdnn_kernel": [
5,
3,
3,
1,
1
],
"torch_dtype": "float32",
"transformers_version": "4.16.0.dev0",
"use_weighted_layer_sum": false,
"vocab_size": 32,
"xvector_output_dim": 512
}
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Didn't find file ./tokenizer_config.json. We won't load it.
Didn't find file ./added_tokens.json. We won't load it.
Didn't find file ./special_tokens_map.json. We won't load it.
Didn't find file ./tokenizer.json. We won't load it.
loading file ./vocab.json
loading file None
loading file None
loading file None
loading file None
file ./config.json not found
Adding <s> to the vocabulary
Adding </s> to the vocabulary
Special tokens have been added in the vocabulary, make sure the associated word embeddings are fine-tuned or trained.
loading configuration file https://huggingface.co/facebook/wav2vec2-xls-r-300m/resolve/main/config.json from cache at /home/sagrilaft/.cache/huggingface/transformers/dabc27df63e37bd2a7a221c7774e35f36a280fbdf917cf54cadfc7df8c786f6f.a3e4c3c967d9985881e0ae550a5f6f668f897db5ab2e0802f9b97973b15970e6
Model config Wav2Vec2Config {
"_name_or_path": "facebook/wav2vec2-xls-r-300m",
"activation_dropout": 0.0,
"adapter_kernel_size": 3,
"adapter_stride": 2,
"add_adapter": false,
"apply_spec_augment": true,
"architectures": [
"Wav2Vec2ForPreTraining"
],
"attention_dropout": 0.1,
"bos_token_id": 1,
"classifier_proj_size": 256,
"codevector_dim": 768,
"contrastive_logits_temperature": 0.1,
"conv_bias": true,
"conv_dim": [
512,
512,
512,
512,
512,
512,
512
],
"conv_kernel": [
10,
3,
3,
3,
3,
2,
2
],
"conv_stride": [
5,
2,
2,
2,
2,
2,
2
],
"ctc_loss_reduction": "sum",
"ctc_zero_infinity": false,
"diversity_loss_weight": 0.1,
"do_stable_layer_norm": true,
"eos_token_id": 2,
"feat_extract_activation": "gelu",
"feat_extract_dropout": 0.0,
"feat_extract_norm": "layer",
"feat_proj_dropout": 0.1,
"feat_quantizer_dropout": 0.0,
"final_dropout": 0.0,
"gradient_checkpointing": false,
"hidden_act": "gelu",
"hidden_dropout": 0.1,
"hidden_size": 1024,
"initializer_range": 0.02,
"intermediate_size": 4096,
"layer_norm_eps": 1e-05,
"layerdrop": 0.1,
"mask_feature_length": 10,
"mask_feature_min_masks": 0,
"mask_feature_prob": 0.0,
"mask_time_length": 10,
"mask_time_min_masks": 2,
"mask_time_prob": 0.075,
"model_type": "wav2vec2",
"num_adapter_layers": 3,
"num_attention_heads": 16,
"num_codevector_groups": 2,
"num_codevectors_per_group": 320,
"num_conv_pos_embedding_groups": 16,
"num_conv_pos_embeddings": 128,
"num_feat_extract_layers": 7,
"num_hidden_layers": 24,
"num_negatives": 100,
"output_hidden_size": 1024,
"pad_token_id": 0,
"proj_codevector_dim": 768,
"tdnn_dilation": [
1,
2,
3,
1,
1
],
"tdnn_dim": [
512,
512,
512,
512,
1500
],
"tdnn_kernel": [
5,
3,
3,
1,
1
],
"torch_dtype": "float32",
"transformers_version": "4.16.0.dev0",
"use_weighted_layer_sum": false,
"vocab_size": 32,
"xvector_output_dim": 512
}
loading feature extractor configuration file https://huggingface.co/facebook/wav2vec2-xls-r-300m/resolve/main/preprocessor_config.json from cache at /home/sagrilaft/.cache/huggingface/transformers/6fb028b95b394059e7d3b367bbca2382b576c66aebe896f04d2cd34e1b575f5b.d4484dc1c81456a2461485e7168b04347a7b9a4e3b1ef3aba723323b33e12326
Feature extractor Wav2Vec2FeatureExtractor {
"do_normalize": true,
"feature_extractor_type": "Wav2Vec2FeatureExtractor",
"feature_size": 1,
"padding_side": "right",
"padding_value": 0,
"return_attention_mask": true,
"sampling_rate": 16000
}
loading weights file https://huggingface.co/facebook/wav2vec2-xls-r-300m/resolve/main/pytorch_model.bin from cache at /home/sagrilaft/.cache/huggingface/transformers/1e6a6507f3b689035cd4b247e2a37c154e27f39143f31357a49b4e38baeccc36.1edb32803799e27ed554eb7dd935f6745b1a0b17b0ea256442fe24db6eb546cd
Some weights of the model checkpoint at facebook/wav2vec2-xls-r-300m were not used when initializing Wav2Vec2ForCTC: ['project_q.bias', 'project_q.weight', 'quantizer.weight_proj.weight', 'project_hid.bias', 'project_hid.weight', 'quantizer.codevectors', 'quantizer.weight_proj.bias']
- This IS expected if you are initializing Wav2Vec2ForCTC from the checkpoint of a model trained on another task or with another architecture (e.g. initializing a BertForSequenceClassification model from a BertForPreTraining model).
- This IS NOT expected if you are initializing Wav2Vec2ForCTC from the checkpoint of a model that you expect to be exactly identical (initializing a BertForSequenceClassification model from a BertForSequenceClassification model).
Some weights of Wav2Vec2ForCTC were not initialized from the model checkpoint at facebook/wav2vec2-xls-r-300m and are newly initialized: ['lm_head.bias', 'lm_head.weight']
You should probably TRAIN this model on a down-stream task to be able to use it for predictions and inference.
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Configuration saved in ./preprocessor_config.json
tokenizer config file saved in ./tokenizer_config.json
Special tokens file saved in ./special_tokens_map.json
added tokens file saved in ./added_tokens.json
Configuration saved in ./config.json
loading feature extractor configuration file ./preprocessor_config.json
loading configuration file ./config.json
Model config Wav2Vec2Config {
"_name_or_path": "./",
"activation_dropout": 0.0,
"adapter_kernel_size": 3,
"adapter_stride": 2,
"add_adapter": false,
"apply_spec_augment": true,
"architectures": [
"Wav2Vec2ForPreTraining"
],
"attention_dropout": 0.0,
"bos_token_id": 1,
"classifier_proj_size": 256,
"codevector_dim": 768,
"contrastive_logits_temperature": 0.1,
"conv_bias": true,
"conv_dim": [
512,
512,
512,
512,
512,
512,
512
],
"conv_kernel": [
10,
3,
3,
3,
3,
2,
2
],
"conv_stride": [
5,
2,
2,
2,
2,
2,
2
],
"ctc_loss_reduction": "mean",
"ctc_zero_infinity": false,
"diversity_loss_weight": 0.1,
"do_stable_layer_norm": true,
"eos_token_id": 2,
"feat_extract_activation": "gelu",
"feat_extract_dropout": 0.0,
"feat_extract_norm": "layer",
"feat_proj_dropout": 0.1,
"feat_quantizer_dropout": 0.0,
"final_dropout": 0.0,
"hidden_act": "gelu",
"hidden_dropout": 0.0,
"hidden_size": 1024,
"initializer_range": 0.02,
"intermediate_size": 4096,
"layer_norm_eps": 1e-05,
"layerdrop": 0.0,
"mask_feature_length": 10,
"mask_feature_min_masks": 0,
"mask_feature_prob": 0.0,
"mask_time_length": 10,
"mask_time_min_masks": 2,
"mask_time_prob": 0.1,
"model_type": "wav2vec2",
"num_adapter_layers": 3,
"num_attention_heads": 16,
"num_codevector_groups": 2,
"num_codevectors_per_group": 320,
"num_conv_pos_embedding_groups": 16,
"num_conv_pos_embeddings": 128,
"num_feat_extract_layers": 7,
"num_hidden_layers": 24,
"num_negatives": 100,
"output_hidden_size": 1024,
"pad_token_id": 36,
"proj_codevector_dim": 768,
"tdnn_dilation": [
1,
2,
3,
1,
1
],
"tdnn_dim": [
512,
512,
512,
512,
1500
],
"tdnn_kernel": [
5,
3,
3,
1,
1
],
"torch_dtype": "float32",
"transformers_version": "4.16.0.dev0",
"use_weighted_layer_sum": false,
"vocab_size": 39,
"xvector_output_dim": 512
}
loading feature extractor configuration file ./preprocessor_config.json
Feature extractor Wav2Vec2FeatureExtractor {
"do_normalize": true,
"feature_extractor_type": "Wav2Vec2FeatureExtractor",
"feature_size": 1,
"padding_side": "right",
"padding_value": 0,
"return_attention_mask": true,
"sampling_rate": 16000
}
Didn't find file ./tokenizer.json. We won't load it.
loading file ./vocab.json
loading file ./tokenizer_config.json
loading file ./added_tokens.json
loading file ./special_tokens_map.json
loading file None
Adding <s> to the vocabulary
Adding </s> to the vocabulary
/home/sagrilaft/Project/audio/xls-r-et/./ is already a clone of https://huggingface.co/shpotes/xls-r-et. Make sure you pull the latest changes with `repo.git_pull()`.
Using amp half precision backend
The following columns in the training set don't have a corresponding argument in `Wav2Vec2ForCTC.forward` and have been ignored: input_length.
***** Running training *****
Num examples = 5705
Num Epochs = 500
Instantaneous batch size per device = 80
Total train batch size (w. parallel, distributed & accumulation) = 160
Gradient Accumulation steps = 2
Total optimization steps = 18000
Automatic Weights & Biases logging enabled, to disable set os.environ["WANDB_DISABLED"] = "true"
wandb: Currently logged in as: shpotes (use `wandb login --relogin` to force relogin)
wandb: Tracking run with wandb version 0.12.9
wandb: Syncing run cosine+drop_proj+low_specaugment-300M
wandb: View project at https://wandb.ai/shpotes/xls-r-estonian
wandb: View run at https://wandb.ai/shpotes/xls-r-estonian/runs/1xdiy2kf
wandb: Run data is saved locally in /home/sagrilaft/Project/audio/xls-r-et/wandb/run-20220126_105847-1xdiy2kf
wandb: Run `wandb offline` to turn off syncing.
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[15:57<51:48:37, 10.42s/it] 1% 101/18000 [16:05<48:40:04, 9.79s/it] 1% 102/18000 [16:12<44:23:01, 8.93s/it] 1% 103/18000 [16:18<39:26:24, 7.93s/it] 1% 104/18000 [16:22<34:15:20, 6.89s/it] 1% 105/18000 [16:37<46:43:13, 9.40s/it] 1% 106/18000 [16:47<47:23:12, 9.53s/it] 1% 107/18000 [16:54<43:44:40, 8.80s/it] 1% 108/18000 [16:58<35:46:46, 7.20s/it] 1% 109/18000 [17:14<48:43:15, 9.80s/it] 1% 110/18000 [17:27<54:09:47, 10.90s/it] 1% 111/18000 [17:38<54:15:19, 10.92s/it] 1% 112/18000 [17:48<52:17:25, 10.52s/it] 1% 113/18000 [17:56<49:14:31, 9.91s/it] 1% 114/18000 [18:03<45:07:53, 9.08s/it] 1% 115/18000 [18:09<40:13:03, 8.10s/it] 1% 116/18000 [18:13<34:43:29, 6.99s/it] 1% 117/18000 [18:30<48:46:18, 9.82s/it] 1% 118/18000 [18:43<53:31:11, 10.77s/it] 1% 119/18000 [18:53<53:11:36, 10.71s/it] 1% 120/18000 [19:03<50:56:21, 10.26s/it] 1% 121/18000 [19:11<47:23:37, 9.54s/it] 1% 122/18000 [19:17<43:07:59, 8.69s/it] 1% 123/18000 [19:23<38:34:05, 7.77s/it] 1% 124/18000 [19:27<33:23:03, 6.72s/it] 1% 125/18000 [19:43<47:43:04, 9.61s/it] 1% 126/18000 [19:57<53:09:48, 10.71s/it] 1% 127/18000 [20:08<53:19:09, 10.74s/it] 1% 128/18000 [20:17<51:20:03, 10.34s/it] 1% 129/18000 [20:25<48:12:21, 9.71s/it] 1% 130/18000 [20:32<43:58:10, 8.86s/it] 1% 131/18000 [20:38<39:28:05, 7.95s/it] 1% 132/18000 [20:42<34:15:06, 6.90s/it] 1% 133/18000 [20:59<48:28:40, 9.77s/it] 1% 134/18000 [21:12<53:33:44, 10.79s/it] 1% 135/18000 [21:23<53:23:03, 10.76s/it] 1% 136/18000 [21:32<51:19:46, 10.34s/it] 1% 137/18000 [21:40<48:04:44, 9.69s/it] 1% 138/18000 [21:47<43:54:30, 8.85s/it] 1% 139/18000 [21:53<39:05:17, 7.88s/it] 1% 140/18000 [21:57<34:00:50, 6.86s/it] 1% 141/18000 [22:13<46:40:32, 9.41s/it] 1% 142/18000 [22:23<47:51:15, 9.65s/it] 1% 143/18000 [22:30<44:22:27, 8.95s/it] 1% 144/18000 [22:34<36:18:44, 7.32s/it] 1% 145/18000 [22:50<49:56:40, 10.07s/it] 1% 146/18000 [23:03<54:50:33, 11.06s/it] 1% 147/18000 [23:14<54:23:30, 10.97s/it] 1% 148/18000 [23:24<51:53:58, 10.47s/it] 1% 149/18000 [23:32<48:32:27, 9.79s/it] 1% 150/18000 [23:39<44:37:06, 9.00s/it] 1% 151/18000 [23:45<39:56:07, 8.05s/it] 1% 152/18000 [23:49<34:30:40, 6.96s/it] 1% 153/18000 [24:06<48:51:50, 9.86s/it] 1% 154/18000 [24:19<54:08:29, 10.92s/it] 1% 155/18000 [24:30<54:07:19, 10.92s/it] 1% 156/18000 [24:39<51:49:42, 10.46s/it] 1% 157/18000 [24:48<48:49:19, 9.85s/it] 1% 158/18000 [24:55<44:54:15, 9.06s/it] 1% 159/18000 [25:01<40:01:43, 8.08s/it] 1% 160/18000 [25:05<34:36:26, 6.98s/it] 1% 161/18000 [25:22<48:39:48, 9.82s/it] 1% 162/18000 [25:35<53:20:53, 10.77s/it] 1% 163/18000 [25:45<53:02:40, 10.71s/it] 1% 164/18000 [25:55<51:11:53, 10.33s/it] 1% 165/18000 [26:03<48:01:45, 9.69s/it] 1% 166/18000 [26:10<43:51:38, 8.85s/it] 1% 167/18000 [26:16<39:20:09, 7.94s/it] 1% 168/18000 [26:20<34:07:20, 6.89s/it] 1% 169/18000 [26:37<48:26:45, 9.78s/it] 1% 170/18000 [26:50<54:05:34, 10.92s/it] 1% 171/18000 [27:01<54:10:19, 10.94s/it] 1% 172/18000 [27:11<51:47:16, 10.46s/it] 1% 173/18000 [27:19<48:35:45, 9.81s/it] 1% 174/18000 [27:26<44:17:21, 8.94s/it] 1% 175/18000 [27:32<39:40:01, 8.01s/it] 1% 176/18000 [27:36<34:26:47, 6.96s/it] 1% 177/18000 [27:51<46:22:02, 9.37s/it] 1% 178/18000 [28:01<46:54:42, 9.48s/it] 1% 179/18000 [28:08<43:12:54, 8.73s/it] 1% 180/18000 [28:11<34:51:46, 7.04s/it] 1% 181/18000 [28:27<48:41:49, 9.84s/it] 1% 182/18000 [28:41<53:47:06, 10.87s/it] 1% 183/18000 [28:51<53:26:11, 10.80s/it] 1% 184/18000 [29:00<51:13:34, 10.35s/it] 1% 185/18000 [29:08<47:40:37, 9.63s/it] 1% 186/18000 [29:15<43:41:55, 8.83s/it] 1% 187/18000 [29:21<39:02:36, 7.89s/it] 1% 188/18000 [29:25<33:33:56, 6.78s/it] 1% 189/18000 [29:41<46:58:38, 9.50s/it] 1% 190/18000 [29:55<52:50:48, 10.68s/it] 1% 191/18000 [30:05<53:13:50, 10.76s/it] 1% 192/18000 [30:15<51:19:04, 10.37s/it] 1% 193/18000 [30:23<47:46:28, 9.66s/it] 1% 194/18000 [30:30<43:50:18, 8.86s/it] 1% 195/18000 [30:36<39:23:19, 7.96s/it] 1% 196/18000 [30:40<34:17:27, 6.93s/it] 1% 197/18000 [30:57<48:42:25, 9.85s/it] 1% 198/18000 [31:11<54:34:28, 11.04s/it] 1% 199/18000 [31:22<54:40:44, 11.06s/it] 1% 200/18000 [31:32<53:10:28, 10.75s/it] 1% 200/18000 [31:32<53:10:28, 10.75s/it] 1% 201/18000 [31:40<49:47:14, 10.07s/it] 1% 202/18000 [31:47<45:18:07, 9.16s/it] 1% 203/18000 [31:53<40:20:20, 8.16s/it] 1% 204/18000 [31:58<34:46:55, 7.04s/it] 1% 205/18000 [32:14<48:45:25, 9.86s/it] 1% 206/18000 [32:27<53:32:26, 10.83s/it] 1% 207/18000 [32:38<53:17:02, 10.78s/it] 1% 208/18000 [32:47<51:12:19, 10.36s/it] 1% 209/18000 [32:56<48:09:33, 9.75s/it] 1% 210/18000 [33:03<44:08:23, 8.93s/it] 1% 211/18000 [33:09<39:35:55, 8.01s/it] 1% 212/18000 [33:13<34:23:10, 6.96s/it] 1% 213/18000 [33:28<46:28:43, 9.41s/it] 1% 214/18000 [33:38<46:56:12, 9.50s/it] 1% 215/18000 [33:45<43:27:58, 8.80s/it] 1% 216/18000 [33:48<35:04:07, 7.10s/it] 1% 217/18000 [34:04<48:42:58, 9.86s/it] 1% 218/18000 [34:18<53:32:18, 10.84s/it] 1% 219/18000 [34:28<53:14:19, 10.78s/it] 1% 220/18000 [34:38<51:06:07, 10.35s/it] 1% 221/18000 [34:46<47:42:29, 9.66s/it] 1% 222/18000 [34:52<43:16:38, 8.76s/it] 1% 223/18000 [34:58<38:47:18, 7.85s/it] 1% 224/18000 [35:02<33:35:15, 6.80s/it] 1% 225/18000 [35:18<46:55:15, 9.50s/it] 1% 226/18000 [35:32<52:36:24, 10.66s/it] 1% 227/18000 [35:42<52:47:45, 10.69s/it] 1% 228/18000 [35:52<50:52:21, 10.31s/it] 1% 229/18000 [36:00<48:08:38, 9.75s/it] 1% 230/18000 [36:07<44:14:44, 8.96s/it] 1% 231/18000 [36:13<39:37:28, 8.03s/it] 1% 232/18000 [36:18<34:13:31, 6.93s/it] 1% 233/18000 [36:34<48:28:27, 9.82s/it] 1% 234/18000 [36:48<53:55:28, 10.93s/it] 1% 235/18000 [36:59<54:07:48, 10.97s/it] 1% 236/18000 [37:08<52:09:20, 10.57s/it] 1% 237/18000 [37:17<48:42:27, 9.87s/it] 1% 238/18000 [37:23<44:21:14, 8.99s/it] 1% 239/18000 [37:29<39:44:51, 8.06s/it] 1% 240/18000 [37:34<34:23:30, 6.97s/it] 1% 241/18000 [37:50<48:42:06, 9.87s/it] 1% 242/18000 [38:03<53:25:27, 10.83s/it] 1% 243/18000 [38:14<52:55:48, 10.73s/it] 1% 244/18000 [38:23<50:37:01, 10.26s/it] 1% 245/18000 [38:31<47:27:12, 9.62s/it] 1% 246/18000 [38:38<43:25:26, 8.81s/it] 1% 247/18000 [38:44<39:01:44, 7.91s/it] 1% 248/18000 [38:48<33:54:20, 6.88s/it] 1% 249/18000 [39:04<46:20:55, 9.40s/it] 1% 250/18000 [39:14<47:17:59, 9.59s/it] 1% 251/18000 [39:21<43:48:05, 8.88s/it] 1% 252/18000 [39:24<35:17:51, 7.16s/it] 1% 253/18000 [39:41<49:42:54, 10.08s/it] 1% 254/18000 [39:55<54:40:20, 11.09s/it] 1% 255/18000 [40:05<54:05:56, 10.98s/it] 1% 256/18000 [40:15<51:41:45, 10.49s/it] 1% 257/18000 [40:23<48:34:31, 9.86s/it] 1% 258/18000 [40:30<44:23:42, 9.01s/it] 1% 259/18000 [40:36<39:40:19, 8.05s/it] 1% 260/18000 [40:40<34:13:42, 6.95s/it] 1% 261/18000 [40:57<48:18:11, 9.80s/it] 1% 262/18000 [41:10<53:34:01, 10.87s/it] 1% 263/18000 [41:21<53:19:57, 10.82s/it] 1% 264/18000 [41:30<50:44:07, 10.30s/it] 1% 265/18000 [41:38<47:15:09, 9.59s/it] 1% 266/18000 [41:44<43:02:02, 8.74s/it] 1% 267/18000 [41:50<38:41:55, 7.86s/it] 1% 268/18000 [41:55<33:41:12, 6.84s/it] 1% 269/18000 [42:11<47:53:19, 9.72s/it] 2% 270/18000 [42:24<53:01:13, 10.77s/it] 2% 271/18000 [42:35<53:02:40, 10.77s/it] 2% 272/18000 [42:45<51:00:00, 10.36s/it] 2% 273/18000 [42:53<48:01:13, 9.75s/it] 2% 274/18000 [43:00<44:05:26, 8.95s/it] 2% 275/18000 [43:06<39:29:31, 8.02s/it] 2% 276/18000 [43:10<34:20:22, 6.97s/it] 2% 277/18000 [43:27<48:36:20, 9.87s/it] 2% 278/18000 [43:41<54:13:56, 11.02s/it] 2% 279/18000 [43:52<54:12:18, 11.01s/it] 2% 280/18000 [44:01<51:45:06, 10.51s/it] 2% 281/18000 [44:10<48:47:06, 9.91s/it] 2% 282/18000 [44:16<44:16:39, 9.00s/it] 2% 283/18000 [44:22<39:08:42, 7.95s/it] 2% 284/18000 [44:26<33:59:45, 6.91s/it] 2% 285/18000 [44:42<46:30:46, 9.45s/it] 2% 286/18000 [44:52<47:30:24, 9.65s/it] 2% 287/18000 [44:59<43:54:19, 8.92s/it] 2% 288/18000 [45:03<35:52:00, 7.29s/it] 2% 289/18000 [45:19<49:57:55, 10.16s/it] 2% 290/18000 [45:33<54:54:58, 11.16s/it] 2% 291/18000 [45:44<54:40:30, 11.11s/it] 2% 292/18000 [45:54<52:24:02, 10.65s/it] 2% 293/18000 [46:02<48:53:00, 9.94s/it] 2% 294/18000 [46:09<44:31:18, 9.05s/it] 2% 295/18000 [46:15<39:58:45, 8.13s/it] 2% 296/18000 [46:19<34:41:14, 7.05s/it] 2% 297/18000 [46:36<48:25:58, 9.85s/it] 2% 298/18000 [46:49<53:21:33, 10.85s/it] 2% 299/18000 [47:00<53:00:52, 10.78s/it] 2% 300/18000 [47:09<51:02:08, 10.38s/it] 2% 300/18000 [47:09<51:02:08, 10.38s/it] 2% 301/18000 [47:17<47:51:13, 9.73s/it] 2% 302/18000 [47:24<43:43:29, 8.89s/it] 2% 303/18000 [47:30<39:03:22, 7.94s/it] 2% 304/18000 [47:34<33:47:15, 6.87s/it] 2% 305/18000 [47:51<47:55:18, 9.75s/it] 2% 306/18000 [48:04<52:59:15, 10.78s/it] 2% 307/18000 [48:15<52:51:07, 10.75s/it] 2% 308/18000 [48:24<50:25:56, 10.26s/it] 2% 309/18000 [48:32<47:33:47, 9.68s/it] 2% 310/18000 [48:39<43:29:15, 8.85s/it] 2% 311/18000 [48:45<38:43:45, 7.88s/it] 2% 312/18000 [48:49<33:28:13, 6.81s/it] 2% 313/18000 [49:05<47:37:14, 9.69s/it] 2% 314/18000 [49:19<53:06:18, 10.81s/it] 2% 315/18000 [49:29<52:32:02, 10.69s/it] 2% 316/18000 [49:39<50:37:01, 10.30s/it] 2% 317/18000 [49:47<47:35:40, 9.69s/it] 2% 318/18000 [49:54<43:33:20, 8.87s/it] 2% 319/18000 [50:00<39:14:50, 7.99s/it] 2% 320/18000 [50:04<34:09:36, 6.96s/it] 2% 321/18000 [50:19<46:07:44, 9.39s/it] 2% 322/18000 [50:29<47:04:05, 9.59s/it] 2% 323/18000 [50:37<43:38:37, 8.89s/it] 2% 324/18000 [50:40<35:28:44, 7.23s/it] 2% 325/18000 [50:56<49:06:27, 10.00s/it] 2% 326/18000 [51:10<53:47:16, 10.96s/it] 2% 327/18000 [51:20<53:23:03, 10.87s/it] 2% 328/18000 [51:30<51:14:24, 10.44s/it] 2% 329/18000 [51:38<48:08:52, 9.81s/it] 2% 330/18000 [51:45<44:04:02, 8.98s/it] 2% 331/18000 [51:51<39:27:52, 8.04s/it] 2% 332/18000 [51:55<34:01:15, 6.93s/it] 2% 333/18000 [52:12<47:55:08, 9.76s/it] 2% 334/18000 [52:25<52:58:37, 10.80s/it] 2% 335/18000 [52:36<53:03:41, 10.81s/it] 2% 336/18000 [52:45<51:22:12, 10.47s/it] 2% 337/18000 [52:54<48:17:41, 9.84s/it] 2% 338/18000 [53:01<44:04:01, 8.98s/it] 2% 339/18000 [53:06<39:19:19, 8.02s/it] 2% 340/18000 [53:11<33:59:49, 6.93s/it] 2% 341/18000 [53:28<48:17:19, 9.84s/it] 2% 342/18000 [53:40<52:48:55, 10.77s/it] 2% 343/18000 [53:51<52:45:57, 10.76s/it] 2% 344/18000 [54:00<50:32:06, 10.30s/it] 2% 345/18000 [54:09<47:20:31, 9.65s/it] 2% 346/18000 [54:15<43:17:34, 8.83s/it] 2% 347/18000 [54:21<38:41:00, 7.89s/it] 2% 348/18000 [54:25<33:24:17, 6.81s/it] 2% 349/18000 [54:42<47:36:12, 9.71s/it] 2% 350/18000 [54:55<52:56:31, 10.80s/it] 2% 351/18000 [55:05<52:05:17, 10.62s/it] 2% 352/18000 [55:15<49:57:37, 10.19s/it] 2% 353/18000 [55:23<46:53:40, 9.57s/it] 2% 354/18000 [55:30<42:56:28, 8.76s/it] 2% 355/18000 [55:35<38:35:32, 7.87s/it] 2% 356/18000 [55:40<33:34:24, 6.85s/it] 2% 357/18000 [55:55<46:02:43, 9.40s/it] 2% 358/18000 [56:05<47:14:04, 9.64s/it] 2% 359/18000 [56:13<43:54:21, 8.96s/it] 2% 360/18000 [56:16<35:44:58, 7.30s/it] 2% 361/18000 [56:33<49:37:45, 10.13s/it] 2% 362/18000 [56:46<54:18:29, 11.08s/it] 2% 363/18000 [56:57<53:18:49, 10.88s/it] 2% 364/18000 [57:06<50:43:27, 10.35s/it] 2% 365/18000 [57:14<47:50:00, 9.76s/it] 2% 366/18000 [57:21<43:42:30, 8.92s/it] 2% 367/18000 [57:27<38:47:25, 7.92s/it] 2% 368/18000 [57:31<33:26:40, 6.83s/it] 2% 369/18000 [57:47<47:20:50, 9.67s/it] 2% 370/18000 [58:01<52:33:21, 10.73s/it] 2% 371/18000 [58:11<52:40:27, 10.76s/it] 2% 372/18000 [58:21<50:37:46, 10.34s/it] 2% 373/18000 [58:29<47:13:33, 9.65s/it] 2% 374/18000 [58:36<43:15:43, 8.84s/it] 2% 375/18000 [58:41<38:46:26, 7.92s/it] 2% 376/18000 [58:46<33:49:26, 6.91s/it] 2% 377/18000 [59:03<47:58:02, 9.80s/it] 2% 378/18000 [59:16<53:14:23, 10.88s/it] 2% 379/18000 [59:27<53:21:26, 10.90s/it] 2% 380/18000 [59:37<51:32:24, 10.53s/it] 2% 381/18000 [59:45<48:23:16, 9.89s/it] 2% 382/18000 [59:52<44:25:48, 9.08s/it] 2% 383/18000 [59:58<39:54:39, 8.16s/it] 2% 384/18000 [1:00:03<34:22:55, 7.03s/it] 2% 385/18000 [1:00:19<48:14:08, 9.86s/it] 2% 386/18000 [1:00:32<53:13:30, 10.88s/it] 2% 387/18000 [1:00:43<52:53:09, 10.81s/it] 2% 388/18000 [1:00:52<50:27:17, 10.31s/it] 2% 389/18000 [1:01:00<47:11:15, 9.65s/it] 2% 390/18000 [1:01:07<43:01:58, 8.80s/it] 2% 391/18000 [1:01:13<38:27:51, 7.86s/it] 2% 392/18000 [1:01:17<33:21:31, 6.82s/it] 2% 393/18000 [1:01:32<44:31:41, 9.10s/it] 2% 394/18000 [1:01:41<45:48:47, 9.37s/it] 2% 395/18000 [1:01:49<42:48:03, 8.75s/it] 2% 396/18000 [1:01:52<34:58:38, 7.15s/it] 2% 397/18000 [1:02:09<48:50:53, 9.99s/it] 2% 398/18000 [1:02:22<53:43:53, 10.99s/it] 2% 399/18000 [1:02:33<53:20:56, 10.91s/it] 2% 400/18000 [1:02:42<51:16:29, 10.49s/it] 2% 400/18000 [1:02:42<51:16:29, 10.49s/it] 2% 401/18000 [1:02:51<48:04:04, 9.83s/it] 2% 402/18000 [1:02:58<43:47:40, 8.96s/it] 2% 403/18000 [1:03:03<39:11:36, 8.02s/it] 2% 404/18000 [1:03:08<33:59:02, 6.95s/it] 2% 405/18000 [1:03:24<47:36:15, 9.74s/it] 2% 406/18000 [1:03:37<52:47:43, 10.80s/it] 2% 407/18000 [1:03:48<52:48:26, 10.81s/it] 2% 408/18000 [1:03:58<50:44:50, 10.38s/it] 2% 409/18000 [1:04:06<47:49:35, 9.79s/it] 2% 410/18000 [1:04:13<43:57:02, 9.00s/it] 2% 411/18000 [1:04:19<39:21:08, 8.05s/it] 2% 412/18000 [1:04:23<33:57:31, 6.95s/it] 2% 413/18000 [1:04:40<47:43:17, 9.77s/it] 2% 414/18000 [1:04:53<53:05:33, 10.87s/it] 2% 415/18000 [1:05:04<53:03:39, 10.86s/it] 2% 416/18000 [1:05:14<51:10:13, 10.48s/it] 2% 417/18000 [1:05:22<47:58:19, 9.82s/it] 2% 418/18000 [1:05:29<43:46:49, 8.96s/it] 2% 419/18000 [1:05:35<39:10:03, 8.02s/it] 2% 420/18000 [1:05:39<33:58:45, 6.96s/it] 2% 421/18000 [1:05:56<48:16:48, 9.89s/it] 2% 422/18000 [1:06:09<53:30:55, 10.96s/it] 2% 423/18000 [1:06:20<53:13:22, 10.90s/it] 2% 424/18000 [1:06:29<50:26:10, 10.33s/it] 2% 425/18000 [1:06:37<47:08:56, 9.66s/it] 2% 426/18000 [1:06:44<43:19:15, 8.87s/it] 2% 427/18000 [1:06:50<38:33:18, 7.90s/it] 2% 428/18000 [1:06:54<33:33:27, 6.88s/it] 2% 429/18000 [1:07:09<44:43:15, 9.16s/it] 2% 430/18000 [1:07:19<46:00:07, 9.43s/it] 2% 431/18000 [1:07:26<43:11:33, 8.85s/it] 2% 432/18000 [1:07:30<34:56:30, 7.16s/it] 2% 433/18000 [1:07:46<48:49:24, 10.01s/it] 2% 434/18000 [1:08:00<53:38:05, 10.99s/it] 2% 435/18000 [1:08:10<53:09:03, 10.89s/it] 2% 436/18000 [1:08:19<50:38:26, 10.38s/it] 2% 437/18000 [1:08:27<47:14:39, 9.68s/it] 2% 438/18000 [1:08:34<42:52:00, 8.79s/it] 2% 439/18000 [1:08:40<38:20:18, 7.86s/it] 2% 440/18000 [1:08:44<33:10:31, 6.80s/it] 2% 441/18000 [1:09:01<47:29:55, 9.74s/it] 2% 442/18000 [1:09:14<52:47:34, 10.82s/it] 2% 443/18000 [1:09:25<52:43:24, 10.81s/it] 2% 444/18000 [1:09:34<50:46:19, 10.41s/it] 2% 445/18000 [1:09:43<47:42:44, 9.78s/it] 2% 446/18000 [1:09:50<43:40:10, 8.96s/it] 2% 447/18000 [1:09:56<39:20:53, 8.07s/it] 2% 448/18000 [1:10:00<34:14:21, 7.02s/it] 2% 449/18000 [1:10:17<48:02:46, 9.86s/it] 2% 450/18000 [1:10:30<53:38:52, 11.00s/it] 3% 451/18000 [1:10:41<53:33:23, 10.99s/it] 3% 452/18000 [1:10:51<51:28:10, 10.56s/it] 3% 453/18000 [1:10:59<47:59:20, 9.85s/it] 3% 454/18000 [1:11:06<43:39:42, 8.96s/it] 3% 455/18000 [1:11:12<39:03:03, 8.01s/it] 3% 456/18000 [1:11:16<33:48:03, 6.94s/it] 3% 457/18000 [1:11:33<47:28:06, 9.74s/it] 3% 458/18000 [1:11:46<52:13:26, 10.72s/it] 3% 459/18000 [1:11:56<52:11:58, 10.71s/it] 3% 460/18000 [1:12:06<50:26:50, 10.35s/it] 3% 461/18000 [1:12:14<47:11:11, 9.69s/it] 3% 462/18000 [1:12:21<43:22:01, 8.90s/it] 3% 463/18000 [1:12:27<38:48:08, 7.97s/it] 3% 464/18000 [1:12:31<33:40:40, 6.91s/it] 3% 465/18000 [1:12:46<45:41:28, 9.38s/it] 3% 466/18000 [1:12:56<46:32:41, 9.56s/it] 3% 467/18000 [1:13:03<43:03:28, 8.84s/it] 3% 468/18000 [1:13:07<34:43:53, 7.13s/it] 3% 469/18000 [1:13:23<48:48:43, 10.02s/it] 3% 470/18000 [1:13:37<54:05:41, 11.11s/it] 3% 471/18000 [1:13:48<53:57:52, 11.08s/it] 3% 472/18000 [1:13:58<51:57:14, 10.67s/it] 3% 473/18000 [1:14:06<48:17:17, 9.92s/it] 3% 474/18000 [1:14:13<44:14:22, 9.09s/it] 3% 475/18000 [1:14:19<39:36:15, 8.14s/it] 3% 476/18000 [1:14:24<34:21:02, 7.06s/it] 3% 477/18000 [1:14:40<47:52:39, 9.84s/it] 3% 478/18000 [1:14:53<52:38:58, 10.82s/it] 3% 479/18000 [1:15:04<52:32:09, 10.79s/it] 3% 480/18000 [1:15:13<50:33:14, 10.39s/it] 3% 481/18000 [1:15:22<47:38:56, 9.79s/it] 3% 482/18000 [1:15:28<43:19:51, 8.90s/it] 3% 483/18000 [1:15:34<38:46:14, 7.97s/it] 3% 484/18000 [1:15:39<33:35:21, 6.90s/it] 3% 485/18000 [1:15:55<47:26:03, 9.75s/it] 3% 486/18000 [1:16:08<52:32:49, 10.80s/it] 3% 487/18000 [1:16:19<52:38:09, 10.82s/it] 3% 488/18000 [1:16:28<50:31:07, 10.39s/it] 3% 489/18000 [1:16:37<47:24:15, 9.75s/it] 3% 490/18000 [1:16:44<43:32:47, 8.95s/it] 3% 491/18000 [1:16:50<39:21:30, 8.09s/it] 3% 492/18000 [1:16:54<34:02:14, 7.00s/it] 3% 493/18000 [1:17:11<48:38:09, 10.00s/it] 3% 494/18000 [1:17:25<53:24:35, 10.98s/it] 3% 495/18000 [1:17:35<52:53:14, 10.88s/it] 3% 496/18000 [1:17:45<50:41:49, 10.43s/it] 3% 497/18000 [1:17:53<47:21:35, 9.74s/it] 3% 498/18000 [1:18:00<43:18:58, 8.91s/it] 3% 499/18000 [1:18:05<38:28:50, 7.92s/it] 3% 500/18000 [1:18:10<33:36:35, 6.91s/it] 3% 500/18000 [1:18:10<33:36:35, 6.91s/it]The following columns in the evaluation set don't have a corresponding argument in `Wav2Vec2ForCTC.forward` and have been ignored: input_length.
***** Running Evaluation *****
Num examples = 2609
Batch size = 80
0% 0/33 [00:00<?, ?it/s]
6% 2/33 [00:04<01:10, 2.26s/it]
9% 3/33 [00:08<01:33, 3.13s/it]
12% 4/33 [00:12<01:39, 3.44s/it]
15% 5/33 [00:16<01:42, 3.64s/it]
18% 6/33 [00:20<01:42, 3.79s/it]
21% 7/33 [00:24<01:38, 3.80s/it]
24% 8/33 [00:28<01:36, 3.85s/it]
27% 9/33 [00:32<01:33, 3.88s/it]
30% 10/33 [00:37<01:33, 4.07s/it]
33% 11/33 [00:41<01:29, 4.06s/it]
36% 12/33 [00:45<01:24, 4.04s/it]
39% 13/33 [00:49<01:19, 3.98s/it]
42% 14/33 [00:53<01:16, 4.03s/it]
45% 15/33 [00:57<01:12, 4.04s/it]
48% 16/33 [01:01<01:10, 4.17s/it]
52% 17/33 [01:06<01:09, 4.32s/it]
55% 18/33 [01:10<01:03, 4.24s/it]
58% 19/33 [01:14<00:59, 4.24s/it]
61% 20/33 [01:19<00:55, 4.31s/it]
64% 21/33 [01:23<00:52, 4.34s/it]
67% 22/33 [01:27<00:47, 4.33s/it]
70% 23/33 [01:32<00:43, 4.38s/it]
73% 24/33 [01:36<00:39, 4.39s/it]
76% 25/33 [01:41<00:35, 4.42s/it]
79% 26/33 [01:45<00:30, 4.37s/it]
82% 27/33 [01:49<00:25, 4.31s/it]
85% 28/33 [01:54<00:21, 4.34s/it]
88% 29/33 [01:57<00:16, 4.09s/it]
91% 30/33 [02:00<00:11, 3.70s/it]
94% 31/33 [02:03<00:06, 3.40s/it]
97% 32/33 [02:05<00:03, 3.18s/it]
100% 33/33 [02:07<00:00, 2.61s/it]

100% 33/33 [02:08<00:00, 2.61s/it] 3% 500/18000 [1:20:23<33:36:35, 6.91s/it]
Saving model checkpoint to ./checkpoint-500
Configuration saved in ./checkpoint-500/config.json
Model weights saved in ./checkpoint-500/pytorch_model.bin
Configuration saved in ./checkpoint-500/preprocessor_config.json
Configuration saved in ./preprocessor_config.json