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Delete wav2vec2-large-xls-r-300m-hi
Browse files- wav2vec2-large-xls-r-300m-hi/.gitattributes +0 -35
- wav2vec2-large-xls-r-300m-hi/README.md +0 -146
- wav2vec2-large-xls-r-300m-hi/added_tokens.json +0 -4
- wav2vec2-large-xls-r-300m-hi/config.json +0 -109
- wav2vec2-large-xls-r-300m-hi/preprocessor_config.json +0 -9
- wav2vec2-large-xls-r-300m-hi/pytorch_model.bin +0 -3
- wav2vec2-large-xls-r-300m-hi/special_tokens_map.json +0 -22
- wav2vec2-large-xls-r-300m-hi/tokenizer_config.json +0 -13
- wav2vec2-large-xls-r-300m-hi/training_args.bin +0 -3
- wav2vec2-large-xls-r-300m-hi/vocab.json +0 -66
wav2vec2-large-xls-r-300m-hi/.gitattributes
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wav2vec2-large-xls-r-300m-hi/README.md
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---
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license: apache-2.0
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base_model: facebook/wav2vec2-xls-r-300m
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tags:
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- generated_from_trainer
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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: wav2vec2-large-xls-r-300m-hi
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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: Common Voice 15
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type: mozilla-foundation/common_voice_15_0
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args: hi
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metrics:
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- name: Test WER
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type: wer
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value: 0.2934
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- name: Test CER
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type: cer
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value: 0.0786
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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: Common Voice 8
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type: mozilla-foundation/common_voice_8_0
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args: hi
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metrics:
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- name: Test WER
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type: wer
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value: 0.5209
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- name: Test CER
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type: cer
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value: 0.1790
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datasets:
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- mozilla-foundation/common_voice_15_0
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language:
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- hi
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library_name: transformers
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pipeline_tag: automatic-speech-recognition
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---
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<!-- This model card has been generated automatically according to the information the Trainer had access to. You
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should probably proofread and complete it, then remove this comment. -->
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# wav2vec2-large-xls-r-300m-hi
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This model is a fine-tuned version of [facebook/wav2vec2-xls-r-300m](https://huggingface.co/facebook/wav2vec2-xls-r-300m) on the None dataset.
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It achieves the following results on the evaluation set:
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- Loss: 0.3611
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- Wer: 0.2992
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- Cer: 0.0786
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View the results on Kaggle Notebook: https://www.kaggle.com/code/kingabzpro/wav2vec-2-eval
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## Evaluation
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```python
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import torch
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from datasets import load_dataset, load_metric
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from transformers import Wav2Vec2ForCTC, Wav2Vec2Processor
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import librosa
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import unicodedata
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import re
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test_dataset = load_dataset("mozilla-foundation/common_voice_8_0", "hi", split="test")
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wer = load_metric("wer")
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cer = load_metric("cer")
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processor = Wav2Vec2Processor.from_pretrained("kingabzpro/wav2vec2-large-xls-r-300m-hi")
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model = Wav2Vec2ForCTC.from_pretrained("kingabzpro/wav2vec2-large-xls-r-300m-hi")
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model.to("cuda")
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# Preprocessing the datasets.
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def speech_file_to_array_fn(batch):
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chars_to_ignore_regex = '[\,\?\.\!\-\;\:\"\“\%\‘\”\�\’\'\|\&\–]'
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remove_en = '[A-Za-z]'
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batch["sentence"] = re.sub(chars_to_ignore_regex, "", batch["sentence"].lower())
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batch["sentence"] = re.sub(remove_en, "", batch["sentence"]).lower()
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batch["sentence"] = unicodedata.normalize("NFKC", batch["sentence"])
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speech_array, sampling_rate = librosa.load(batch["path"], sr=16_000)
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batch["speech"] = speech_array
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return batch
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test_dataset = test_dataset.map(speech_file_to_array_fn)
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# Preprocessing the datasets.
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# We need to read the aduio files as arrays
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def evaluate(batch):
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inputs = processor(batch["speech"], sampling_rate=16_000, return_tensors="pt", padding=True)
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with torch.no_grad():
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logits = model(inputs.input_values.to("cuda")).logits
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pred_ids = torch.argmax(logits, dim=-1)
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batch["pred_strings"] = processor.batch_decode(pred_ids, skip_special_tokens=True)
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return batch
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result = test_dataset.map(evaluate, batched=True, batch_size=8)
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print("WER: {}".format(wer.compute(predictions=result["pred_strings"], references=result["sentence"])))
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print("CER: {}".format(cer.compute(predictions=result["pred_strings"], references=result["sentence"])))
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```
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**WER: 0.5209850206372026**
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**CER: 0.17902923538230883**
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### Training hyperparameters
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The following hyperparameters were used during training:
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- learning_rate: 0.0001
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- train_batch_size: 32
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- eval_batch_size: 8
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- seed: 42
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- gradient_accumulation_steps: 4
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- total_train_batch_size: 128
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- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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- lr_scheduler_type: linear
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- lr_scheduler_warmup_steps: 300
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- num_epochs: 100
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### Training results
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| Training Loss | Epoch | Step | Validation Loss | Wer | Cer |
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|:-------------:|:-----:|:----:|:---------------:|:------:|:------:|
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| 7.0431 | 19.05 | 300 | 3.4423 | 1.0 | 1.0 |
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| 2.3233 | 38.1 | 600 | 0.5965 | 0.4757 | 0.1329 |
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| 0.5676 | 57.14 | 900 | 0.3962 | 0.3584 | 0.0954 |
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| 0.3611 | 76.19 | 1200 | 0.3651 | 0.3190 | 0.0820 |
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| 0.2996 | 95.24 | 1500 | 0.3611 | 0.2992 | 0.0786 |
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### Framework versions
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- Transformers 4.33.0
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- Pytorch 2.0.0
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- Datasets 2.1.0
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- Tokenizers 0.13.3
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wav2vec2-large-xls-r-300m-hi/added_tokens.json
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{
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"</s>": 65,
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"<s>": 64
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}
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wav2vec2-large-xls-r-300m-hi/config.json
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{
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"_name_or_path": "facebook/wav2vec2-xls-r-300m",
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"activation_dropout": 0.0,
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"adapter_attn_dim": null,
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"adapter_kernel_size": 3,
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"adapter_stride": 2,
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"add_adapter": false,
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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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"classifier_proj_size": 256,
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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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"conv_kernel": [
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"conv_stride": [
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],
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"ctc_loss_reduction": "mean",
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"ctc_zero_infinity": false,
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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": 0.0,
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"feat_quantizer_dropout": 0.0,
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"final_dropout": 0.0,
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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_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_min_masks": 0,
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"mask_feature_prob": 0.0,
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"mask_time_length": 10,
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"mask_time_min_masks": 2,
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"mask_time_prob": 0.05,
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"model_type": "wav2vec2",
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"num_adapter_layers": 3,
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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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"output_hidden_size": 1024,
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"pad_token_id": 63,
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"proj_codevector_dim": 768,
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"tdnn_dilation": [
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],
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"tdnn_dim": [
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512,
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],
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"tdnn_kernel": [
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"torch_dtype": "float32",
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"transformers_version": "4.33.0",
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"use_weighted_layer_sum": false,
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"vocab_size": 66,
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"xvector_output_dim": 512
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}
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