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---
language: it
license: apache-2.0
tags:
- automatic-speech-recognition
- generated_from_trainer
- hf-asr-leaderboard
- robust-speech-event
datasets:
- mozilla-foundation/common_voice_7_0
base_model: facebook/wav2vec2-xls-r-300m
model-index:
- name: XLS-R-300m - Italian
  results:
  - task:
      type: automatic-speech-recognition
      name: Automatic Speech Recognition
    dataset:
      name: Common Voice 7
      type: mozilla-foundation/common_voice_7_0
      args: it
    metrics:
    - type: wer
      value: 17.17
      name: Test WER
    - type: cer
      value: 4.27
      name: Test CER
    - type: wer
      value: 12.07
      name: Test WER (+LM)
    - type: cer
      value: 3.52
      name: Test CER (+LM)
  - task:
      type: automatic-speech-recognition
      name: Automatic Speech Recognition
    dataset:
      name: Robust Speech Event - Dev Data
      type: speech-recognition-community-v2/dev_data
      args: it
    metrics:
    - type: wer
      value: 24.29
      name: Test WER
    - type: cer
      value: 8.1
      name: Test CER
    - type: wer
      value: 17.36
      name: Test WER (+LM)
    - type: cer
      value: 7.94
      name: Test CER (+LM)
  - task:
      type: automatic-speech-recognition
      name: Automatic Speech Recognition
    dataset:
      name: Robust Speech Event - Test Data
      type: speech-recognition-community-v2/eval_data
      args: it
    metrics:
    - type: wer
      value: 33.66
      name: Test WER
---

<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->

# wav2vec2-xls-r-300m-italian-robust

This model is a fine-tuned version of [facebook/wav2vec2-xls-r-300m](https://huggingface.co/facebook/wav2vec2-xls-r-300m) on the Italian splits of the following datasets:
- Mozilla Foundation Common Voice V7 dataset
- [LibriSpeech multilingual](http://www.openslr.org/94)
- [TED multilingual](https://www.openslr.org/100/)
- [Voxforge](http://www.voxforge.org/it/Downloads)
- [M-AILABS Speech Dataset](https://www.caito.de/2019/01/the-m-ailabs-speech-dataset/) 
- [EuroParl-ST](https://www.mllp.upv.es/europarl-st/)
- [EMOVO](http://voice.fub.it/activities/corpora/emovo/index.html) 
- [MSPKA](http://www.mspkacorpus.it/) 

## Model description

More information needed

## Intended uses & limitations

More information needed

## Training and evaluation data

More information needed

## Training procedure

### Training hyperparameters

The following hyperparameters were used during training:
- learning_rate: 0.0003
- train_batch_size: 32
- eval_batch_size: 8
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_steps: 500
- num_epochs: 10.0
- mixed_precision_training: Native AMP

### Training results

| Training Loss | Epoch | Step  | Validation Loss | Wer    |
|:-------------:|:-----:|:-----:|:---------------:|:------:|
| No log        | 0.06  | 400   | 0.7508          | 0.7354 |
| 2.3127        | 0.11  | 800   | 0.5888          | 0.5882 |
| 0.7256        | 0.17  | 1200  | 0.5121          | 0.5247 |
| 0.6692        | 0.22  | 1600  | 0.4774          | 0.5028 |
| 0.6384        | 0.28  | 2000  | 0.4832          | 0.4885 |
| 0.6384        | 0.33  | 2400  | 0.4410          | 0.4581 |
| 0.6199        | 0.39  | 2800  | 0.4160          | 0.4331 |
| 0.5972        | 0.44  | 3200  | 0.4136          | 0.4275 |
| 0.6048        | 0.5   | 3600  | 0.4362          | 0.4538 |
| 0.5627        | 0.55  | 4000  | 0.4313          | 0.4469 |
| 0.5627        | 0.61  | 4400  | 0.4425          | 0.4579 |
| 0.5855        | 0.66  | 4800  | 0.3859          | 0.4133 |
| 0.5702        | 0.72  | 5200  | 0.3974          | 0.4097 |
| 0.55          | 0.77  | 5600  | 0.3931          | 0.4134 |
| 0.5624        | 0.83  | 6000  | 0.3900          | 0.4126 |
| 0.5624        | 0.88  | 6400  | 0.3622          | 0.3899 |
| 0.5615        | 0.94  | 6800  | 0.3755          | 0.4067 |
| 0.5472        | 0.99  | 7200  | 0.3980          | 0.4284 |
| 0.5663        | 1.05  | 7600  | 0.3553          | 0.3782 |
| 0.5189        | 1.1   | 8000  | 0.3538          | 0.3726 |
| 0.5189        | 1.16  | 8400  | 0.3425          | 0.3624 |
| 0.518         | 1.21  | 8800  | 0.3431          | 0.3651 |
| 0.5399        | 1.27  | 9200  | 0.3442          | 0.3573 |
| 0.5303        | 1.32  | 9600  | 0.3241          | 0.3404 |
| 0.5043        | 1.38  | 10000 | 0.3175          | 0.3378 |
| 0.5043        | 1.43  | 10400 | 0.3265          | 0.3501 |
| 0.4968        | 1.49  | 10800 | 0.3539          | 0.3703 |
| 0.5102        | 1.54  | 11200 | 0.3323          | 0.3506 |
| 0.5008        | 1.6   | 11600 | 0.3188          | 0.3433 |
| 0.4996        | 1.65  | 12000 | 0.3162          | 0.3388 |
| 0.4996        | 1.71  | 12400 | 0.3353          | 0.3552 |
| 0.5007        | 1.76  | 12800 | 0.3152          | 0.3317 |
| 0.4956        | 1.82  | 13200 | 0.3207          | 0.3430 |
| 0.5205        | 1.87  | 13600 | 0.3239          | 0.3430 |
| 0.4829        | 1.93  | 14000 | 0.3134          | 0.3266 |
| 0.4829        | 1.98  | 14400 | 0.3039          | 0.3291 |
| 0.5251        | 2.04  | 14800 | 0.2944          | 0.3169 |
| 0.4872        | 2.09  | 15200 | 0.3061          | 0.3228 |
| 0.4805        | 2.15  | 15600 | 0.3034          | 0.3152 |
| 0.4949        | 2.2   | 16000 | 0.2896          | 0.3066 |
| 0.4949        | 2.26  | 16400 | 0.3059          | 0.3344 |
| 0.468         | 2.31  | 16800 | 0.2932          | 0.3111 |
| 0.4637        | 2.37  | 17200 | 0.2890          | 0.3074 |
| 0.4638        | 2.42  | 17600 | 0.2893          | 0.3112 |
| 0.4728        | 2.48  | 18000 | 0.2832          | 0.3013 |
| 0.4728        | 2.54  | 18400 | 0.2921          | 0.3065 |
| 0.456         | 2.59  | 18800 | 0.2961          | 0.3104 |
| 0.4628        | 2.65  | 19200 | 0.2886          | 0.3109 |
| 0.4534        | 2.7   | 19600 | 0.2828          | 0.3020 |
| 0.4578        | 2.76  | 20000 | 0.2805          | 0.3026 |
| 0.4578        | 2.81  | 20400 | 0.2796          | 0.2987 |
| 0.4702        | 2.87  | 20800 | 0.2748          | 0.2906 |
| 0.4487        | 2.92  | 21200 | 0.2819          | 0.3008 |
| 0.4411        | 2.98  | 21600 | 0.2722          | 0.2868 |
| 0.4631        | 3.03  | 22000 | 0.2814          | 0.2974 |
| 0.4631        | 3.09  | 22400 | 0.2762          | 0.2894 |
| 0.4591        | 3.14  | 22800 | 0.2802          | 0.2980 |
| 0.4349        | 3.2   | 23200 | 0.2748          | 0.2951 |
| 0.4339        | 3.25  | 23600 | 0.2792          | 0.2927 |
| 0.4254        | 3.31  | 24000 | 0.2712          | 0.2911 |
| 0.4254        | 3.36  | 24400 | 0.2719          | 0.2892 |
| 0.4317        | 3.42  | 24800 | 0.2686          | 0.2861 |
| 0.4282        | 3.47  | 25200 | 0.2632          | 0.2861 |
| 0.4262        | 3.53  | 25600 | 0.2633          | 0.2817 |
| 0.4162        | 3.58  | 26000 | 0.2561          | 0.2765 |
| 0.4162        | 3.64  | 26400 | 0.2613          | 0.2847 |
| 0.414         | 3.69  | 26800 | 0.2679          | 0.2824 |
| 0.4132        | 3.75  | 27200 | 0.2569          | 0.2813 |
| 0.405         | 3.8   | 27600 | 0.2589          | 0.2785 |
| 0.4128        | 3.86  | 28000 | 0.2611          | 0.2714 |
| 0.4128        | 3.91  | 28400 | 0.2548          | 0.2731 |
| 0.4174        | 3.97  | 28800 | 0.2574          | 0.2716 |
| 0.421         | 4.02  | 29200 | 0.2529          | 0.2700 |
| 0.4109        | 4.08  | 29600 | 0.2547          | 0.2682 |
| 0.4027        | 4.13  | 30000 | 0.2578          | 0.2758 |
| 0.4027        | 4.19  | 30400 | 0.2511          | 0.2715 |
| 0.4075        | 4.24  | 30800 | 0.2507          | 0.2601 |
| 0.3947        | 4.3   | 31200 | 0.2552          | 0.2711 |
| 0.4042        | 4.35  | 31600 | 0.2530          | 0.2695 |
| 0.3907        | 4.41  | 32000 | 0.2543          | 0.2738 |
| 0.3907        | 4.46  | 32400 | 0.2491          | 0.2629 |
| 0.3895        | 4.52  | 32800 | 0.2471          | 0.2611 |
| 0.3901        | 4.57  | 33200 | 0.2404          | 0.2559 |
| 0.3818        | 4.63  | 33600 | 0.2378          | 0.2583 |
| 0.3831        | 4.68  | 34000 | 0.2341          | 0.2499 |
| 0.3831        | 4.74  | 34400 | 0.2379          | 0.2560 |
| 0.3808        | 4.79  | 34800 | 0.2418          | 0.2553 |
| 0.4015        | 4.85  | 35200 | 0.2378          | 0.2565 |
| 0.407         | 4.9   | 35600 | 0.2375          | 0.2535 |
| 0.38          | 4.96  | 36000 | 0.2329          | 0.2451 |
| 0.38          | 5.02  | 36400 | 0.2541          | 0.2737 |
| 0.3753        | 5.07  | 36800 | 0.2475          | 0.2580 |
| 0.3701        | 5.13  | 37200 | 0.2356          | 0.2484 |
| 0.3627        | 5.18  | 37600 | 0.2422          | 0.2552 |
| 0.3652        | 5.24  | 38000 | 0.2353          | 0.2518 |
| 0.3652        | 5.29  | 38400 | 0.2328          | 0.2452 |
| 0.3667        | 5.35  | 38800 | 0.2358          | 0.2478 |
| 0.3711        | 5.4   | 39200 | 0.2340          | 0.2463 |
| 0.361         | 5.46  | 39600 | 0.2375          | 0.2452 |
| 0.3655        | 5.51  | 40000 | 0.2292          | 0.2387 |
| 0.3655        | 5.57  | 40400 | 0.2330          | 0.2432 |
| 0.3637        | 5.62  | 40800 | 0.2242          | 0.2396 |
| 0.3516        | 5.68  | 41200 | 0.2284          | 0.2394 |
| 0.3498        | 5.73  | 41600 | 0.2254          | 0.2343 |
| 0.3626        | 5.79  | 42000 | 0.2191          | 0.2318 |
| 0.3626        | 5.84  | 42400 | 0.2261          | 0.2399 |
| 0.3719        | 5.9   | 42800 | 0.2261          | 0.2411 |
| 0.3563        | 5.95  | 43200 | 0.2259          | 0.2416 |
| 0.3574        | 6.01  | 43600 | 0.2148          | 0.2249 |
| 0.3339        | 6.06  | 44000 | 0.2173          | 0.2237 |
| 0.3339        | 6.12  | 44400 | 0.2133          | 0.2238 |
| 0.3303        | 6.17  | 44800 | 0.2193          | 0.2297 |
| 0.331         | 6.23  | 45200 | 0.2122          | 0.2205 |
| 0.3372        | 6.28  | 45600 | 0.2083          | 0.2215 |
| 0.3427        | 6.34  | 46000 | 0.2079          | 0.2163 |
| 0.3427        | 6.39  | 46400 | 0.2072          | 0.2154 |
| 0.3215        | 6.45  | 46800 | 0.2067          | 0.2170 |
| 0.3246        | 6.5   | 47200 | 0.2089          | 0.2183 |
| 0.3217        | 6.56  | 47600 | 0.2030          | 0.2130 |
| 0.3309        | 6.61  | 48000 | 0.2020          | 0.2123 |
| 0.3309        | 6.67  | 48400 | 0.2054          | 0.2133 |
| 0.3343        | 6.72  | 48800 | 0.2013          | 0.2128 |
| 0.3213        | 6.78  | 49200 | 0.1971          | 0.2064 |
| 0.3145        | 6.83  | 49600 | 0.2029          | 0.2107 |
| 0.3274        | 6.89  | 50000 | 0.2038          | 0.2136 |
| 0.3274        | 6.94  | 50400 | 0.1991          | 0.2064 |
| 0.3202        | 7.0   | 50800 | 0.1970          | 0.2083 |
| 0.314         | 7.05  | 51200 | 0.1970          | 0.2035 |
| 0.3031        | 7.11  | 51600 | 0.1943          | 0.2053 |
| 0.3004        | 7.16  | 52000 | 0.1942          | 0.1985 |
| 0.3004        | 7.22  | 52400 | 0.1941          | 0.2003 |
| 0.3029        | 7.27  | 52800 | 0.1936          | 0.2008 |
| 0.2915        | 7.33  | 53200 | 0.1935          | 0.1995 |
| 0.3005        | 7.38  | 53600 | 0.1943          | 0.2032 |
| 0.2984        | 7.44  | 54000 | 0.1913          | 0.1978 |
| 0.2984        | 7.5   | 54400 | 0.1907          | 0.1965 |
| 0.2978        | 7.55  | 54800 | 0.1881          | 0.1958 |
| 0.2944        | 7.61  | 55200 | 0.1887          | 0.1966 |
| 0.3004        | 7.66  | 55600 | 0.1870          | 0.1930 |
| 0.3099        | 7.72  | 56000 | 0.1906          | 0.1976 |
| 0.3099        | 7.77  | 56400 | 0.1856          | 0.1939 |
| 0.2917        | 7.83  | 56800 | 0.1883          | 0.1961 |
| 0.2924        | 7.88  | 57200 | 0.1864          | 0.1930 |
| 0.3061        | 7.94  | 57600 | 0.1831          | 0.1872 |
| 0.2834        | 7.99  | 58000 | 0.1835          | 0.1896 |
| 0.2834        | 8.05  | 58400 | 0.1828          | 0.1875 |
| 0.2807        | 8.1   | 58800 | 0.1820          | 0.1874 |
| 0.2765        | 8.16  | 59200 | 0.1807          | 0.1869 |
| 0.2737        | 8.21  | 59600 | 0.1810          | 0.1848 |
| 0.2722        | 8.27  | 60000 | 0.1795          | 0.1829 |
| 0.2722        | 8.32  | 60400 | 0.1785          | 0.1826 |
| 0.272         | 8.38  | 60800 | 0.1802          | 0.1836 |
| 0.268         | 8.43  | 61200 | 0.1771          | 0.1813 |
| 0.2695        | 8.49  | 61600 | 0.1773          | 0.1821 |
| 0.2686        | 8.54  | 62000 | 0.1756          | 0.1814 |
| 0.2686        | 8.6   | 62400 | 0.1740          | 0.1770 |
| 0.2687        | 8.65  | 62800 | 0.1748          | 0.1769 |
| 0.2686        | 8.71  | 63200 | 0.1734          | 0.1766 |
| 0.2683        | 8.76  | 63600 | 0.1722          | 0.1759 |
| 0.2686        | 8.82  | 64000 | 0.1719          | 0.1760 |
| 0.2686        | 8.87  | 64400 | 0.1720          | 0.1743 |
| 0.2626        | 8.93  | 64800 | 0.1696          | 0.1742 |
| 0.2587        | 8.98  | 65200 | 0.1690          | 0.1718 |
| 0.2554        | 9.04  | 65600 | 0.1704          | 0.1722 |
| 0.2537        | 9.09  | 66000 | 0.1702          | 0.1721 |
| 0.2537        | 9.15  | 66400 | 0.1696          | 0.1717 |
| 0.2511        | 9.2   | 66800 | 0.1685          | 0.1701 |
| 0.2473        | 9.26  | 67200 | 0.1696          | 0.1704 |
| 0.2458        | 9.31  | 67600 | 0.1686          | 0.1698 |
| 0.2476        | 9.37  | 68000 | 0.1675          | 0.1687 |
| 0.2476        | 9.42  | 68400 | 0.1659          | 0.1673 |
| 0.2463        | 9.48  | 68800 | 0.1664          | 0.1674 |
| 0.2481        | 9.53  | 69200 | 0.1661          | 0.1670 |
| 0.2411        | 9.59  | 69600 | 0.1658          | 0.1663 |
| 0.2445        | 9.64  | 70000 | 0.1652          | 0.1660 |
| 0.2445        | 9.7   | 70400 | 0.1646          | 0.1654 |
| 0.2407        | 9.75  | 70800 | 0.1646          | 0.1641 |
| 0.2483        | 9.81  | 71200 | 0.1641          | 0.1641 |
| 0.245         | 9.86  | 71600 | 0.1635          | 0.1643 |
| 0.2402        | 9.92  | 72000 | 0.1638          | 0.1634 |
| 0.2402        | 9.98  | 72400 | 0.1633          | 0.1636 |


### Framework versions

- Transformers 4.17.0.dev0
- Pytorch 1.10.2+cu102
- Datasets 1.18.3
- Tokenizers 0.11.0