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Update README.md

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@@ -25,7 +25,7 @@ model-index:
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  type: wer
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  value: 32.89
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  ---
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- # Wav2Vec2-Large-XLSR-53-Odia
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  Fine-tuned [facebook/wav2vec2-large-xlsr-53](https://huggingface.co/facebook/wav2vec2-large-xlsr-53) on Romansh Vallader using the [Common Voice](https://huggingface.co/datasets/common_voice).
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  When using this model, make sure that your speech input is sampled at 16kHz.
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  ## Usage
@@ -66,14 +66,14 @@ wer = load_metric("wer")
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  processor = Wav2Vec2Processor.from_pretrained("anuragshas/wav2vec2-large-xlsr-53-rm-vallader")
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  model = Wav2Vec2ForCTC.from_pretrained("anuragshas/wav2vec2-large-xlsr-53-rm-vallader")
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  model.to("cuda")
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- chars_to_ignore_regex = '[\,\?\.\!\-\;\:\"\β€œ\%\”\β€ž\–\…\Β«\Β»]'
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  resampler = torchaudio.transforms.Resample(48_000, 16_000)
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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 speech_file_to_array_fn(batch):
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  batch["sentence"] = re.sub('’ ',' ',batch["sentence"])
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  batch["sentence"] = re.sub(' β€˜',' ',batch["sentence"])
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- batch["sentence"] = re.sub('’|β€˜','\'',batch["sentence"])
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  batch["sentence"] = re.sub(chars_to_ignore_regex, '', batch["sentence"]).lower()
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  speech_array, sampling_rate = torchaudio.load(batch["path"])
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  batch["speech"] = resampler(speech_array).squeeze().numpy()
 
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  type: wer
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  value: 32.89
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  ---
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+ # Wav2Vec2-Large-XLSR-53-Romansh Vallader
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  Fine-tuned [facebook/wav2vec2-large-xlsr-53](https://huggingface.co/facebook/wav2vec2-large-xlsr-53) on Romansh Vallader using the [Common Voice](https://huggingface.co/datasets/common_voice).
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  When using this model, make sure that your speech input is sampled at 16kHz.
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  ## Usage
 
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  processor = Wav2Vec2Processor.from_pretrained("anuragshas/wav2vec2-large-xlsr-53-rm-vallader")
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  model = Wav2Vec2ForCTC.from_pretrained("anuragshas/wav2vec2-large-xlsr-53-rm-vallader")
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  model.to("cuda")
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+ chars_to_ignore_regex = '[\\,\\?\\.\\!\\-\\;\\:\\"\\β€œ\\%\\”\\β€ž\\–\\…\\Β«\\Β»]'
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  resampler = torchaudio.transforms.Resample(48_000, 16_000)
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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 speech_file_to_array_fn(batch):
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  batch["sentence"] = re.sub('’ ',' ',batch["sentence"])
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  batch["sentence"] = re.sub(' β€˜',' ',batch["sentence"])
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+ batch["sentence"] = re.sub('’|β€˜','\\'',batch["sentence"])
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  batch["sentence"] = re.sub(chars_to_ignore_regex, '', batch["sentence"]).lower()
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  speech_array, sampling_rate = torchaudio.load(batch["path"])
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  batch["speech"] = resampler(speech_array).squeeze().numpy()