Commit 
							
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						4629510
	
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							0dc87ee
								
Create handle.py
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        handle.py
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            from typing import  Dict
         
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            import librosa
         
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            import numpy as np
         
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            import torch
         
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            import pyewts
         
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            import noisereduce as nr
         
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            from transformers import SpeechT5Processor, SpeechT5ForTextToSpeech, SpeechT5HifiGan
         
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            from num2tib.core import convert
         
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            from num2tib.core import convert2text
         
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            import re
         
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            converter = pyewts.pyewts()
         
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            def replace_numbers_with_convert(sentence, wylie=True):
         
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                pattern = r'\d+(\.\d+)?'
         
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                def replace(match):
         
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                    return convert(match.group(), wylie)
         
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                result = re.sub(pattern, replace, sentence)
         
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                return result
         
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            def cleanup_text(inputs):
         
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                for src, dst in replacements:
         
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                    inputs = inputs.replace(src, dst)
         
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                return inputs
         
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            speaker_embeddings = {
         
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                "Lhasa(female)": "female_2.npy",
         
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            }
         
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            replacements = [
         
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                ('_', '_'),
         
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                ('*', 'v'),
         
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                ('`', ';'),
         
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                ('~', ','),
         
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                ('+', ','),
         
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                ('\\', ';'),
         
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                ('|', ';'),
         
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                ('β',''),
         
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                ('β','')
         
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            ]
         
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            class EndpointHandler():
         
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                def __init__(self, path=""):
         
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                    # load the model
         
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                    self.processor = SpeechT5Processor.from_pretrained("TenzinGayche/TTS_run3_ep20_174k_b")
         
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                    self.model = SpeechT5ForTextToSpeech.from_pretrained("TenzinGayche/TTS_run3_ep20_174k_b")
         
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                    self.model.to('cuda')
         
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                    self.vocoder = SpeechT5HifiGan.from_pretrained("microsoft/speecht5_hifigan")
         
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                def __call__(self, data: Dict[str]) -> Dict[str, str]:
         
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                    """
         
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                    Args:
         
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                        data (:obj:):
         
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                            includes the deserialized audio file as bytes
         
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                    Return:
         
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                        A :obj:`dict`:. base64 encoded image
         
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                    """
         
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                    # process input
         
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                    if len(text.strip()) == 0:
         
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                        return (16000, np.zeros(0).astype(np.int16))
         
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                    text = converter.toWylie(text)
         
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                    text=cleanup_text(text)
         
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                    text=replace_numbers_with_convert(text)
         
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                    inputs = self.processor(text=text, return_tensors="pt")
         
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                    # limit input length
         
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                    input_ids = inputs["input_ids"]
         
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                    input_ids = input_ids[..., :self.model.config.max_text_positions]
         
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                    speaker_embedding = np.load(speaker_embeddings['Lhasa(female)'])
         
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                    speaker_embedding = torch.tensor(speaker_embedding)
         
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                    speech = self.model.generate_speech(input_ids.to('cuda'), speaker_embedding.to('cuda'), vocoder=vocoder.to('cuda'))
         
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                    speech = nr.reduce_noise(y=speech.to('cpu'), sr=16000)
         
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                    return (16000, speech)
         
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