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import argparse
import os
import torchaudio
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from api import TextToSpeech , MODELS_DIR
from utils . audio import load_voice
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if __name__ == ' __main__ ' :
parser = argparse . ArgumentParser ( )
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parser . add_argument ( ' --text ' , type = str , help = ' Text to speak. ' , default = " The expressiveness of autoregressive transformers is literally nuts! I absolutely adore them. " )
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parser . add_argument ( ' --voice ' , type = str , help = ' Selects the voice to use for generation. See options in voices/ directory (and add your own!) '
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' Use the & character to join two voices together. Use a comma to perform inference on multiple voices. ' , default = ' random ' )
parser . add_argument ( ' --preset ' , type = str , help = ' Which voice preset to use. ' , default = ' fast ' )
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parser . add_argument ( ' --voice_diversity_intelligibility_slider ' , type = float ,
help = ' How to balance vocal diversity with the quality/intelligibility of the spoken text. 0 means highly diverse voice (not recommended), 1 means maximize intellibility ' ,
default = .5 )
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parser . add_argument ( ' --output_path ' , type = str , help = ' Where to store outputs. ' , default = ' results/ ' )
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parser . add_argument ( ' --model_dir ' , type = str , help = ' Where to find pretrained model checkpoints. Tortoise automatically downloads these to .models, so this '
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' should only be specified if you have custom checkpoints. ' , default = MODELS_DIR )
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parser . add_argument ( ' --candidates ' , type = int , help = ' How many output candidates to produce per-voice. ' , default = 3 )
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args = parser . parse_args ( )
os . makedirs ( args . output_path , exist_ok = True )
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tts = TextToSpeech ( models_dir = args . model_dir )
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selected_voices = args . voice . split ( ' , ' )
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for k , voice in enumerate ( selected_voices ) :
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voice_samples , conditioning_latents = load_voice ( voice )
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gen = tts . tts_with_preset ( args . text , k = args . candidates , voice_samples = voice_samples , conditioning_latents = conditioning_latents ,
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preset = args . preset , clvp_cvvp_slider = args . voice_diversity_intelligibility_slider )
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if isinstance ( gen , list ) :
for j , g in enumerate ( gen ) :
torchaudio . save ( os . path . join ( args . output_path , f ' { voice } _ { k } _ { j } .wav ' ) , g . squeeze ( 0 ) . cpu ( ) , 24000 )
else :
torchaudio . save ( os . path . join ( args . output_path , f ' { voice } _ { k } .wav ' ) , gen . squeeze ( 0 ) . cpu ( ) , 24000 )
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