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Update app.py
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app.py
CHANGED
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@@ -14,6 +14,9 @@ word_tokenizer = hazm.WordTokenizer()
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tagger_path = hf_hub_download(repo_id="gyroing/HAZM_POS_TAGGER", filename="pos_tagger.model")
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tagger = hazm.POSTagger(model=tagger_path)
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def preprocess_text(text: str) -> typing.List[typing.List[str]]:
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"""Split/normalize text into sentences/words with hazm"""
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@@ -43,10 +46,6 @@ def fix_words(words: typing.List[str]) -> typing.List[str]:
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def synthesize_speech(text):
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model_path = hf_hub_download(repo_id="gyroing/Persian-Piper-Model-gyro", filename="fa_IR-gyro-meduim.onnx")
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config_path = hf_hub_download(repo_id="gyroing/Persian-Piper-Model-gyro", filename="fa_IR-gyro-meduim.onnx.json")
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voice = PiperVoice.load(model_path, config_path)
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# Create an in-memory buffer for the WAV file
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buffer = BytesIO()
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with wave.open(buffer, 'wb') as wav_file:
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tagger_path = hf_hub_download(repo_id="gyroing/HAZM_POS_TAGGER", filename="pos_tagger.model")
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tagger = hazm.POSTagger(model=tagger_path)
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model_path = hf_hub_download(repo_id="gyroing/Persian-Piper-Model-gyro", filename="fa_IR-gyro-meduim.onnx")
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config_path = hf_hub_download(repo_id="gyroing/Persian-Piper-Model-gyro", filename="fa_IR-gyro-meduim.onnx.json")
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voice = PiperVoice.load(model_path, config_path)
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def preprocess_text(text: str) -> typing.List[typing.List[str]]:
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"""Split/normalize text into sentences/words with hazm"""
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def synthesize_speech(text):
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# Create an in-memory buffer for the WAV file
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buffer = BytesIO()
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with wave.open(buffer, 'wb') as wav_file:
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