audio_conversation / text_to_audio.py
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Create text_to_audio.py
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from transformers import pipeline
from datasets import load_dataset
import soundfile as sf
import torch
synthesiser = pipeline("text-to-speech", "microsoft/speecht5_tts")
def text_to_audio(text):
# clean the response and max_size is 600
text_clean = text.replace('\n', '').replace('*', '')
text_550 = text_clean[:590]
# get speaker embeddings
embeddings_dataset = load_dataset("Matthijs/cmu-arctic-xvectors", split="validation")
speaker_embedding = torch.tensor(embeddings_dataset[7306]["xvector"]).unsqueeze(0)
# You can replace this embedding with your own as well.
speech = synthesiser(text_550, forward_params={"speaker_embeddings": speaker_embedding})
sf.write("output.wav", speech["audio"], samplerate=speech["sampling_rate"])
audio_file = open("output.wav", "rb")
audio_bytes = audio_file.read()
return audio_bytes