somaali-tts / app.py
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Create app.py
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import gradio as gr
from transformers import VitsModel, AutoTokenizer
import torch
import scipy.io.wavfile
import tempfile
# Load the Somali TTS model
model = VitsModel.from_pretrained("facebook/mms-tts-som")
tokenizer = AutoTokenizer.from_pretrained("facebook/mms-tts-som")
def somali_text_to_speech(text):
inputs = tokenizer(text, return_tensors="pt")
with torch.no_grad():
output = model(**inputs)
waveform = output.waveform.squeeze().cpu().numpy()
# Save waveform to a temporary WAV file
with tempfile.NamedTemporaryFile(suffix=".wav", delete=False) as tmp:
scipy.io.wavfile.write(tmp.name, rate=model.config.sampling_rate, data=waveform)
return tmp.name
# Launch Gradio Interface
gr.Interface(
fn=somali_text_to_speech,
inputs=gr.Textbox(label="Enter Somali Text"),
outputs=gr.Audio(label="Generated Somali Speech"),
title="Somali Text-to-Speech",
description="Type Somali text and hear it spoken using Hugging Face's VitsModel."
).launch(share=True)