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import gradio as gr | |
import torch | |
from espnet2.bin.tts_inference import Text2Speech | |
from espnet_model_zoo.downloader import ModelDownloader | |
from transformers import AutoTokenizer | |
# تحميل قائمة التوكينات | |
with open('tokens.txt', 'r', encoding='utf-8') as f: | |
token_list = [line.strip() for line in f] | |
# تحميل النموذج المدرب | |
model_path = 'exp/tts_fastspeech2/train.total_count.ave_10best.pth' # تأكد من مسار النموذج الصحيح | |
config_path = 'exp/tts_fastspeech2/config.yaml' | |
# إعداد Text2Speech | |
device = 'cuda' if torch.cuda.is_available() else 'cpu' | |
text2speech = Text2Speech.from_pretrained( | |
model_file=model_path, | |
config_file=config_path, | |
device=device, | |
threshold=0.5, | |
maxlenratio=10.0, | |
minlenratio=0.0, | |
use_att_constraint=False, | |
backward_window=1, | |
forward_window=3, | |
) | |
# دالة لتحويل النص إلى كلام | |
def tts_najdi(text): | |
with torch.no_grad(): | |
wav = text2speech(text)["wav"] | |
return wav.view(-1).cpu().numpy(), 22050 # تأكد من استخدام معدل العينة الصحيح | |
# واجهة Gradio | |
iface = gr.Interface(fn=tts_najdi, inputs="text", outputs="audio", title="Najdi TTS Model") | |
iface.launch(server_name="0.0.0.0", server_port=7860) | |