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  1. app.py +29 -0
  2. requirements.txt +2 -0
app.py ADDED
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+ import gradio as gr
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+ import torch
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+ from transformers import RobertaTokenizerFast, BertTokenizerFast, EncoderDecoderModel
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+
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+
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+ models_paths = dict()
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+ models_paths["fr"] = "mrm8488/camembert2camembert_shared-finetuned-french-summarization"
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+ models_paths["de"] = "mrm8488/bert2bert_shared-german-finetuned-summarization"
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+ models_paths["tu"] = "mrm8488/bert2bert_shared-turkish-summarization"
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+ models_paths["es"] = "Narrativa/bsc_roberta2roberta_shared-spanish-finetuned-mlsum-summarization"
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+
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+
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+ device = 'cuda' if torch.cuda.is_available() else 'cpu'
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+
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+
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+ def summarize(lang, text):
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+ tokenizer = RobertaTokenizerFast.from_pretrained(models_paths[lang]) if lang in [
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+ "fr", "es"] else BertTokenizerFast.from_pretrained(models_paths[lang])
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+ model = EncoderDecoderModel.from_pretrained(models_paths[lang]).to(device)
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+ inputs = tokenizer([text], padding="max_length",
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+ truncation=True, max_length=512, return_tensors="pt")
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+ input_ids = inputs.input_ids.to(device)
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+ attention_mask = inputs.attention_mask.to(device)
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+ output = model.generate(input_ids, attention_mask=attention_mask)
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+ return tokenizer.decode(output[0], skip_special_tokens=True)
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+
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+
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+ gr.Interface(fn=summarize, inputs=[gr.inputs.CheckboxGroup(["fr", "de", "tu", "es"]), gr.inputs.Textbox(
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+ lines=7, label="Input Text")], outputs="text").launch(inline=False)
requirements.txt ADDED
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+ transformers
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+ torch