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2e0f07c
1
Parent(s):
fcc1ca4
Added topk and topp
Browse files
app.py
CHANGED
@@ -23,7 +23,9 @@ The ship was on early Wednesday ordered to return to the Kai Tak Cruise Terminal
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sample_texts = [[text_1 ], [text_2]]
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desc = """
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<p style='text-align: center; color: #FF7F50'>This is an abstractive text summarizer app using fine-tuned bart-large-cnn model. The abstractive approach involves rephrasing the complete document while capturing the complete meaning of the document. This type of summarization provides more human-like summary.
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"""
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@@ -35,7 +37,7 @@ model = AutoModelForSeq2SeqLM.from_pretrained(model_name)
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def summarize(inp):
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inp = inp.replace('\n','')
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inp = tokenizer.encode(inp, return_tensors='pt', max_length=1024)
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summary_ids = model.generate(inp, num_beams=4, max_length=150, early_stopping=True)
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summary = tokenizer.decode(summary_ids[0], skip_special_tokens=True)
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return summary
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sample_texts = [[text_1 ], [text_2]]
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desc = """
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<p style='text-align: center; color: #FF7F50'>This is an abstractive text summarizer app using fine-tuned bart-large-cnn model. The abstractive approach involves rephrasing the complete document while capturing the complete meaning of the document. This type of summarization provides more human-like summary.
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<p style='text-align: center; color: #FF7F50'> Note: For faster summaries input smaller texts.</'p>
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<p style='text-align: center; color: #FF7F50'>Sample text inputs are provided at the bottom!</p>
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"""
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def summarize(inp):
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inp = inp.replace('\n','')
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inp = tokenizer.encode(inp, return_tensors='pt', max_length=1024)
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summary_ids = model.generate(inp, num_beams=4, max_length=150, early_stopping=True, do_sample=True, top_k=50, top_p=0.95)
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summary = tokenizer.decode(summary_ids[0], skip_special_tokens=True)
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return summary
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