Abhiverse01 commited on
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1f3cb28
1 Parent(s): a343ac9

Create app.py

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  1. app.py +60 -0
app.py ADDED
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+ import torch
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+ from transformers import GPT2LMHeadModel, GPT2Tokenizer
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+
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+
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+ def select_model():
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+ while True:
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+ print("\nAvailable GPT-2 Models:")
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+ print("1. gpt2 (Small)")
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+ print("2. gpt2-medium (Medium)")
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+ print("3. gpt2-large (Large)")
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+ print("4. gpt2-xl (Extra Large)")
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+ choice = input("Select a model (1/2/3/4): ")
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+
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+ if choice == "1":
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+ return "gpt2"
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+ elif choice == "2":
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+ return "gpt2-medium"
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+ elif choice == "3":
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+ return "gpt2-large"
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+ elif choice == "4":
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+ return "gpt2-xl"
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+ else:
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+ print("Invalid choice. Please select a valid model.")
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+
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+
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+ def enhance_prompt(prompt, model_name, max_length=50, num_return_sequences=1):
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+ # Load the selected pre-trained GPT-2 model and tokenizer
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+ model = GPT2LMHeadModel.from_pretrained(model_name)
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+ tokenizer = GPT2Tokenizer.from_pretrained(model_name)
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+
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+ # Tokenize the prompt
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+ input_ids = tokenizer.encode(prompt, return_tensors="pt")
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+
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+ # Generate text based on the prompt
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+ output = model.generate(
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+ input_ids,
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+ max_length=max_length,
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+ num_return_sequences=num_return_sequences,
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+ no_repeat_ngram_size=2, # Avoid repetitive phrases
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+ top_k=50, # Limit choices to top-k tokens
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+ top_p=0.95, # Control diversity with nucleus sampling
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+ temperature=0.7 # Adjusts the randomness of the output
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+ )
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+
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+ # Decode and return the generated text
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+ enhanced_prompts = [tokenizer.decode(output_item, skip_special_tokens=True) for output_item in output]
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+ return enhanced_prompts
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+
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+
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+ if __name__ == "__main__":
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+ while True:
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+ model_name = select_model()
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+ prompt = input("Enter a prompt (or 'exit' to quit): ")
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+ if prompt.lower() == "exit":
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+ break
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+
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+ enhanced_prompts = enhance_prompt(prompt, model_name)
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+ print("\nEnhanced Prompts:")
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+ for idx, enhanced_prompt in enumerate(enhanced_prompts):
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+ print(f"Enhanced Prompt {idx + 1}: {enhanced_prompt}\n")