Created
November 22, 2023 14:36
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import transformers | |
model_name = 'Intel/neural-chat-7b-v3-1' | |
model = transformers.AutoModelForCausalLM.from_pretrained(model_name) | |
tokenizer = transformers.AutoTokenizer.from_pretrained(model_name) | |
def generate_response(system_input, user_input): | |
# Format the input using the provided template | |
prompt = f"### System:\n{system_input}\n### User:\n{user_input}\n### Assistant:\n" | |
# Tokenize and encode the prompt | |
inputs = tokenizer.encode(prompt, return_tensors="pt") | |
# Generate a response | |
outputs = model.generate(inputs, max_length=1000, num_return_sequences=1) | |
response = tokenizer.decode(outputs[0], skip_special_tokens=True) | |
# Extract only the assistant's response | |
return response.split("### Assistant:\n")[-1] | |
# Example usage | |
system_input = "Please answer all questions to the best of your ability." | |
user_input = "How does the neural-chat-7b-v3-1 model work?" | |
response = generate_response(system_input, user_input) | |
# Generate | |
print(response) |
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