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--- |
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license: openrail |
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datasets: |
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- shareAI/ShareGPT-Chinese-English-90k |
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- shareAI/CodeChat |
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language: |
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- en |
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library_name: transformers |
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tags: |
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- code |
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--- |
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Code: |
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(just run it, and the model weights will be auto download) |
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Github:https://github.com/CrazyBoyM/CodeLLaMA-chat |
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``` |
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# from Firefly |
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from transformers import AutoModelForCausalLM, AutoTokenizer |
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import torch |
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def main(): |
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model_name = 'shareAI/CodeLLaMA-chat-13b-Chinese' |
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device = 'cuda' |
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max_new_tokens = 500 # max token for reply. |
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history_max_len = 1000 # max token in history |
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top_p = 0.9 |
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temperature = 0.35 |
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repetition_penalty = 1.0 |
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model = AutoModelForCausalLM.from_pretrained( |
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model_name, |
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trust_remote_code=True, |
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low_cpu_mem_usage=True, |
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torch_dtype=torch.float16, |
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device_map='auto' |
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).to(device).eval() |
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tokenizer = AutoTokenizer.from_pretrained( |
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model_name, |
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trust_remote_code=True, |
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use_fast=False |
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) |
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history_token_ids = torch.tensor([[]], dtype=torch.long) |
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user_input = input('User:') |
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while True: |
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input_ids = tokenizer(user_input, return_tensors="pt", add_special_tokens=False).input_ids |
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eos_token_id = torch.tensor([[tokenizer.eos_token_id]], dtype=torch.long) |
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user_input_ids = torch.concat([input_ids, eos_token_id], dim=1) |
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history_token_ids = torch.concat((history_token_ids, user_input_ids), dim=1) |
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model_input_ids = history_token_ids[:, -history_max_len:].to(device) |
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with torch.no_grad(): |
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outputs = model.generate( |
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input_ids=model_input_ids, max_new_tokens=max_new_tokens, do_sample=True, top_p=top_p, |
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temperature=temperature, repetition_penalty=repetition_penalty, eos_token_id=tokenizer.eos_token_id |
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) |
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model_input_ids_len = model_input_ids.size(1) |
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response_ids = outputs[:, model_input_ids_len:] |
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history_token_ids = torch.concat((history_token_ids, response_ids.cpu()), dim=1) |
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response = tokenizer.batch_decode(response_ids) |
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print("Bot:" + response[0].strip().replace(tokenizer.eos_token, "")) |
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user_input = input('User:') |
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if __name__ == '__main__': |
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main() |
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``` |