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Update README.md

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  1. README.md +3 -13
README.md CHANGED
@@ -87,18 +87,8 @@ We suggest using [LMDeploy](https://github.com/InternLM/LMDeploy)(>=0.2.1) for i
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  from lmdeploy import pipeline, TurbomindEngineConfig, ChatTemplateConfig
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  backend_config = TurbomindEngineConfig(model_name='internlm2-chat-7b', tp=1, cache_max_entry_count=0.3)
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- chat_template = ChatTemplateConfig(model_name='internlm2-chat-7b',
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- system='',
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- eosys='',
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- meta_instruction='',
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- user='<|im_start|>user\n',
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- assistant='<|im_start|>assistant\n',
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- eoh='<|im_end|>\n',
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- eoa='<|im_end|>\n',
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- stop_words=['<|im_end|>', '<|action_end|>'])
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- pipe = pipeline(model_path='internlm/internlm2-math-7b',
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- chat_template_config=chat_template,
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- backend_config=backend_config)
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  problem = '1+1='
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  result = pipe([problem], request_output_len=1024, top_k=1)
@@ -112,7 +102,7 @@ tokenizer = AutoTokenizer.from_pretrained("internlm/internlm2-math-7b", trust_re
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  # Set `torch_dtype=torch.float16` to load model in float16, otherwise it will be loaded as float32 and might cause OOM Error.
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  model = AutoModelForCausalLM.from_pretrained("internlm/internlm2-math-7b", trust_remote_code=True, torch_dtype=torch.float16).cuda()
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  model = model.eval()
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- response, history = model.chat(tokenizer, "1+1=", history=[])
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  print(response)
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  ```
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  from lmdeploy import pipeline, TurbomindEngineConfig, ChatTemplateConfig
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  backend_config = TurbomindEngineConfig(model_name='internlm2-chat-7b', tp=1, cache_max_entry_count=0.3)
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+ chat_template = ChatTemplateConfig(model_name='internlm2-chat-7b', system='', eosys='', meta_instruction='')
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+ pipe = pipeline(model_path='internlm/internlm2-math-7b', chat_template_config=chat_template, backend_config=backend_config)
 
 
 
 
 
 
 
 
 
 
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  problem = '1+1='
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  result = pipe([problem], request_output_len=1024, top_k=1)
 
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  # Set `torch_dtype=torch.float16` to load model in float16, otherwise it will be loaded as float32 and might cause OOM Error.
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  model = AutoModelForCausalLM.from_pretrained("internlm/internlm2-math-7b", trust_remote_code=True, torch_dtype=torch.float16).cuda()
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  model = model.eval()
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+ response, history = model.chat(tokenizer, "1+1=", history=[], meta_instruction="")
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  print(response)
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  ```
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