Merge branch 'master' into dev
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commit
88175c2e32
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@ -193,6 +193,6 @@ Web UI 可以实现如下功能:
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- [ ] 实现调用 API 的 Web UI Demo
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## 项目交流群
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🎉 langchain-ChatGLM 项目交流群,如果你也对本项目感兴趣,欢迎加入群聊参与讨论交流。
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@ -11,7 +11,7 @@ DEVICE_ID = "0" if torch.cuda.is_available() else None
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DEVICE = f"{DEVICE_}:{DEVICE_ID}" if DEVICE_ID else DEVICE_
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def auto_configure_device_map(num_gpus: int) -> Dict[str, int]:
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def auto_configure_device_map(num_gpus: int, use_lora: bool) -> Dict[str, int]:
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# transformer.word_embeddings 占用1层
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# transformer.final_layernorm 和 lm_head 占用1层
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# transformer.layers 占用 28 层
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@ -19,14 +19,21 @@ def auto_configure_device_map(num_gpus: int) -> Dict[str, int]:
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num_trans_layers = 28
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per_gpu_layers = 30 / num_gpus
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# bugfix: PEFT加载lora模型出现的层命名不同
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if LLM_LORA_PATH and use_lora:
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layer_prefix = 'base_model.model.transformer'
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else:
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layer_prefix = 'transformer'
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# bugfix: 在linux中调用torch.embedding传入的weight,input不在同一device上,导致RuntimeError
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# windows下 model.device 会被设置成 transformer.word_embeddings.device
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# linux下 model.device 会被设置成 lm_head.device
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# 在调用chat或者stream_chat时,input_ids会被放到model.device上
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# 如果transformer.word_embeddings.device和model.device不同,则会导致RuntimeError
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# 因此这里将transformer.word_embeddings,transformer.final_layernorm,lm_head都放到第一张卡上
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device_map = {'transformer.word_embeddings': 0,
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'transformer.final_layernorm': 0, 'lm_head': 0}
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device_map = {f'{layer_prefix}.word_embeddings': 0,
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f'{layer_prefix}.final_layernorm': 0, 'lm_head': 0,
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f'base_model.model.lm_head': 0, }
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used = 2
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gpu_target = 0
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@ -35,7 +42,7 @@ def auto_configure_device_map(num_gpus: int) -> Dict[str, int]:
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gpu_target += 1
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used = 0
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assert gpu_target < num_gpus
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device_map[f'transformer.layers.{i}'] = gpu_target
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device_map[f'{layer_prefix}.layers.{i}'] = gpu_target
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used += 1
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return device_map
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@ -141,16 +148,16 @@ class ChatGLM(LLM):
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else:
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from accelerate import dispatch_model
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model = AutoModel.from_pretrained(model_name_or_path, trust_remote_code=True,
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config=model_config, **kwargs)
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# model = AutoModel.from_pretrained(model_name_or_path, trust_remote_code=True,
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# config=model_config, **kwargs)
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if LLM_LORA_PATH and use_lora:
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from peft import PeftModel
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model = PeftModel.from_pretrained(model, LLM_LORA_PATH)
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model = PeftModel.from_pretrained(self.model, LLM_LORA_PATH)
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# 可传入device_map自定义每张卡的部署情况
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if device_map is None:
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device_map = auto_configure_device_map(num_gpus)
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device_map = auto_configure_device_map(num_gpus, use_lora)
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self.model = dispatch_model(model.half(), device_map=device_map)
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self.model = dispatch_model(self.model.half(), device_map=device_map)
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else:
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self.model = self.model.float().to(llm_device)
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