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https://github.com/oobabooga/text-generation-webui.git
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Refactor model loading function
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parent
96a75b616b
commit
00a12889e9
21
server.py
21
server.py
@ -36,15 +36,18 @@ def load_model(model_name):
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if not args.cpu and Path(f"torch-dumps/{model_name}.pt").exists():
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print("Loading in .pt format...")
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model = torch.load(Path(f"torch-dumps/{model_name}.pt"))
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elif model_name.lower().startswith(('gpt-neo', 'opt-', 'galactica')):
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if any(size in model_name.lower() for size in ('13b', '20b', '30b')):
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model = AutoModelForCausalLM.from_pretrained(Path(f"models/{model_name}"), device_map='auto', load_in_8bit=True)
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else:
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model = AutoModelForCausalLM.from_pretrained(Path(f"models/{model_name}"), low_cpu_mem_usage=True, torch_dtype=dtype)
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elif model_name.lower().startswith(('gpt-neo', 'opt-', 'galactica')) and any(size in model_name.lower() for size in ('13b', '20b', '30b')):
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model = AutoModelForCausalLM.from_pretrained(Path(f"models/{model_name}"), device_map='auto', load_in_8bit=True)
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elif model_name in ['flan-t5', 't5-large']:
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model = T5ForConditionalGeneration.from_pretrained(Path(f"models/{model_name}"))
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if args.cpu:
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model = T5ForConditionalGeneration.from_pretrained(Path(f"models/{model_name}"))
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else:
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model = T5ForConditionalGeneration.from_pretrained(Path(f"models/{model_name}")).cuda()
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else:
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model = AutoModelForCausalLM.from_pretrained(Path(f"models/{model_name}"), low_cpu_mem_usage=True, torch_dtype=dtype)
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if args.cpu:
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model = AutoModelForCausalLM.from_pretrained(Path(f"models/{model_name}"), low_cpu_mem_usage=True, torch_dtype=dtype)
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else:
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model = AutoModelForCausalLM.from_pretrained(Path(f"models/{model_name}"), low_cpu_mem_usage=True, torch_dtype=dtype).cuda()
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# Loading the tokenizer
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if model_name.lower().startswith('gpt4chan') and Path(f"models/gpt-j-6B/").exists():
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@ -54,10 +57,6 @@ def load_model(model_name):
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else:
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tokenizer = AutoTokenizer.from_pretrained(Path(f"models/{model_name}/"))
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# Sending to the GPU
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if not (args.cpu or any(size in model_name.lower() for size in ('13b', '20b', '30b'))):
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model = model.cuda()
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print(f"Loaded the model in {(time.time()-t0):.2f} seconds.")
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return model, tokenizer
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