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https://github.com/oobabooga/text-generation-webui.git
synced 2024-12-23 21:18:00 +01:00
Remove duplicate code
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cd36b8f739
commit
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@ -6,11 +6,12 @@
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mode: 'chat'
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skip_special_tokens: true
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custom_stopping_strings: ''
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.*llama:
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.*(llama|alpac|vicuna|guanaco|koala|llava|wizardlm|metharme|pygmalion-7b):
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model_type: 'llama'
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.*gptq(?!u|arl|v2):
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wbits: 4
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groupsize: 128
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.*(opt-|opt_|opt1|opt3|optfor|galactica|galpaca|pygmalion-350m):
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model_type: 'opt'
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.*(gpt-j|gptj|gpt4all-j|malion-6b|pygway|pygmalion-6b):
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model_type: 'gptj'
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.*(4bit|int4):
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wbits: 4
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.*(3bit|int3):
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@ -27,8 +28,6 @@
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wbits: 6
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.*(-5bit|_5bit|int5-):
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wbits: 5
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.*gptqv2:
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groupsize: 'None'
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.*(-gr32-|-32g-|groupsize32):
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groupsize: 32
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.*(-gr64-|-64g-|groupsize64):
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@ -37,6 +36,11 @@
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groupsize: 128
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.*(gr1024|1024g|groupsize1024):
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groupsize: 1024
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.*gptq(?!u|arl|v2):
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wbits: 4
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groupsize: 128
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.*gptqv2:
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groupsize: 'None'
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.*(oasst|stablelm-7b-sft-v7-epoch-3):
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mode: 'instruct'
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instruction_template: 'Open Assistant'
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@ -131,8 +135,4 @@
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instruction_template: 'INCITE-Chat'
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.*incite.*instruct:
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mode: 'instruct'
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instruction_template: 'INCITE-Instruct'
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.*pygmalion-7b:
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model_type: 'llama'
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.*metharme-7b:
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model_type: 'llama'
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instruction_template: 'INCITE-Instruct'
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@ -10,6 +10,7 @@ import transformers
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from transformers import AutoConfig, AutoModelForCausalLM
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import modules.shared as shared
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from server import get_model_specific_settings
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sys.path.insert(0, str(Path("repositories/GPTQ-for-LLaMa")))
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@ -53,6 +54,7 @@ def _load_quant(model, checkpoint, wbits, groupsize=-1, faster_kernel=False, exc
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torch.set_default_dtype(torch.float)
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if eval:
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model = model.eval()
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layers = find_layers(model)
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for name in exclude_layers:
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if name in layers:
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@ -78,7 +80,6 @@ def _load_quant(model, checkpoint, wbits, groupsize=-1, faster_kernel=False, exc
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quant.make_quant_linear(model, layers, wbits, groupsize)
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del layers
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if checkpoint.endswith('.safetensors'):
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from safetensors.torch import load_file as safe_load
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model.load_state_dict(safe_load(checkpoint), strict=False)
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@ -88,6 +89,7 @@ def _load_quant(model, checkpoint, wbits, groupsize=-1, faster_kernel=False, exc
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if is_triton:
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if shared.args.quant_attn:
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quant.make_quant_attn(model)
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if eval and shared.args.fused_mlp:
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quant.make_fused_mlp(model)
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@ -141,19 +143,15 @@ def find_quantized_model_file(model_name):
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# The function that loads the model in modules/models.py
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def load_quantized(model_name):
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# Find the model type
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if not shared.args.model_type:
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name = model_name.lower()
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if any((k in name for k in ['opt-', 'opt_', 'opt1', 'opt3', 'optfor', 'galactica', 'galpaca', 'pygmalion-350m'])):
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model_type = 'opt'
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elif any((k in name for k in ['gpt-j', 'gptj', 'gpt4all-j', 'malion-6b', 'pygway', 'pygmalion-6b'])):
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model_type = 'gptj'
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elif any((k in name for k in ['llama', 'alpac', 'vicuna', 'guanaco', 'koala', 'llava', 'wizardlm', 'metharme'])):
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model_type = 'llama'
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settings = get_model_specific_settings(model_name)
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if 'model_type' in settings and settings['model_type'] != 'None':
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model_type = settings['model_type']
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else:
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logging.error("Can't determine model type from model name. Please specify it manually using --model_type argument")
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exit()
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logging.error("The model could not be loaded because its type could not be inferred from its name.")
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logging.error("Please specify the type manually using the --model_type argument.")
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return
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else:
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model_type = shared.args.model_type.lower()
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