AutoGPTQ: Add --disable_exllamav2 flag (Mixtral CPU offloading needs this)

This commit is contained in:
oobabooga 2023-12-15 06:46:13 -08:00
parent 7de10f4c8e
commit 3bbf6c601d
7 changed files with 16 additions and 4 deletions

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@ -285,6 +285,7 @@ List of command-line flags
| `--no_use_cuda_fp16` | This can make models faster on some systems. | | `--no_use_cuda_fp16` | This can make models faster on some systems. |
| `--desc_act` | For models that don't have a quantize_config.json, this parameter is used to define whether to set desc_act or not in BaseQuantizeConfig. | | `--desc_act` | For models that don't have a quantize_config.json, this parameter is used to define whether to set desc_act or not in BaseQuantizeConfig. |
| `--disable_exllama` | Disable ExLlama kernel, which can improve inference speed on some systems. | | `--disable_exllama` | Disable ExLlama kernel, which can improve inference speed on some systems. |
| `--disable_exllamav2` | Disable ExLlamav2 kernel. |
#### GPTQ-for-LLaMa #### GPTQ-for-LLaMa

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@ -52,6 +52,7 @@ def load_quantized(model_name):
'quantize_config': quantize_config, 'quantize_config': quantize_config,
'use_cuda_fp16': not shared.args.no_use_cuda_fp16, 'use_cuda_fp16': not shared.args.no_use_cuda_fp16,
'disable_exllama': shared.args.disable_exllama, 'disable_exllama': shared.args.disable_exllama,
'disable_exllamav2': shared.args.disable_exllamav2,
} }
logger.info(f"The AutoGPTQ params are: {params}") logger.info(f"The AutoGPTQ params are: {params}")

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@ -25,6 +25,7 @@ loaders_and_params = OrderedDict({
'rope_freq_base', 'rope_freq_base',
'compress_pos_emb', 'compress_pos_emb',
'disable_exllama', 'disable_exllama',
'disable_exllamav2',
'transformers_info' 'transformers_info'
], ],
'llama.cpp': [ 'llama.cpp': [
@ -94,6 +95,7 @@ loaders_and_params = OrderedDict({
'groupsize', 'groupsize',
'desc_act', 'desc_act',
'disable_exllama', 'disable_exllama',
'disable_exllamav2',
'gpu_memory', 'gpu_memory',
'cpu_memory', 'cpu_memory',
'cpu', 'cpu',

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@ -156,7 +156,7 @@ def huggingface_loader(model_name):
LoaderClass = AutoModelForCausalLM LoaderClass = AutoModelForCausalLM
# Load the model in simple 16-bit mode by default # Load the model in simple 16-bit mode by default
if not any([shared.args.cpu, shared.args.load_in_8bit, shared.args.load_in_4bit, shared.args.auto_devices, shared.args.disk, shared.args.deepspeed, shared.args.gpu_memory is not None, shared.args.cpu_memory is not None, shared.args.compress_pos_emb > 1, shared.args.alpha_value > 1, shared.args.disable_exllama]): if not any([shared.args.cpu, shared.args.load_in_8bit, shared.args.load_in_4bit, shared.args.auto_devices, shared.args.disk, shared.args.deepspeed, shared.args.gpu_memory is not None, shared.args.cpu_memory is not None, shared.args.compress_pos_emb > 1, shared.args.alpha_value > 1, shared.args.disable_exllama, shared.args.disable_exllamav2]):
model = LoaderClass.from_pretrained(path_to_model, **params) model = LoaderClass.from_pretrained(path_to_model, **params)
if torch.backends.mps.is_available(): if torch.backends.mps.is_available():
device = torch.device('mps') device = torch.device('mps')
@ -221,11 +221,16 @@ def huggingface_loader(model_name):
if shared.args.disk: if shared.args.disk:
params['offload_folder'] = shared.args.disk_cache_dir params['offload_folder'] = shared.args.disk_cache_dir
if shared.args.disable_exllama: if shared.args.disable_exllama or shared.args.disable_exllamav2:
try: try:
gptq_config = GPTQConfig(bits=config.quantization_config.get('bits', 4), disable_exllama=True) gptq_config = GPTQConfig(
bits=config.quantization_config.get('bits', 4),
disable_exllama=shared.args.disable_exllama,
disable_exllamav2=shared.args.disable_exllamav2,
)
params['quantization_config'] = gptq_config params['quantization_config'] = gptq_config
logger.info('Loading with ExLlama kernel disabled.') logger.info(f'Loading with disable_exllama={shared.args.disable_exllama} and disable_exllamav2={shared.args.disable_exllamav2}.')
except: except:
exc = traceback.format_exc() exc = traceback.format_exc()
logger.error('Failed to disable exllama. Does the config.json for this model contain the necessary quantization info?') logger.error('Failed to disable exllama. Does the config.json for this model contain the necessary quantization info?')

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@ -133,6 +133,7 @@ parser.add_argument('--no_inject_fused_mlp', action='store_true', help='Triton m
parser.add_argument('--no_use_cuda_fp16', action='store_true', help='This can make models faster on some systems.') parser.add_argument('--no_use_cuda_fp16', action='store_true', help='This can make models faster on some systems.')
parser.add_argument('--desc_act', action='store_true', help='For models that do not have a quantize_config.json, this parameter is used to define whether to set desc_act or not in BaseQuantizeConfig.') parser.add_argument('--desc_act', action='store_true', help='For models that do not have a quantize_config.json, this parameter is used to define whether to set desc_act or not in BaseQuantizeConfig.')
parser.add_argument('--disable_exllama', action='store_true', help='Disable ExLlama kernel, which can improve inference speed on some systems.') parser.add_argument('--disable_exllama', action='store_true', help='Disable ExLlama kernel, which can improve inference speed on some systems.')
parser.add_argument('--disable_exllamav2', action='store_true', help='Disable ExLlamav2 kernel.')
# GPTQ-for-LLaMa # GPTQ-for-LLaMa
parser.add_argument('--wbits', type=int, default=0, help='Load a pre-quantized model with specified precision in bits. 2, 3, 4 and 8 are supported.') parser.add_argument('--wbits', type=int, default=0, help='Load a pre-quantized model with specified precision in bits. 2, 3, 4 and 8 are supported.')

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@ -70,6 +70,7 @@ def list_model_elements():
'no_inject_fused_mlp', 'no_inject_fused_mlp',
'no_use_cuda_fp16', 'no_use_cuda_fp16',
'disable_exllama', 'disable_exllama',
'disable_exllamav2',
'cfg_cache', 'cfg_cache',
'no_flash_attn', 'no_flash_attn',
'cache_8bit', 'cache_8bit',

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@ -125,6 +125,7 @@ def create_ui():
shared.gradio['logits_all'] = gr.Checkbox(label="logits_all", value=shared.args.logits_all, info='Needs to be set for perplexity evaluation to work. Otherwise, ignore it, as it makes prompt processing slower.') shared.gradio['logits_all'] = gr.Checkbox(label="logits_all", value=shared.args.logits_all, info='Needs to be set for perplexity evaluation to work. Otherwise, ignore it, as it makes prompt processing slower.')
shared.gradio['use_flash_attention_2'] = gr.Checkbox(label="use_flash_attention_2", value=shared.args.use_flash_attention_2, info='Set use_flash_attention_2=True while loading the model.') shared.gradio['use_flash_attention_2'] = gr.Checkbox(label="use_flash_attention_2", value=shared.args.use_flash_attention_2, info='Set use_flash_attention_2=True while loading the model.')
shared.gradio['disable_exllama'] = gr.Checkbox(label="disable_exllama", value=shared.args.disable_exllama, info='Disable ExLlama kernel.') shared.gradio['disable_exllama'] = gr.Checkbox(label="disable_exllama", value=shared.args.disable_exllama, info='Disable ExLlama kernel.')
shared.gradio['disable_exllamav2'] = gr.Checkbox(label="disable_exllamav2", value=shared.args.disable_exllamav2, info='Disable ExLlamav2 kernel.')
shared.gradio['no_flash_attn'] = gr.Checkbox(label="no_flash_attn", value=shared.args.no_flash_attn, info='Force flash-attention to not be used.') shared.gradio['no_flash_attn'] = gr.Checkbox(label="no_flash_attn", value=shared.args.no_flash_attn, info='Force flash-attention to not be used.')
shared.gradio['cache_8bit'] = gr.Checkbox(label="cache_8bit", value=shared.args.cache_8bit, info='Use 8-bit cache to save VRAM.') shared.gradio['cache_8bit'] = gr.Checkbox(label="cache_8bit", value=shared.args.cache_8bit, info='Use 8-bit cache to save VRAM.')
shared.gradio['no_use_fast'] = gr.Checkbox(label="no_use_fast", value=shared.args.no_use_fast, info='Set use_fast=False while loading the tokenizer.') shared.gradio['no_use_fast'] = gr.Checkbox(label="no_use_fast", value=shared.args.no_use_fast, info='Set use_fast=False while loading the tokenizer.')