arg_utils.py 9.6 KB
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import argparse
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import dataclasses
from dataclasses import dataclass
from typing import Optional, Tuple
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from vllm.config import (CacheConfig, ModelConfig, ParallelConfig,
                         SchedulerConfig)
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@dataclass
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class EngineArgs:
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    """Arguments for vLLM engine."""
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    model: str
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    tokenizer: Optional[str] = None
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    tokenizer_mode: str = 'auto'
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    trust_remote_code: bool = False
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    download_dir: Optional[str] = None
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    load_format: str = 'auto'
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    dtype: str = 'auto'
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    seed: int = 0
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    max_model_len: Optional[int] = None
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    worker_use_ray: bool = False
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    pipeline_parallel_size: int = 1
    tensor_parallel_size: int = 1
    block_size: int = 16
    swap_space: int = 4  # GiB
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    gpu_memory_utilization: float = 0.90
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    max_num_batched_tokens: Optional[int] = None
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    max_num_seqs: int = 256
    disable_log_stats: bool = False
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    revision: Optional[str] = None
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    quantization: Optional[str] = None
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    def __post_init__(self):
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        if self.tokenizer is None:
            self.tokenizer = self.model
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    @staticmethod
    def add_cli_args(
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            parser: argparse.ArgumentParser) -> argparse.ArgumentParser:
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        """Shared CLI arguments for vLLM engine."""
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        # Model arguments
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        parser.add_argument(
            '--model',
            type=str,
            default='facebook/opt-125m',
            help='name or path of the huggingface model to use')
        parser.add_argument(
            '--tokenizer',
            type=str,
            default=EngineArgs.tokenizer,
            help='name or path of the huggingface tokenizer to use')
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        parser.add_argument(
            '--revision',
            type=str,
            default=None,
            help='the specific model version to use. It can be a branch '
            'name, a tag name, or a commit id. If unspecified, will use '
            'the default version.')
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        parser.add_argument('--tokenizer-mode',
                            type=str,
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                            default=EngineArgs.tokenizer_mode,
                            choices=['auto', 'slow'],
                            help='tokenizer mode. "auto" will use the fast '
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                            'tokenizer if available, and "slow" will '
                            'always use the slow tokenizer.')
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        parser.add_argument('--trust-remote-code',
                            action='store_true',
                            help='trust remote code from huggingface')
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        parser.add_argument('--download-dir',
                            type=str,
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                            default=EngineArgs.download_dir,
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                            help='directory to download and load the weights, '
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                            'default to the default cache dir of '
                            'huggingface')
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        parser.add_argument(
            '--load-format',
            type=str,
            default=EngineArgs.load_format,
            choices=['auto', 'pt', 'safetensors', 'npcache', 'dummy'],
            help='The format of the model weights to load. '
            '"auto" will try to load the weights in the safetensors format '
            'and fall back to the pytorch bin format if safetensors format '
            'is not available. '
            '"pt" will load the weights in the pytorch bin format. '
            '"safetensors" will load the weights in the safetensors format. '
            '"npcache" will load the weights in pytorch format and store '
            'a numpy cache to speed up the loading. '
            '"dummy" will initialize the weights with random values, '
            'which is mainly for profiling.')
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        parser.add_argument(
            '--dtype',
            type=str,
            default=EngineArgs.dtype,
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            choices=[
                'auto', 'half', 'float16', 'bfloat16', 'float', 'float32'
            ],
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            help='data type for model weights and activations. '
            'The "auto" option will use FP16 precision '
            'for FP32 and FP16 models, and BF16 precision '
            'for BF16 models.')
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        parser.add_argument('--max-model-len',
                            type=int,
                            default=None,
                            help='model context length. If unspecified, '
                            'will be automatically derived from the model.')
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        # Parallel arguments
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        parser.add_argument('--worker-use-ray',
                            action='store_true',
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                            help='use Ray for distributed serving, will be '
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                            'automatically set when using more than 1 GPU')
        parser.add_argument('--pipeline-parallel-size',
                            '-pp',
                            type=int,
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                            default=EngineArgs.pipeline_parallel_size,
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                            help='number of pipeline stages')
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        parser.add_argument('--tensor-parallel-size',
                            '-tp',
                            type=int,
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                            default=EngineArgs.tensor_parallel_size,
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                            help='number of tensor parallel replicas')
        # KV cache arguments
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        parser.add_argument('--block-size',
                            type=int,
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                            default=EngineArgs.block_size,
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                            choices=[8, 16, 32],
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                            help='token block size')
        # TODO(woosuk): Support fine-grained seeds (e.g., seed per request).
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        parser.add_argument('--seed',
                            type=int,
                            default=EngineArgs.seed,
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                            help='random seed')
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        parser.add_argument('--swap-space',
                            type=int,
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                            default=EngineArgs.swap_space,
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                            help='CPU swap space size (GiB) per GPU')
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        parser.add_argument('--gpu-memory-utilization',
                            type=float,
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                            default=EngineArgs.gpu_memory_utilization,
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                            help='the percentage of GPU memory to be used for'
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                            'the model executor')
        parser.add_argument('--max-num-batched-tokens',
                            type=int,
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                            default=EngineArgs.max_num_batched_tokens,
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                            help='maximum number of batched tokens per '
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                            'iteration')
        parser.add_argument('--max-num-seqs',
                            type=int,
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                            default=EngineArgs.max_num_seqs,
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                            help='maximum number of sequences per iteration')
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        parser.add_argument('--disable-log-stats',
                            action='store_true',
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                            help='disable logging statistics')
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        # Quantization settings.
        parser.add_argument('--quantization',
                            '-q',
                            type=str,
                            choices=['awq', None],
                            default=None,
                            help='Method used to quantize the weights')
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        return parser
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    @classmethod
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    def from_cli_args(cls, args: argparse.Namespace) -> 'EngineArgs':
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        # Get the list of attributes of this dataclass.
        attrs = [attr.name for attr in dataclasses.fields(cls)]
        # Set the attributes from the parsed arguments.
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        engine_args = cls(**{attr: getattr(args, attr) for attr in attrs})
        return engine_args
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    def create_engine_configs(
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        self,
    ) -> Tuple[ModelConfig, CacheConfig, ParallelConfig, SchedulerConfig]:
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        model_config = ModelConfig(self.model, self.tokenizer,
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                                   self.tokenizer_mode, self.trust_remote_code,
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                                   self.download_dir, self.load_format,
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                                   self.dtype, self.seed, self.revision,
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                                   self.max_model_len, self.quantization)
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        cache_config = CacheConfig(self.block_size,
                                   self.gpu_memory_utilization,
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                                   self.swap_space)
        parallel_config = ParallelConfig(self.pipeline_parallel_size,
                                         self.tensor_parallel_size,
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                                         self.worker_use_ray)
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        scheduler_config = SchedulerConfig(self.max_num_batched_tokens,
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                                           self.max_num_seqs,
                                           model_config.get_max_model_len())
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        return model_config, cache_config, parallel_config, scheduler_config


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@dataclass
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class AsyncEngineArgs(EngineArgs):
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    """Arguments for asynchronous vLLM engine."""
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    engine_use_ray: bool = False
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    disable_log_requests: bool = False
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    max_log_len: Optional[int] = None
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    @staticmethod
    def add_cli_args(
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            parser: argparse.ArgumentParser) -> argparse.ArgumentParser:
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        parser = EngineArgs.add_cli_args(parser)
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        parser.add_argument('--engine-use-ray',
                            action='store_true',
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                            help='use Ray to start the LLM engine in a '
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                            'separate process as the server process.')
        parser.add_argument('--disable-log-requests',
                            action='store_true',
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                            help='disable logging requests')
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        parser.add_argument('--max-log-len',
                            type=int,
                            default=None,
                            help='max number of prompt characters or prompt '
                            'ID numbers being printed in log. '
                            'Default: unlimited.')
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        return parser