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worker.py 13 KB
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"""A GPU worker class."""
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import gc
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import os
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from typing import Dict, List, Tuple, Set, Optional
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import torch
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import torch.distributed
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from vllm.config import (CacheConfig, DeviceConfig, ModelConfig,
                         ParallelConfig, SchedulerConfig, LoRAConfig)
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from vllm.model_executor import set_random_seed
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from vllm.model_executor.parallel_utils import cupy_utils
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from vllm.model_executor.parallel_utils.communication_op import (
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    broadcast_tensor_dict)
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from vllm.model_executor.parallel_utils.custom_all_reduce import init_custom_ar
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from vllm.model_executor.parallel_utils.parallel_state import (
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    ensure_model_parallel_initialized)
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from vllm.sequence import SamplerOutput, SequenceGroupMetadata
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from vllm.worker.cache_engine import CacheEngine
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from vllm.worker.model_runner import ModelRunner
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from vllm.lora.request import LoRARequest
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class Worker:
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    """A worker class that executes (a partition of) the model on a GPU.

    Each worker is associated with a single GPU. The worker is responsible for
    maintaining the KV cache and executing the model on the GPU. In case of
    distributed inference, each worker is assigned a partition of the model.
    """
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    def __init__(
        self,
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        model_config: ModelConfig,
        parallel_config: ParallelConfig,
        scheduler_config: SchedulerConfig,
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        device_config: DeviceConfig,
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        local_rank: int,
        rank: int,
        distributed_init_method: str,
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        lora_config: Optional[LoRAConfig] = None,
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        kv_cache_dtype: Optional[str] = "auto",
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        is_driver_worker: bool = False,
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    ) -> None:
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        self.model_config = model_config
        self.parallel_config = parallel_config
        self.scheduler_config = scheduler_config
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        self.device_config = device_config
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        self.local_rank = local_rank
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        self.rank = rank
        self.distributed_init_method = distributed_init_method
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        self.lora_config = lora_config
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        self.is_driver_worker = is_driver_worker
        if self.is_driver_worker:
            assert self.rank == 0, "The driver worker must have rank 0."
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        self.model_runner = ModelRunner(model_config,
                                        parallel_config,
                                        scheduler_config,
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                                        device_config,
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                                        lora_config=self.lora_config,
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                                        kv_cache_dtype=kv_cache_dtype,
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                                        is_driver_worker=is_driver_worker)
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        # Uninitialized cache engine. Will be initialized by
        # self.init_cache_engine().
        self.cache_config = None
        self.cache_engine = None
        self.cache_events = None
        self.gpu_cache = None

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    def init_model(self, cupy_port: Optional[int] = None) -> None:
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        if self.device_config.device.type == "cuda":
            # torch.distributed.all_reduce does not free the input tensor until
            # the synchronization point. This causes the memory usage to grow
            # as the number of all_reduce calls increases. This env var disables
            # this behavior.
            # Related issue:
            # https://discuss.pytorch.org/t/cuda-allocation-lifetime-for-inputs-to-distributed-all-reduce/191573
            os.environ["TORCH_NCCL_AVOID_RECORD_STREAMS"] = "1"
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            # This env var set by Ray causes exceptions with graph building.
            os.environ.pop("NCCL_ASYNC_ERROR_HANDLING", None)
            self.device = torch.device(f"cuda:{self.local_rank}")
            torch.cuda.set_device(self.device)
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            _check_if_gpu_supports_dtype(self.model_config.dtype)
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            torch.cuda.empty_cache()
            self.init_gpu_memory = torch.cuda.mem_get_info()[0]
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        else:
            raise RuntimeError(
                f"Not support device type: {self.device_config.device}")
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        # Initialize the distributed environment.
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        init_distributed_environment(self.parallel_config, self.rank,
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                                     cupy_port, self.distributed_init_method)
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        # Initialize the model.
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        set_random_seed(self.model_config.seed)
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    def load_model(self):
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        self.model_runner.load_model()
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    @torch.inference_mode()
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    def profile_num_available_blocks(
        self,
        block_size: int,
        gpu_memory_utilization: float,
        cpu_swap_space: int,
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        cache_dtype: str,
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    ) -> Tuple[int, int]:
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        """Profiles the peak memory usage of the model and returns the maximum
        number of GPU and CPU cache blocks that can be allocated.

        Args:
            block_size: The size of the cache block.
            gpu_memory_utilization: The fraction of the total GPU memory to use.
            cpu_swap_space: The size of the CPU swap space in bytes.
        """
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        # Profile the memory usage of the model and get the maximum number of
        # cache blocks that can be allocated with the remaining free memory.
        torch.cuda.empty_cache()

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        # Execute a forward pass with dummy inputs to profile the memory usage
        # of the model.
        self.model_runner.profile_run()
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        # Calculate the number of blocks that can be allocated with the
        # profiled peak memory.
        torch.cuda.synchronize()
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        free_gpu_memory, total_gpu_memory = torch.cuda.mem_get_info()
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        # NOTE(woosuk): Here we assume that the other processes using the same
        # GPU did not change their memory usage during the profiling.
        peak_memory = self.init_gpu_memory - free_gpu_memory
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        cache_block_size = self.get_cache_block_size_bytes(
            block_size, cache_dtype)
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        num_gpu_blocks = int(
            (total_gpu_memory * gpu_memory_utilization - peak_memory) //
            cache_block_size)
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        num_cpu_blocks = int(cpu_swap_space // cache_block_size)
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        num_gpu_blocks = max(num_gpu_blocks, 0)
        num_cpu_blocks = max(num_cpu_blocks, 0)
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        if self.model_runner.lora_manager:
            self.model_runner.remove_all_loras()
        gc.collect()
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        torch.cuda.empty_cache()
        return num_gpu_blocks, num_cpu_blocks

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    def init_cache_engine(self, cache_config: CacheConfig) -> None:
        self.cache_config = cache_config
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        self.cache_engine = CacheEngine(self.cache_config, self.model_config,
                                        self.parallel_config)
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        self.cache_events = self.cache_engine.events
        self.gpu_cache = self.cache_engine.gpu_cache
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        self.model_runner.set_block_size(self.cache_engine.block_size)
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    def warm_up_model(self) -> None:
        if not self.model_config.enforce_eager:
            self.model_runner.capture_model(self.gpu_cache)
        # Reset the seed to ensure that the random state is not affected by
        # the model initialization and profiling.
        set_random_seed(self.model_config.seed)

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    def cache_swap(
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        self,
        blocks_to_swap_in: Dict[int, int],
        blocks_to_swap_out: Dict[int, int],
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        blocks_to_copy: Dict[int, List[int]],
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    ) -> None:
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        # Issue cache operations.
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        issued_cache_op = False
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        if blocks_to_swap_in:
            self.cache_engine.swap_in(blocks_to_swap_in)
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            issued_cache_op = True
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        if blocks_to_swap_out:
            self.cache_engine.swap_out(blocks_to_swap_out)
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            issued_cache_op = True
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        if blocks_to_copy:
            self.cache_engine.copy(blocks_to_copy)
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            issued_cache_op = True
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        cache_events = self.cache_events if issued_cache_op else None
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        # Wait for cache operations to finish.
        # TODO(woosuk): Profile swapping overhead and optimize if needed.
        if cache_events is not None:
            for event in cache_events:
                event.wait()
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    @torch.inference_mode()
    def execute_model(
        self,
        seq_group_metadata_list: Optional[List[SequenceGroupMetadata]] = None,
        blocks_to_swap_in: Optional[Dict[int, int]] = None,
        blocks_to_swap_out: Optional[Dict[int, int]] = None,
        blocks_to_copy: Optional[Dict[int, List[int]]] = None,
    ) -> Optional[SamplerOutput]:
        if self.is_driver_worker:
            assert seq_group_metadata_list is not None
            num_seq_groups = len(seq_group_metadata_list)
            assert blocks_to_swap_in is not None
            assert blocks_to_swap_out is not None
            assert blocks_to_copy is not None
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            data = {
                "num_seq_groups": num_seq_groups,
                "blocks_to_swap_in": blocks_to_swap_in,
                "blocks_to_swap_out": blocks_to_swap_out,
                "blocks_to_copy": blocks_to_copy,
            }
            broadcast_tensor_dict(data, src=0)
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        else:
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            data = broadcast_tensor_dict(src=0)
            num_seq_groups = data["num_seq_groups"]
            blocks_to_swap_in = data["blocks_to_swap_in"]
            blocks_to_swap_out = data["blocks_to_swap_out"]
            blocks_to_copy = data["blocks_to_copy"]

        self.cache_swap(blocks_to_swap_in, blocks_to_swap_out, blocks_to_copy)
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        # If there is no input, we don't need to execute the model.
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        if num_seq_groups == 0:
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            return {}

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        output = self.model_runner.execute_model(seq_group_metadata_list,
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                                                 self.gpu_cache)
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        return output

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    def add_lora(self, lora_request: LoRARequest) -> bool:
        return self.model_runner.add_lora(lora_request)

    def remove_lora(self, lora_id: int) -> bool:
        return self.model_runner.remove_lora(lora_id)

    def list_loras(self) -> Set[int]:
        return self.model_runner.list_loras()

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    @property
    def max_model_len(self) -> int:
        return self.model_config.max_model_len

    @property
    def vocab_size(self) -> int:
        return self.model_runner.vocab_size

    def get_cache_block_size_bytes(self, block_size: int,
                                   cache_dtype: str) -> int:
        """Get the size of the KV cache block size in bytes.
        """
        return CacheEngine.get_cache_block_size(block_size, cache_dtype,
                                                self.model_config,
                                                self.parallel_config)

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def init_distributed_environment(
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    parallel_config: ParallelConfig,
    rank: int,
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    cupy_port: Optional[int],
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    distributed_init_method: Optional[str] = None,
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) -> None:
    """Initialize the distributed environment."""
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    if torch.distributed.is_initialized():
        torch_world_size = torch.distributed.get_world_size()
        if torch_world_size != parallel_config.world_size:
            raise RuntimeError(
                "torch.distributed is already initialized but the torch world "
                "size does not match parallel_config.world_size "
                f"({torch_world_size} vs. {parallel_config.world_size}).")
    elif not distributed_init_method:
        raise ValueError(
            "distributed_init_method must be set if torch.distributed "
            "is not already initialized")
    else:
        torch.distributed.init_process_group(
            backend="nccl",
            world_size=parallel_config.world_size,
            rank=rank,
            init_method=distributed_init_method,
        )

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    if cupy_utils.is_initialized():
        cupy_world_size = cupy_utils.get_world_size()
        if cupy_world_size != parallel_config.world_size:
            raise RuntimeError(
                "cupy.distributed is already initialized but the cupy world "
                "size does not match parallel_config.world_size "
                f"({cupy_world_size} vs. {parallel_config.world_size}).")
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    elif (parallel_config.world_size > 1 and cupy_port is not None):
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        # NOTE(woosuk): We don't initialize CuPy process group when world size
        # is 1.
        # TODO(woosuk): Support multi-node connection.
        cupy_utils.init_process_group(
            world_size=parallel_config.world_size,
            rank=rank,
            host="localhost",
            port=cupy_port,
        )

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    # A small all_reduce for warmup.
    torch.distributed.all_reduce(torch.zeros(1).cuda())
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    if cupy_utils.is_initialized():
        cupy_utils.all_reduce(torch.zeros(1).cuda())
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    ensure_model_parallel_initialized(parallel_config.tensor_parallel_size,
                                      parallel_config.pipeline_parallel_size)
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    # Initialize a custom fast all-reduce implementation.
    if not parallel_config.disable_custom_all_reduce:
        init_custom_ar()

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def _check_if_gpu_supports_dtype(torch_dtype: torch.dtype):
    # Check if the GPU supports the dtype.
    if torch_dtype == torch.bfloat16:
        compute_capability = torch.cuda.get_device_capability()
        if compute_capability[0] < 8:
            gpu_name = torch.cuda.get_device_name()
            raise ValueError(
                "Bfloat16 is only supported on GPUs with compute capability "
                f"of at least 8.0. Your {gpu_name} GPU has compute capability "
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                f"{compute_capability[0]}.{compute_capability[1]}. "
                "You can use float16 instead by explicitly setting the"
                "`dtype` flag in CLI, for example: --dtype=half.")