[Piecewise Cuda Graph] rename, refactor and add more logging (#13675)
Co-authored-by: Minglei Zhu <mingleizhu1122@gmail.com> Co-authored-by: Ke Bao <ISPObaoke@163.com> Co-authored-by: Oasis-Git <ayw.sirius19@gmail.com>
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@@ -20,6 +20,7 @@ from sglang.srt.compilation.compilation_counter import compilation_counter
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from sglang.srt.compilation.compiler_interface import EagerAdapter, InductorAdaptor
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from sglang.srt.compilation.cuda_piecewise_backend import CUDAPiecewiseBackend
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from sglang.srt.compilation.pass_manager import PostGradPassManager
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from sglang.srt.utils.common import rank0_log
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logger = logging.getLogger(__name__)
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@@ -357,6 +358,7 @@ class SGLangBackend:
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config: CompilationConfig,
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graph_pool: Any,
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):
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rank0_log(f"Initializing SGLangBackend")
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assert graph_pool is not None
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self.graph_pool = graph_pool
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@@ -375,6 +377,7 @@ class SGLangBackend:
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self.inductor_config["post_grad_custom_post_pass"] = self.post_grad_pass_manager
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def __call__(self, graph: fx.GraphModule, example_inputs) -> Callable:
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rank0_log(f"SGLangBackend __call__")
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base_cache_dir = os.path.expanduser(
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os.getenv("SGLANG_CACHE_DIR", "~/.cache/sglang/")
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)
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@@ -441,7 +444,7 @@ class SGLangBackend:
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with open(graph_path, "w") as f:
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f.write(src)
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logger.debug("Computation graph saved to %s", graph_path)
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rank0_log(f"Computation graph saved to {graph_path}")
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self._called = True
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return self.split_gm
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@@ -11,6 +11,7 @@ from typing import Any, Callable, Optional, Union
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import torch
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from sglang.srt.compilation.compilation_config import CompilationConfig
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from sglang.srt.utils.common import rank0_log
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logger = logging.getLogger(__name__)
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@@ -129,6 +130,7 @@ def install_torch_compiled(
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fullgraph: bool = True,
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graph_pool: Any = None,
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):
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rank0_log(f"install_torch_compiled")
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unbound_fwd = module.__class__.forward
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if not callable(unbound_fwd):
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raise TypeError("module.__class__.forward must be callable")
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@@ -59,6 +59,27 @@ if TYPE_CHECKING:
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from sglang.srt.model_executor.model_runner import ModelRunner
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@contextmanager
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def disable_ca_comm(tp_group):
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"""
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Context manager to temporarily disable custom allreduce communication.
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This is used during Piecewise CUDA graph capture to avoid custom allreduce operations
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that may not be compatible with graph capture.
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TODO(yuwei): Fix this
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"""
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old_disabled = None
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try:
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if tp_group.ca_comm is not None:
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old_disabled = tp_group.ca_comm.disabled
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tp_group.ca_comm.disabled = True
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yield
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finally:
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if tp_group.ca_comm is not None and old_disabled is not None:
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tp_group.ca_comm.disabled = old_disabled
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@contextmanager
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def freeze_gc(enable_cudagraph_gc: bool):
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"""
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@@ -207,7 +228,7 @@ class PiecewiseCudaGraphRunner:
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)
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with set_compiled(True):
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self.warmup_and_capture()
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self.warmup_torch_compile()
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# Capture
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try:
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@@ -219,7 +240,8 @@ class PiecewiseCudaGraphRunner:
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self.raw_num_tokens = 0
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def warmup_and_capture(self):
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def warmup_torch_compile(self):
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"""Warmup the model with a simple forward pass before CUDA graph capture."""
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num_tokens = 2
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with torch.device(self.device):
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forward_batch = ForwardBatch(
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@@ -283,7 +305,7 @@ class PiecewiseCudaGraphRunner:
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with set_forward_context(
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forward_batch, self.attention_layers, self.quant_config
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):
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), disable_ca_comm(self.model_runner.tp_group):
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_ = self.model_runner.model.forward(
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forward_batch.input_ids,
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forward_batch.positions,
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@@ -311,10 +333,9 @@ class PiecewiseCudaGraphRunner:
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# Trigger CUDA graph capture for specific shapes.
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# Capture the large shapes first so that the smaller shapes
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# can reuse the memory pool allocated for the large shapes.
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with freeze_gc(self.model_runner.server_args.enable_cudagraph_gc):
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if self.model_runner.tp_group.ca_comm is not None:
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old_ca_disable = self.model_runner.tp_group.ca_comm.disabled
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self.model_runner.tp_group.ca_comm.disabled = True
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with freeze_gc(
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self.model_runner.server_args.enable_cudagraph_gc
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), disable_ca_comm(self.model_runner.tp_group):
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avail_mem = get_available_gpu_memory(
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self.model_runner.device,
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self.model_runner.gpu_id,
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@@ -342,8 +363,6 @@ class PiecewiseCudaGraphRunner:
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# Save gemlite cache after each capture
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save_gemlite_cache()
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if self.model_runner.tp_group.ca_comm is not None:
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self.model_runner.tp_group.ca_comm.disabled = old_ca_disable
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def capture_one_batch_size(self, num_tokens: int):
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bs = 1
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@@ -565,10 +584,7 @@ class PiecewiseCudaGraphRunner:
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forward_batch: ForwardBatch,
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**kwargs,
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) -> Union[LogitsProcessorOutput, PPProxyTensors]:
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with enable_piecewise_cuda_graph():
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if self.model_runner.tp_group.ca_comm is not None:
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old_ca_disable = self.model_runner.tp_group.ca_comm.disabled
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self.model_runner.tp_group.ca_comm.disabled = True
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with enable_piecewise_cuda_graph(), disable_ca_comm(self.model_runner.tp_group):
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self.model_runner.attn_backend.init_forward_metadata(forward_batch)
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static_forward_batch = self.replay_prepare(forward_batch, **kwargs)
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# Replay
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@@ -599,8 +615,6 @@ class PiecewiseCudaGraphRunner:
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raise NotImplementedError(
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"PPProxyTensors is not supported in PiecewiseCudaGraphRunner yet."
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)
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if self.model_runner.tp_group.ca_comm is not None:
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self.model_runner.tp_group.ca_comm.disabled = old_ca_disable
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def get_spec_info(self, num_tokens: int):
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spec_info = None
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@@ -127,6 +127,7 @@ class TiktokenTokenizer:
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add_generation_prompt,
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tools=None,
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reasoning_effort=None,
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**kwargs, # Accept additional parameters (e.g., return_dict) for compatibility
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):
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ret = self.chat_template_jinja.render(
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messages=messages, add_generation_prompt=add_generation_prompt
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