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132 lines
4.7 KiB
Python
132 lines
4.7 KiB
Python
from __future__ import annotations
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from typing import Any, List, Optional, Tuple, Union
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import torch
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from sglang.srt.dllm.algorithm import get_algorithm
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from sglang.srt.dllm.config import DllmConfig
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from sglang.srt.layers.logits_processor import LogitsProcessorOutput
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from sglang.srt.model_executor.forward_batch_info import ForwardBatch
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from sglang.srt.model_executor.model_runner import ModelRunner
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from sglang.srt.server_args import ServerArgs
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DllmRunOutput = Tuple[
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Union[LogitsProcessorOutput, torch.Tensor],
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List,
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Optional[List[int]],
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Optional[List[Any]],
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bool,
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]
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class DllmAlgorithm:
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"""dLLM algorithm: subclasses implement ``step``; the base owns the
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synchronous and FDFO (``--dllm-fdfo``) execution loops in ``run``.
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"""
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def __init__(self, config: DllmConfig):
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self.block_size = config.block_size
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self.mask_id = config.mask_id
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self.fdfo = config.first_done_first_out_mode
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@staticmethod
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def from_server_args(server_args: ServerArgs):
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config = DllmConfig.from_server_args(server_args)
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return get_algorithm(config)
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def init_step_state(self, forward_batch: ForwardBatch) -> List[Any]:
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return [None] * forward_batch.batch_size
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def max_steps(self, block_size: int) -> int:
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return block_size + 1
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def step(
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self,
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forward_batch: ForwardBatch,
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full_logits: torch.Tensor,
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states: List[Any],
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) -> List[bool]:
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"""One denoise step, advancing ``forward_batch.input_ids``/``states`` in
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place. Returns, per block, whether it was already complete *on entry* --
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i.e. this forward persisted its final KV cache and it can be emitted.
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"""
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raise NotImplementedError
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def run(
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self,
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model_runner: ModelRunner,
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forward_batch: ForwardBatch,
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algo_states: Optional[List[Any]] = None,
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) -> DllmRunOutput:
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if self.fdfo:
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return self._run_fdfo(model_runner, forward_batch, algo_states)
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return self._run_sync(model_runner, forward_batch)
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def _block_start_list(self, forward_batch: ForwardBatch) -> List[int]:
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batch_size = forward_batch.batch_size
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input_ids = forward_batch.input_ids.view(batch_size, self.block_size)
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return (input_ids != self.mask_id).sum(dim=1).tolist()
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def _run_sync(
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self, model_runner: ModelRunner, forward_batch: ForwardBatch
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) -> DllmRunOutput:
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batch_size = forward_batch.batch_size
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start_list = self._block_start_list(forward_batch)
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out = model_runner.forward(forward_batch, pp_proxy_tensors=None)
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# No mask to denoise: return empty so process_batch_result_dllm skips the
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# stream branch (matches the pre-refactor behavior).
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if all(start == self.block_size for start in start_list):
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return out.logits_output, [], None, None, out.can_run_graph
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states = self.init_step_state(forward_batch)
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for _ in range(self.max_steps(self.block_size)):
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done = self.step(forward_batch, out.logits_output.full_logits, states)
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if all(done):
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break
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out = model_runner.forward(forward_batch, pp_proxy_tensors=None)
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next_token_ids = forward_batch.input_ids.view(batch_size, self.block_size)
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next_token_ids_list = [
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next_token_ids[i, start_list[i] :] for i in range(batch_size)
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]
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return out.logits_output, next_token_ids_list, None, None, out.can_run_graph
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def _run_fdfo(
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self,
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model_runner: ModelRunner,
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forward_batch: ForwardBatch,
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algo_states: Optional[List[Any]],
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) -> DllmRunOutput:
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batch_size = forward_batch.batch_size
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if algo_states is None:
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algo_states = [None] * batch_size
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fresh: Optional[List[Any]] = None
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states: List[Any] = []
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for i, carried in enumerate(algo_states):
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if carried is None:
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if fresh is None:
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fresh = self.init_step_state(forward_batch)
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states.append(fresh[i])
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else:
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states.append(carried)
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out = model_runner.forward(forward_batch, pp_proxy_tensors=None)
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done = self.step(forward_batch, out.logits_output.full_logits, states)
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accept_length_per_req_cpu = [self.block_size if d else 0 for d in done]
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next_token_ids_list = forward_batch.input_ids.view(
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batch_size, self.block_size
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).tolist()
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states_out = [None if done[i] else states[i] for i in range(batch_size)]
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return (
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out.logits_output,
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next_token_ids_list,
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accept_length_per_req_cpu,
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states_out,
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out.can_run_graph,
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)
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