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88 lines
3.2 KiB
Python
88 lines
3.2 KiB
Python
from typing import Tuple
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import torch
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from sglang.srt.eplb.eplb_algorithms.deepseek import rebalance_experts_hierarchical
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def rebalance_experts(
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weight: torch.Tensor,
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num_replicas: int,
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num_groups: int,
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num_nodes: int,
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num_gpus: int,
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enable_hierarchical: bool,
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active_ranks: torch.Tensor,
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) -> Tuple[torch.Tensor, torch.Tensor, torch.Tensor]:
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"""
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Entry point for expert-parallelism load balancer.
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Parameters:
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weight: [layers, num_logical_experts], the load statistics for all logical experts
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num_replicas: number of physical experts, must be a multiple of `num_gpus`
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num_groups: number of expert groups
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num_nodes: number of server nodes, where the intra-node network (e.g, NVLink) is faster
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num_gpus: number of GPUs, must be a multiple of `num_nodes`
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Returns:
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physical_to_logical_map: [layers, num_replicas], the expert index of each replica
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logical_to_physical_map: [layers, num_logical_experts, X], the replica indices for each expert
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expert_count: [layers, num_logical_experts], number of physical replicas for each logical expert
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"""
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num_layers, num_logical_experts = weight.shape
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weight = weight.float().cpu()
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num_active_ranks = active_ranks.sum().item()
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num_local_experts = num_replicas // num_gpus
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if num_active_ranks < num_gpus:
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# Must fall back to global load-balance policy
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# and fix some params
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phy2log, phyrank, logcnt = rebalance_experts_hierarchical(
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weight,
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num_local_experts * num_active_ranks,
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1,
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1,
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num_active_ranks,
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)
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elif enable_hierarchical:
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# use hierarchical load-balance policy
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phy2log, phyrank, logcnt = rebalance_experts_hierarchical(
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weight, num_replicas, num_groups, num_nodes, num_gpus
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)
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else:
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# use global load-balance policy
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phy2log, phyrank, logcnt = rebalance_experts_hierarchical(
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weight, num_replicas, 1, 1, num_gpus
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)
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maxlogcnt = logcnt.max().item()
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log2phy: torch.Tensor = torch.full(
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(num_layers, num_logical_experts, maxlogcnt),
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-1,
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dtype=torch.int64,
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device=logcnt.device,
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)
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log2phy.view(num_layers, -1).scatter_(
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-1,
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phy2log * maxlogcnt + phyrank,
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torch.arange(
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num_local_experts * num_active_ranks,
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dtype=torch.int64,
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device=log2phy.device,
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).expand(num_layers, -1),
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)
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if num_active_ranks < num_gpus:
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phy2log_slices = list(
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phy2log.view(num_layers, num_active_ranks, -1).unbind(dim=1)
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)
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active_ranks_list = active_ranks.tolist()
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for idx, active_rank in enumerate(active_ranks_list):
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if not active_rank:
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phy2log_slices.insert(idx, torch.zeros_like(phy2log_slices[0]))
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log2phy = torch.where(
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log2phy >= idx * num_local_experts,
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log2phy + num_local_experts,
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log2phy,
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)
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phy2log = torch.stack(phy2log_slices, dim=1).contiguous().view(num_layers, -1)
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return phy2log, log2phy, logcnt
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