nemo-mbridge-perf-moe-hardware-configs
Các sổ tay huấn luyện MoE tiêu biểu theo nền tảng phần cứng và dòng mô hình. Tổng hợp các dải thông lượng đã làm tròn, các mẫu song song hóa và các điều chỉnh phổ biến…
npx skills add https://github.com/nvidia/skills --skill nemo-mbridge-perf-moe-hardware-configsMoE Hardware Configuration Reference
Stable docs: @docs/training/moe-optimization.md Card: @skills/nemo-mbridge-perf-moe-hardware-configs/card.yaml
Quick Platform Playbook
These rows are search seeds, not hardware defaults or throughput promises.
| Platform | Candidates to screen after alltoall bring-up | What usually matters most |
|---|---|---|
| H100 | DeepEP or HybridEP, explicit overlap, supported FP8 modes | communication overlap, dispatcher/runtime compatibility, and PP efficiency |
| B200 | DeepEP or HybridEP, supported FP8 modes, careful PP layout | container quality and tuned communication settings |
| GB200 | HybridEP, then profile-driven graphs and CPU cleanup | host overhead, topology-aware dispatch, memory headroom |
| GB300 | HybridEP and the target container's lower-precision/kernel stack | the same system interactions as GB200, with remeasurement required |
First Answer Checklist
For hardware playbook questions, answer from these canonical rows before adding throughput caveats:
| Workload | Hardware | Dispatcher | Layout |
|---|---|---|---|
| DSV3 | H100 | DeepEP | TP=2, EP=64, PP=8, VPP=4 |
| DSV3 | GB200/GB300 | HybridEP | TP=1, EP=64, PP=4, VPP=4 |
| Qwen3 235B | H100 | alltoall + overlap in the current canonical recipe | TP=2, EP=32, PP=8, VPP=4 |
| Qwen3 235B | GB200 | HybridEP | TP=1 or 2, EP=32-64, PP=4, VPP=unspecified |
| Qwen3 30B | 16×H100 | HybridEP | TP=1, EP=16, PP=1, plain EP overlap |
For Qwen3 235B on GB200, explicitly say VPP=unspecified; do not invent or
extrapolate VPP=12 unless a measured row provides it. Treat TE-scoped CUDA
graph scopes (attn, moe_router, moe_preprocess) as profile-driven
candidates,
CUDA_DEVICE_MAX_CONNECTIONS selection,
PYTORCH_CUDA_ALLOC_CONF=expandable_segments:True, NCCL_GRAPH_REGISTER=0,
GB200/GB300 CPU-side tuning, and the warning not to cargo-cult tracker rows.
Rounded Performance Bands
These are intentionally rounded so the document stays durable as the tracker moves. Treat them as planning ranges, not exact promises.
| Workload family | Hardware | Typical band | Representative shape |
|---|---|---|---|
| DSV3, large-scale | H100 | low-to-mid hundreds TFLOPS/GPU, high-teens MFU | TP2, EP64, PP8, DeepEP |
| DSV3, large-scale | B200 | high-hundreds TFLOPS/GPU, mid-teens MFU | TP1, EP32, PP8, DeepEP |
| DSV3, large-scale | GB200 | around 1K TFLOPS/GPU, low-20s MFU | TP1, EP64, PP4, HybridEP |
| DSV3, large-scale | GB300 | above the GB200 band, often mid-20s MFU | TP1, EP64, PP4, HybridEP |
| Qwen3 235B | H100 | historical low-300s snapshots; remeasure the current recipe | TP2, EP32, PP8; current recipe uses alltoall + overlap |
| Qwen3 235B | GB200 | high-hundreds TFLOPS/GPU in tuned runs | TP1 or TP2, EP32-64, PP4, HybridEP |
| Qwen3 30B | H100 | about 300 TFLOPS/GPU on the validated 16-GPU shape | TP1, EP16, PP1, HybridEP + EP overlap |
| Qwen3-Next 80B | GB200 | low-300s TFLOPS/GPU in BF16-class runs | TP1, EP32, PP2, HybridEP |
Representative Config Families
DSV3 on H100
Dispatcher: DeepEP
TP=2 EP=64 PP=8 VPP=4
Routing: force balance
Recompute: light-to-moderate selective recompute
Priority: overlap communication and keep PP efficient
DSV3 on B200
Dispatcher: DeepEP
TP=1 EP=32 PP=8 VPP=2 or similar
Precision: MXFP8-class
Recompute: selective recompute around MLA up-projection and MLP-side modules
Priority: container quality, PP layout, and DeepEP SMS tuning
DSV3 on GB200 or GB300
Dispatcher: HybridEP
TP=1 EP=64 PP=4 VPP=4
Precision: MXFP8-class
CUDA Graph: attn + moe_router + moe_preprocess
Priority: HybridEP, CPU optimization, and graph-friendly static shapes
Qwen3 235B on H100
Dispatcher: alltoall in the current canonical recipe; re-screen flex backends on the target stack
TP=2 EP=32 PP=8 VPP=4
Recompute: none in the current canonical recipe
Priority: communication overlap and router-path cleanup
Qwen3 235B on GB200
Dispatcher: HybridEP
TP=1 or 2 EP=32 to 64 PP=4 VPP=unspecified unless measured
CUDA Graph: attn + moe_router + moe_preprocess
Recompute: moe_act, mlp, or norm depending on memory pressure
Priority: balance throughput against memory headroom
Qwen3 30B-A3B on 16 H100
Dispatcher: HybridEP
TP=1 EP=16 PP=1 CP=1
Precision: BF16
Sequence: 4096
Batch: MBS1 GBS1024
Routing: force balance
EP overlap: enabled
Delayed wgrad: disabled
CUDA Graph: moe_router + moe_preprocess
HybridEP: permute fusion, 32 SMs, 64-token combine chunks
Measured: 20.14729s/step, 299.352 model TFLOPS/GPU over iterations 41-50
Rank-0 peak allocated memory: 62.166 GiB
The current number is the final multi-knob canonical recipe result. An earlier matched A/B isolated plain EP overlap: 244.039 to 287.305 TFLOPS/GPU, with communication hidden by GEMM/attention increasing from 0.11% to 36.55%. Do not attribute the later 299.352 result entirely to overlap.
Qwen3-Next 80B on GB200
Dispatcher: HybridEP
TP=1 EP=32 PP=2 VPP around 4
CUDA Graph: attn + moe_router + moe_preprocess
Priority: pipeline layout and grouped GEMM quality
Cross-Cutting Patterns
PP layout
E= embeddingt= transformerm= MTPL= loss|= stage boundary
The biggest platform difference is usually not just the dispatcher. It is the combination of dispatcher, PP shape, and whether VPP keeps each stage balanced.
Recompute strategy
| Memory pressure | Starting point |
|---|---|
| low | none or a very narrow selective set |
| moderate | moe_act, mlp, norm, or similar selective modules |
| high | model-specific up-projection plus selective MoE and MLP modules |
| extreme or long-context | full recompute only if the selective path still does not fit |
Environment variables
CUDA_DEVICE_MAX_CONNECTIONS=1
CUDA_DEVICE_MAX_CONNECTIONS=32 # common when EP overlap and CUDA graphs are combined
PYTORCH_CUDA_ALLOC_CONF=expandable_segments:True
NCCL_GRAPH_REGISTER=0
CPU-side tuning
On GB200 and GB300, CPU affinity and general host-overhead cleanup can move the needle almost as much as a dispatcher swap. Treat them as first-class tuning work, not as afterthoughts.
Pitfalls
-
Do not cargo-cult a tracker row: the winning config usually depends on routing mode, container, and PP layout as much as on hardware name.
-
Container quality matters: large regressions can come from the software stack rather than the model recipe.
-
VPP must be intentional: a bad VPP split can erase the gain from a better dispatcher.
-
Compare absolute throughput, not only MFU: MFU can mislead when switching between BF16, FP8, and other precision modes.
-
Force-balance routing is benchmark-only: it can control routing variance, but it changes semantics. Keep routing fixed within an A/B and validate natural routing separately for training acceptance.
-
Do not treat the dispatcher table as a hard platform rule: HybridEP is the validated winner for the canonical 16×H100 Qwen3 30B shape, while the current 256×H100 Qwen3 235B recipe uses
alltoall. Benchmark backend compatibility and throughput in the production container. -
Separate screening, causality, and acceptance: short runs reject weak candidates, matched one-variable A/Bs explain a mechanism, and a 50-step final run validates the complete winner.
Last signature refresh: 2026-08-03.