Specs Comparisons

H100 SXM5 vs V100 SXM2 32GB

NVIDIA H100 SXM5 (Hopper, 80 GB) against NVIDIA V100 SXM2 32GB (Volta, 32 GB): memory, compute, power and rental price, compared for LLM inference and training.

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Side-by-Side Specifications

SpecH100 SXM5V100 SXM2 32GB
ArchitectureHopperVolta
Memory80 GB HBM332 GB HBM2
Memory bandwidth3,350 GB/s900 GB/s
FP16 tensor compute1,979 TFLOPS125 TFLOPS
INT8 tensor compute3,958 TOPS62.8 TOPS
InterconnectNVLink 4.0 · 900 GB/sNVLink 2.0 · 300 GB/s
TDP700 W300 W
Est. on-demand price~$8.00/h~$2.00/h
FP16 TFLOPS per $/h24763

Highlighted values indicate the stronger spec. Hourly rates are indicative on-demand estimates.

Verdict

Raw performance: The H100 SXM5 leads on FP16 tensor compute (15.8x advantage), which translates directly into higher token throughput for inference and shorter training steps.

Memory: With 80 GB per card, the H100 SXM5 fits larger models on fewer GPUs — fewer cards means less inter-GPU communication and simpler deployments.

Value: At current on-demand rates, the H100 SXM5 delivers more compute per dollar (247 vs 63 FP16 TFLOPS per $/h). If your model fits in its VRAM budget, it is usually the more economical choice.

GPUs Needed for Popular LLMs

Cards required to serve each model at 8-bit quantization (with 20% overhead for activations and KV cache).

ModelVRAM (8-bit)H100 SXM5V100 SXM2 32GB
GPT-5.6 Sol2682 GB34x84x
DeepSeek V4 Pro (671B)750 GB10x24x
Muse Spark 1.1335 GB5x11x
Claude 5 Sonnet (175B)196 GB3x7x
Nova Premier (80B)89 GB2x3x
Nova Core (34B)38 GB1x2x
Nova Lite (12B)13 GB1x1x
Phi 3.5 (3.8B)4 GB1x1x

Frequently Asked Questions

Which is better for LLM inference: H100 SXM5 or V100 SXM2 32GB?

The H100 SXM5 delivers more raw FP16 compute (1,979 TFLOPS) and the H100 SXM5 offers the most memory per card (80 GB). For cost-efficiency, the H100 SXM5 currently gives more FP16 TFLOPS per dollar of on-demand rental (247 vs 63 TFLOPS per $/h).

How much more memory does the H100 SXM5 have?

The H100 SXM5 has 80 GB of HBM3 versus 32 GB of HBM2 for the V100 SXM2 32GB — a ratio of 2.50x in favor of the H100 SXM5. More VRAM per card means fewer GPUs to fit a given model.

Is the H100 SXM5 or the V100 SXM2 32GB cheaper to rent?

Estimated on-demand rates are ~$8.00/h for the H100 SXM5 and ~$2.00/h for the V100 SXM2 32GB. Raw hourly price is only part of the story: normalize by throughput (TFLOPS per $/h) and by how many cards you need for your model's VRAM.

How do the H100 SXM5 and V100 SXM2 32GB compare on power?

The H100 SXM5 has a TDP of 700W versus 300W for the V100 SXM2 32GB. FP16 compute per watt: 2.8 vs 0.4 TFLOPS/W.