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KLDivLoss

4 eligible runs
kl-divergence

KernelBench level1 problem 98: KLDivLoss. The computation is the reference PyTorch module's forward pass; the output shape follows the module (mirrored as each implementation's source).

Fastest reported
779.0µs±2.43 · mean of 100 · 4.96× faster than baseline
torch.compile (inductor)PyTorch · MIT · python

Reported evidence · last observed 2026-03-05. Reported by source; not independently reproduced.

Current records

Source-native comparison · GPU NVIDIA H100 · Workload batch_size = 16384 · fp32 · Protocol KernelBench timing scripts · mean · 2 results · last observed 2026-03-05Record history →
Estimated floor 641.0 µs · record 1.22× above itestimate, not evidence ›
DRAM 641.0 µs · bandwidth-bound on H100 SXM
every declared tensor crosses HBM exactly once (3,350 GB/s, H100 SXM datasheet)
no arithmetic formula for this family: bandwidth floor only
headroom-v1: a lower bound from declared tensors and datasheet peaks. A kernel can sit well above it for good reasons.
#
Implementation
Latency
vs #1
Trust
Observed
1
779.0µs±2.43
1.00×
Reported · MIT · source
2026-03-05stale

4.96× faster than the baseline. Measured exactly what you asked. Reported by source; not independently reproduced.

source mirroredMITno install recipeView source →Run detail →
2
PyTorch eagerbaselinePyTorch
3.86ms±0.00
4.96×
Reported · MIT · source
2026-03-05stale

Measured exactly what you asked. The source's designated baseline implementation. Reported by source; not independently reproduced.

source mirroredMITno install recipeView source →Run detail →

Implementations

Implementation
Runtime
Best latency
Evidence
Availability
python · torch_eager
3.86ms
4.96×
Reported
MIT · source
python · torch_compile_inductor
779.0µs
1.00×
Reported
MIT · source

Semantics

Inputs and outputs
input_2fp32 [batch_size, 16384]
input_3fp32 [batch_size, 16384]
outfloat [out]
Axes and behavior
outvariable
batch_sizevariable
determinismunspecified
constraintsNo mutation or aliasing
Identity
sha256331d693bcd86…
Sources: KernelBench baseline timings (2026-03-05) · MITlast observed 2026-03-05How records are decidedJSON