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PyTorch eager

Conv2d BatchNorm Scaling · width = 128 · height = 128 · batch_size = 128 · in_channels = 8 · fp32 · run 01a03f0e-f83c…
●passedReported evidence

Not re-observed recently.

Primary measurement
3.52ms±0.00 · mean of 100

Rank 2 in its comparison group · source-native comparison · observed 2026-03-05

Compare with #1 →

max ms 3.55 · min ms 3.5 · std ms 0.0082 · mean ms 3.52

Identity
implementationPyTorch eager
projectPyTorch
revisionunknown
workloadwidth = 128 · height = 128 · batch_size = 128 · in_channels = 8 · fp32
comparison keysha256:8886f9ec8cf8facf…
sourceKernelBench baseline timings
external idH100_PCIe_LambdaLabs/torch/level2/73_Conv2d_BatchNorm_Scaling.py
sha256:155c2b7b2215f23b448e029…

Correctness

Marked passed by the source; the correctness policy was not published.

Workload

width128
height128
batch_size128
in_channels8
input_1fp32 [128, 8, 128, 128]
definition comparatornot_asserted

Measurements

latency · max3.55 ms · n=100
latency · mean3.52 ms · n=100
latency · min3.50 ms · n=100
latency · std8.20 µs

Protocol

harnessKernelBench timing scripts
timercuda_events
primaryStatisticmean
comparabilityFamilykernelbench_baseline_timing

Environment

gpuNVIDIA H100 (sm_90)

Artifacts

No artifacts published with this run.

Replications and notes

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Canonical manifest

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{
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    "kind": "BenchmarkRun",
    "spec": {
      "status": "passed",
      "timing": {
        "samples": 100,
        "latencyNs": {
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          "maximum": 3550000,
          "minimum": 3500000,
          "confidence95": [
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            3521607
          ]
        },
        "primaryStatistic": "mean"
      },
      "observedAt": "2026-03-05T08:38:15.000Z",
      "measurements": [
        {
          "unit": "ns",
          "value": 8200,
          "metric": "latency",
          "statistic": "std"
        }
      ],
      "sourceNative": {
        "source": "kernelbench",
        "metrics": {
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          "min_ms": 3.5,
          "std_ms": 0.0082,
          "mean_ms": 3.52
        },
        "benchmark": "H100_PCIe_LambdaLabs/baseline_time_torch.json",
        "externalId": "H100_PCIe_LambdaLabs/torch/level2/73_Conv2d_BatchNorm_Scaling.py"
      },
      "protocolDigest": "sha256:547725b033a9911eae0c5ac362344a85aed824894ed4ab476af945b9bb491ea6",
      "workloadDigest": "sha256:0c727616b22eccf48f58c94b2c5d43f3c9d0790677341f869faf3c423ad6a696",
      "environmentDigest": "sha256:89f9b28b06758f22a1df331fea58bfde2c9cc0f3627d1829509743ea538f0011",
      "implementationDigest": "sha256:13d0229373f6ef67f6eec0548a19d91cbf89b7d74e531a6f9f0d7ed9034910b5"
    },
    "metadata": {
      "name": "kernelbench-h100-pcie-lambdalabs-torch-l2-73-conv2d-batchnorm-scaling",
      "title": "Conv2d BatchNorm Scaling · PyTorch eager · Lambda Labs"
    },
    "apiVersion": "kernelindex.dev/v1alpha1"
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  "protocol": {
    "kind": "BenchmarkProtocol",
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      "harness": {
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      },
      "comparability": {
        "notes": "Mean of 100 timed forward passes (CUDA events, warm-up excluded) of the reference module on fixed inputs; the 95% interval is the mean's, from the reported standard deviation. The upstream JSON records no torch or CUDA version. Comparable only within one problem and one timing host.",
        "family": "kernelbench_baseline_timing"
      }
    },
    "metadata": {
      "name": "kernelbench-timing-v1",
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  "environment": {
    "kind": "ExecutionEnvironment",
    "spec": {
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      "name": "kernelbench-h100-pcie-lambdalabs",
      "title": "KernelBench host · H100 PCIe (Lambda Labs)"
    },
    "apiVersion": "kernelindex.dev/v1alpha1"
  }
}
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