torch.compile (inductor)
PyTorch · python · MIT
Kernel source · 36 lines ↓holds 2 records
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32_Conv2d_Scaling_Min.py
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symbolModel.forward
Compatibility
measured onNVIDIA H100
declared hardwaredeclared only
architectures—
dtypes
Benchmark evidence
2 measurements across 1 GPU, fastest first.
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Source and license
sourceavailable
revision digestsha256:3486832d8bb4197b4f02a5fa964cd7bbe0bf3b63ecf5ee344c653e575b0e7379
license declaredMIT
license concludedMIT
imported2026-08-26
Kernel source
32_Conv2d_Scaling_Min.py36 lines
import torch
import torch.nn as nn
class Model(nn.Module):
"""
Model that performs a convolution, scales the output, and then applies a minimum operation.
"""
def __init__(self, in_channels, out_channels, kernel_size, scale_factor):
super(Model, self).__init__()
self.conv = nn.Conv2d(in_channels, out_channels, kernel_size)
self.scale_factor = scale_factor
def forward(self, x):
"""
Args:
x (torch.Tensor): Input tensor of shape (batch_size, in_channels, height, width).
Returns:
torch.Tensor: Output tensor of shape (batch_size, out_channels, height, width).
"""
x = self.conv(x)
x = x * self.scale_factor
x = torch.min(x, dim=1, keepdim=True)[0] # Minimum along channel dimension
return x
batch_size = 64
in_channels = 64
out_channels = 128
height = width = 256
kernel_size = 3
scale_factor = 2.0
def get_inputs():
return [torch.rand(batch_size, in_channels, height, width)]
def get_init_inputs():
return [in_channels, out_channels, kernel_size, scale_factor]scrolls · 36 lines total
Source code from KernelBench, © 2023 Anne Ouyang, Simon Guo, Azalia Mirhoseini (Scaling Intelligence Lab, Stanford University), MIT License · MIT
Best evidence level for this revision: reported
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