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Checklist USA-NA-AIO 2026 Round 1 · Task 8

ResNet-50 Parameters and a Frozen Backbone

Count parameters and output shapes of a pretrained ResNet-50 and build a frozen truncated backbone for 5-class classification.

  • Vision
  • CNN architecture analysis (coding)

The task

Problem 8 (25 points) loads torchvision's pretrained resnet50. The parts ask for the total number of learnable parameters, the output shape of model.layer2 for input (B, 3, 224, 224), the number of learnable parameters in the convolutional modules of model.layer3[2] without using numel, and a 5-class classifier that uses the network truncated after model.layer3[4] as a frozen backbone.

Abridged by SOTA from the official materials. The official statement has the exact rules, and it wins wherever this summary differs.

At a glance

You submit
Code and numeric answers.
Rules
  • Part 8.3 forbids numel on Parameter objects.
Format
2026 USA-NA-AIO Round 1, 30 January 2026 (date printed on the problem set). Individual, proctored.

Details

Year
2026, Proctored at schools or authorised test sites
Round
Round 1 · Task 8
Language
English
License
Not stated by the source