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Pooling CNN (Caltech 101)

Training compute
1.2×10¹⁵ FLOP
Parameters
294.9K
Published
Sep 15, 2010

Pooling CNN (Caltech 101) is an AI model developed by University of Bonn (Germany), first published in September 2010. It works in the vision domain, on tasks such as image classification.

Training it took an estimated 1.2×10¹⁵ FLOP of compute (estimation method: operation counting). The model has 294,912 parameters. It was trained on roughly 3.1K datapoints.

Access: Unreleased. Its weights are not openly released. Epoch AI rates the confidence of this record as confident.

Full record
Organization
University of Bonn
Country of organization
Germany
Domain
Vision
Task
Image classification
Training compute
1.2×10¹⁵ FLOP
Compute estimation method
Operation counting
Parameters
294,912
Dataset size
3.1K
Model accessibility
Unreleased
Open weights
No
Epoch confidence
Confident
More from University of Bonn
SourceEpoch AI, 'AI Models'. Published online at epoch.ai. Retrieved 2026-07-29 from https://epoch.ai/data/ai-models. Licensed under CC BY 4.0.
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