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b-cnns: Bayesian Convolutional Neural Networks

Bayesian Convolutional Neural Networks

This repository contains codes to run Bayesian Convolutional Neural Networks on CIFAR-10. It is shown (in run_cnn.py) that small convolutional net (with 26,000 parameters), is able to achieve 71% test set accuracy on CIFAR-10. A small dense network is able to achieve 55% accuracy. All computation was done on a local RTX 2080, with 8GB GPU RAM.

The codebase relies on JAX, NumPyro and some utilites of tfdatasets.