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Amur Ghose

4 accepted papers

2023

Spectral Augmentations for Graph Contrastive Learning

AISTATS 2023poster

Contrastive learning has emerged as a premier method for learning representations with or without supervision. Recent studies have shown its utility in graph representation learning for pre-training. Despite successes, the understanding of how to design effective graph augmentations that can capture…

2020

Batch norm with entropic regularization turns deterministic autoencoders into generative models

UAI 2020poster

The variational autoencoder is a well defined deep generative model that utilizes an encoder-decoder framework where an encoding neural network outputs a non-deterministic code for reconstructing an input. The encoder achieves this by sampling from a distribution for every input, instead of outputti…

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