Variational Memory Addressing in Generative Models

Jörg Bornschein, Andriy Mnih, Daniel Zoran, Danilo Jimenez Rezende

Neural Information Processing Systems 

To illustrate the advantages of this approach we incorporate it into a variational autoencoder and apply the resulting model to the task of generative few-shot learning. The intuition behind this architecture is that the memory module can pick a relevant template from memory and the continuous part of the model can concentrate on modeling remaining variations.

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