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Unsupervised Representation Learning in Partially Observable Atari Games

Description

State representation learning aims to capture latent factors of an environment. Contrastive methods have performed better than generative models in previous state representation learning research. Although some researchers realize the connections between masked image modeling and contrastive representation learning, the effort is focused on using masks as an augmentation technique to represent the latent generative factors better. Partially observable environments in reinforcement learning have

Source

http://arxiv.org/abs/2303.07437v1