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simmediumatarimetric · varies

Mask Atari for Deep Reinforcement Learning as POMDP Benchmarks

Description

We present Mask Atari, a new benchmark to help solve partially observable Markov decision process (POMDP) problems with Deep Reinforcement Learning (DRL)-based approaches. To achieve a simulation environment for the POMDP problems, Mask Atari is constructed based on Atari 2600 games with controllable, moveable, and learnable masks as the observation area for the target agent, especially with the active information gathering (AIG) setting in POMDPs. Given that one does not yet exist, Mask Atari p

Source

http://arxiv.org/abs/2203.16777v1