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Curiosity Driven Exploration of Learned Disentangled Goal Spaces
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Intrinsically motivated goal exploration processes enable agents to autonomously sample goals to explore efficiently complex environments with high-dimensional continuous actions. They have been applied successfully to real world robots to discover repertoires of policies producing a wide diversity of effects. Often these algorithms relied on engineered goal spaces but it was recently shown that one can use deep representation learning algorithms to learn an adequate goal space in simple environments. However, in the case of more complex environments containing multiple objects or distractors, an efficient exploration requires that the structure of the goal space reflects the one of the environment. In this paper we show that using a disentangled goal space leads to better exploration performances than an entangled goal space. We further show that when the representation is disentangled, one can leverage it by sampling goals that maximize learning progress in a modular manner. Finally, we show that the measure of learning progress, used to drive curiosity-driven exploration, can be used simultaneously to discover abstract independently controllable features of the environment.
Forward citations
Cited by 2 Pith papers
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Learning to Explore in Motion and Interaction Tasks
A learned generative model of past task motions, used as exploration noise in DDPG, speeds up learning of new robot manipulation and contact tasks by more than two times in simulation.
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A survey on intrinsic motivation in reinforcement learning
A survey that classifies intrinsic motivation methods in deep RL as knowledge acquisition or skill learning and proposes their unification through information compression.
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