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Contrastive Initial State Buffer for Reinforcement Learning

Messikommer, Nico; Song, Yunlong; Scaramuzza, Davide (2024). Contrastive Initial State Buffer for Reinforcement Learning. In: 2024 IEEE International Conference on Robotics and Automation (ICRA), Yokohama, Japan, 13 May 2024 - 17 May 2024. IEEE, 2866-2872.

Abstract

In Reinforcement Learning, the trade-off between exploration and exploitation poses a complex challenge for achieving efficient learning from limited samples. While recent works have been effective in leveraging past experiences for policy updates, they often overlook the potential of reusing past experiences for data collection. Independent of the underlying RL algorithm, we introduce the concept of a Contrastive Initial State Buffer, which strategically selects states from past experiences and uses them to initialize the agent in the environment in order to guide it toward more informative states. We validate our approach on two complex robotic tasks without relying on any prior information about the environment: (i) locomotion of a quadruped robot traversing challenging terrains and (ii) a quadcopter drone racing through a track. The experimental results show that our initial state buffer achieves higher task performance than the nominal baseline while also speeding up training convergence.

Additional indexing

Item Type:Conference or Workshop Item (Paper), refereed, original work
Communities & Collections:03 Faculty of Economics > Department of Informatics
Dewey Decimal Classification:000 Computer science, knowledge & systems
Scopus Subject Areas:Physical Sciences > Software
Physical Sciences > Control and Systems Engineering
Physical Sciences > Electrical and Electronic Engineering
Physical Sciences > Artificial Intelligence
Language:English
Event End Date:17 May 2024
Deposited On:22 Nov 2024 11:08
Last Modified:23 Nov 2024 21:00
Publisher:IEEE
ISBN:979-8-3503-8457-4
OA Status:Green
Publisher DOI:https://doi.org/10.1109/icra57147.2024.10610528
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