Multi-Horizon Representations with Hierarchical Forward Models for Reinforcement Learning

Fuente: arXiv
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Main Authors: McInroe, Trevor, Schäfer, Lukas, Albrecht, Stefano V.
Format: Preprint
Published: 2022
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author McInroe, Trevor
Schäfer, Lukas
Albrecht, Stefano V.
author_facet McInroe, Trevor
Schäfer, Lukas
Albrecht, Stefano V.
contents Learning control from pixels is difficult for reinforcement learning (RL) agents because representation learning and policy learning are intertwined. Previous approaches remedy this issue with auxiliary representation learning tasks, but they either do not consider the temporal aspect of the problem or only consider single-step transitions, which may cause learning inefficiencies if important environmental changes take many steps to manifest. We propose Hierarchical $k$-Step Latent (HKSL), an auxiliary task that learns multiple representations via a hierarchy of forward models that learn to communicate and an ensemble of $n$-step critics that all operate at varying magnitudes of step skipping. We evaluate HKSL in a suite of 30 robotic control tasks with and without distractors and a task of our creation. We find that HKSL either converges to higher or optimal episodic returns more quickly than several alternative representation learning approaches. Furthermore, we find that HKSL's representations capture task-relevant details accurately across timescales (even in the presence of distractors) and that communication channels between hierarchy levels organize information based on both sides of the communication process, both of which improve sample efficiency.
format Preprint
id arxiv_https___arxiv_org_abs_2206_11396
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Multi-Horizon Representations with Hierarchical Forward Models for Reinforcement Learning
McInroe, Trevor
Schäfer, Lukas
Albrecht, Stefano V.
Machine Learning
Learning control from pixels is difficult for reinforcement learning (RL) agents because representation learning and policy learning are intertwined. Previous approaches remedy this issue with auxiliary representation learning tasks, but they either do not consider the temporal aspect of the problem or only consider single-step transitions, which may cause learning inefficiencies if important environmental changes take many steps to manifest. We propose Hierarchical $k$-Step Latent (HKSL), an auxiliary task that learns multiple representations via a hierarchy of forward models that learn to communicate and an ensemble of $n$-step critics that all operate at varying magnitudes of step skipping. We evaluate HKSL in a suite of 30 robotic control tasks with and without distractors and a task of our creation. We find that HKSL either converges to higher or optimal episodic returns more quickly than several alternative representation learning approaches. Furthermore, we find that HKSL's representations capture task-relevant details accurately across timescales (even in the presence of distractors) and that communication channels between hierarchy levels organize information based on both sides of the communication process, both of which improve sample efficiency.
title Multi-Horizon Representations with Hierarchical Forward Models for Reinforcement Learning
topic Machine Learning
url https://arxiv.org/abs/2206.11396