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dc.contributor.authorGaudet, B
dc.contributor.authorLinares, R
dc.contributor.authorFurfaro, R
dc.date.accessioned2021-10-27T20:23:28Z
dc.date.available2021-10-27T20:23:28Z
dc.date.issued2020-04-01
dc.identifier.urihttps://hdl.handle.net/1721.1/135440
dc.description.abstract© 2020 IAA This paper proposes a novel adaptive guidance system developed using reinforcement meta-learning with a recurrent policy and value function approximator. The use of recurrent network layers allows the deployed policy to adapt in real time to environmental forces acting on the agent. We compare the performance of the DR/DV guidance law, an RL agent with a non-recurrent policy, and an RL agent with a recurrent policy in four challenging environments with unknown but highly variable dynamics. These tasks include a safe Mars landing with random engine failure and a landing on an asteroid with unknown environmental dynamics. We also demonstrate the ability of a RL meta-learning optimized policy to implement a guidance law using observations consisting of only Doppler radar altimeter readings in a Mars landing environment, and LIDAR altimeter readings in an asteroid landing environment thus integrating guidance and navigation.
dc.language.isoen
dc.publisherElsevier BV
dc.relation.isversionof10.1016/j.actaastro.2020.01.007
dc.rightsCreative Commons Attribution-NonCommercial-NoDerivs License
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.sourcearXiv
dc.titleAdaptive guidance and integrated navigation with reinforcement meta-learning
dc.typeArticle
dc.relation.journalActa Astronautica
dc.eprint.versionOriginal manuscript
dc.type.urihttp://purl.org/eprint/type/JournalArticle
eprint.statushttp://purl.org/eprint/status/NonPeerReviewed
dc.date.updated2021-05-06T13:40:28Z
dspace.orderedauthorsGaudet, B; Linares, R; Furfaro, R
dspace.date.submission2021-05-06T13:40:29Z
mit.journal.volume169
mit.licensePUBLISHER_CC
mit.metadata.statusAuthority Work and Publication Information Needed


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