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dc.contributor.authorSun, Chen
dc.contributor.authorKarlsson, Per
dc.contributor.authorWu, Jiajun
dc.contributor.authorTenenbaum, Joshua B
dc.contributor.authorMurphy, Kevin P
dc.date.accessioned2020-08-14T19:18:58Z
dc.date.available2020-08-14T19:18:58Z
dc.date.issued2019-05
dc.date.submitted2018-09
dc.identifier.urihttps://hdl.handle.net/1721.1/126593
dc.description.abstractWe present a method that learns to integrate temporal information, from a learned dynamics model, with ambiguous visual information, from a learned vision model, in the context of interacting agents. Our method is based on a graph-structured variational recurrent neural network (Graph-VRNN), which is trained end-to-end to infer the current state of the (partially observed) world, as well as to forecast future states. We show that our method outperforms various baselines on two sports datasets, one based on real basketball trajectories, and one generated by a soccer game engine.en_US
dc.language.isoen
dc.publisherInternational Conference on Learning Representationsen_US
dc.relation.isversionofhttps://openreview.net/forum?id=r1xdH3CcKXen_US
dc.rightsCreative Commons Attribution-Noncommercial-Share Alikeen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/en_US
dc.sourcearXiven_US
dc.titleStochastic prediction of multi-agent interactions from partial observationsen_US
dc.typeArticleen_US
dc.identifier.citationSun, Chen et al. "Stochastic prediction of multi-agent interactions from partial observations." ICLR 2019: 7th International Conference on Learning Representations, May 6-9, 2019, New Orleans, Louisiana: https://openreview.net/forum?id=r1xdH3CcKX ©2019en_US
dc.contributor.departmentMassachusetts Institute of Technology. Computer Science and Artificial Intelligence Laboratoryen_US
dc.relation.journalICLR 2019: International Conference on Learning Representationsen_US
dc.eprint.versionAuthor's final manuscripten_US
dc.type.urihttp://purl.org/eprint/type/ConferencePaperen_US
eprint.statushttp://purl.org/eprint/status/NonPeerRevieweden_US
dc.date.updated2019-10-08T16:03:33Z
dspace.date.submission2019-10-08T16:03:39Z
mit.journal.volume7en_US
mit.metadata.statusComplete


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