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MULTI-OBJECTIVE REINFORCEMENT LEARNING FOR LOW-THRUST TRANSFER DESIGN BETWEEN LIBRATION POINT ORBITSMulti-Reward Proximal Policy Optimization (MRPPO) is a multi-objective reinforcement learning algorithm used to construct low-thrust transfers between periodic orbits in multi-body systems. Previous implementations of MRPPO have relied on a predefined reference transfer to successfully train each policy. In this paper, an algorithmic modification labeled the ‘moving reference’, is introduced to autonomously construct these reference trajectories during training. With this modification, MRPPO is used to recover various low-thrust transfers between two periodic orbits in the Earth-Moon circular restricted three-body problem to solve a multi-objective optimization problem. These results are then compared with the solutions recovered via a gradient descent optimization scheme to validate the performance of MRPPO with the moving reference modification
Document ID
20210021654
Acquisition Source
Goddard Space Flight Center
Document Type
Conference Paper
Authors
Christopher John Sullivan
(University of Colorado Boulder Boulder, Colorado, United States)
Natasha Bosanac
(University of Colorado Boulder Boulder, Colorado, United States)
Alinda Kenyana Mashiku
(Goddard Space Flight Center Greenbelt, Maryland, United States)
Rodney L Anderson
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Date Acquired
September 15, 2021
Subject Category
Astrodynamics
Meeting Information
Meeting: 2021 AAS/AIAA Astrodynamics Specialist Conference
Location: Online
Country: US
Start Date: August 9, 2021
End Date: August 12, 2021
Sponsors: American Institute of Aeronautics and Astronautics, American Astronautical Society
Funding Number(s)
CONTRACT_GRANT: 80GSFC19C0072
CONTRACT_GRANT: J-090020
CONTRACT_GRANT: 80NM0018D0004P00002
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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