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Automating the Process of Optimization in Spacecraft DesignSpacecraft design optimization is a difficult problem, due to the complexity of optimization cost surfaces, and human expertise in optimization that is necessary in order to achieve good results. In this paper, we propose the use of a set of generic, metaheuristic optimization algorithms (e.g., generic algorithms, simulated annealing), which is configured for a particular optimization problem by an adaptive problem solver based on artificial intelligence and machine learning techniques. We describe work in progress on OASIS, a system for adaptive problem solving based on these principles.
Document ID
20210003838
Acquisition Source
Jet Propulsion Laboratory
Document Type
Other
External Source(s)
Authors
Stechert, Andre D.
Sherwood, Robert L.
Mutz, Darren
Chien, Steve
Fukunaga, Alex
Date Acquired
February 1, 1997
Publication Date
February 1, 1997
Publication Information
Publisher: UNKNOWN
Distribution Limits
Public
Copyright
Other
Technical Review
Keywords
optimization
spacecraft
design
algorithms
articificial
intelligence
machine
learning
OASIS
adaptive
problem
solving
simulated
annealing

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