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Distributed Parallel Processing and Dynamic Load Balancing Techniques for Multidisciplinary High Speed Aircraft DesignMultidisciplinary design optimization (MDO) for large-scale engineering problems poses many challenges (e.g., the design of an efficient concurrent paradigm for global optimization based on disciplinary analyses, expensive computations over vast data sets, etc.) This work focuses on the application of distributed schemes for massively parallel architectures to MDO problems, as a tool for reducing computation time and solving larger problems. The specific problem considered here is configuration optimization of a high speed civil transport (HSCT), and the efficient parallelization of the embedded paradigm for reasonable design space identification. Two distributed dynamic load balancing techniques (random polling and global round robin with message combining) and two necessary termination detection schemes (global task count and token passing) were implemented and evaluated in terms of effectiveness and scalability to large problem sizes and a thousand processors. The effect of certain parameters on execution time was also inspected. Empirical results demonstrated stable performance and effectiveness for all schemes, and the parametric study showed that the selected algorithmic parameters have a negligible effect on performance.
Document ID
20010110776
Acquisition Source
Ames Research Center
Document Type
Thesis/Dissertation
Authors
Krasteva, Denitza T.
(Virginia Polytechnic Inst. and State Univ. Blacksburg, VA United States)
Date Acquired
September 7, 2013
Publication Date
September 1, 1998
Subject Category
Aircraft Design, Testing And Performance
Funding Number(s)
CONTRACT_GRANT: F49620-92-J-0236
CONTRACT_GRANT: NSF DMS-94-00217
CONTRACT_GRANT: NAG2-1180
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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