Using neural networks to speed up optimization algorithms

被引:5
|
作者
Bazan, M
Russenschuck, S
机构
[1] Univ Wroclaw, Inst Comp Sci, PL-51151 Wroclaw, Poland
[2] CERN, CH-1211 Geneva 23, Switzerland
来源
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D O I
10.1051/epjap:2000177
中图分类号
O59 [应用物理学];
学科分类号
摘要
The paper presents the application of Radial-basis-function (RBF) neural networks to speed up deterministic search algorithms used for the design and optimization of superconducting LHC magnets. The optimization of the iron yoke of the main dipoles requires a number of numerical held computations per trial solution as the held quality depends on the excitation of the magnets. This results in computation times of about 30 minutes for each objective function evaluation (on a DEC-Alpha 600/333) and only the most robust (deterministic) optimization algorithms can be applied. Using a RBF function approximator, the achieved speed-up of the search algorithm is in the order of 25% for problems with two parameters and about 18% for problems with three and five design variables.
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页码:109 / 115
页数:7
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