Comparison of active-set and gradient projection-based algorithms for box-constrained quadratic programming

被引:0
|
作者
Serena Crisci
Jakub Kružík
Marek Pecha
David Horák
机构
[1] University of Ferrara,Department of Mathematics and Computer Science
[2] Institute of Geonics of the Czech Academy of Sciences,Department of Applied Mathematics
[3] VSB - Technical University of Ostrava,undefined
来源
Soft Computing | 2020年 / 24卷
关键词
Quadratic programming; Active set; Gradient projection;
D O I
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学科分类号
摘要
This paper presents on four chosen benchmarks an experimental evidence of efficiency of active-set-based algorithms and a gradient projection scheme exploiting Barzilai–Borwein-based steplength rule for box-constrained quadratic programming problems, which have theoretically proven rate of convergence. The crucial phase of active-set-based algorithms is the identification of the appropriate active set combining three types of steps—a classical minimization step, a step expanding the active set and a step reducing it. Presented algorithms employ various strategies using the components of the gradient for an update of this active set to be fast, reliable and avoiding undesirable oscillations of active set size.
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页码:17761 / 17770
页数:9
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