通过简单步骤对广义自洽函数进行可扩展的弗兰克-沃尔夫计算

IF 2.6 1区 数学 Q1 MATHEMATICS, APPLIED
Alejandro Carderera, Mathieu Besançon, Sebastian Pokutta
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引用次数: 0

摘要

SIAM 优化期刊》,第 34 卷第 3 期,第 2231-2258 页,2024 年 9 月。 摘要广义自洽性是许多重要学习问题目标函数的一个关键属性。我们建立了使用开环步长策略[math]的简单弗兰克-沃尔夫变体的收敛率,得到了该类函数在原始差距和弗兰克-沃尔夫差距方面的[math]收敛率,其中[math]为迭代次数。这避免了使用二阶信息,也不需要估计以前工作中的局部平滑参数。我们还展示了各种常见情况下收敛率的提高,例如,当考虑的可行区域是均匀凸面或多面体时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Scalable Frank–Wolfe on Generalized Self-Concordant Functions via Simple Steps
SIAM Journal on Optimization, Volume 34, Issue 3, Page 2231-2258, September 2024.
Abstract. Generalized self-concordance is a key property present in the objective function of many important learning problems. We establish the convergence rate of a simple Frank–Wolfe variant that uses the open-loop step size strategy [math], obtaining an [math] convergence rate for this class of functions in terms of primal gap and Frank–Wolfe gap, where [math] is the iteration count. This avoids the use of second-order information or the need to estimate local smoothness parameters of previous work. We also show improved convergence rates for various common cases, e.g., when the feasible region under consideration is uniformly convex or polyhedral.
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来源期刊
SIAM Journal on Optimization
SIAM Journal on Optimization 数学-应用数学
CiteScore
5.30
自引率
9.70%
发文量
101
审稿时长
6-12 weeks
期刊介绍: The SIAM Journal on Optimization contains research articles on the theory and practice of optimization. The areas addressed include linear and quadratic programming, convex programming, nonlinear programming, complementarity problems, stochastic optimization, combinatorial optimization, integer programming, and convex, nonsmooth and variational analysis. Contributions may emphasize optimization theory, algorithms, software, computational practice, applications, or the links between these subjects.
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