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May, 2016
鞍点问题的随机方差缩减方法
Stochastic Variance Reduction Methods for Saddle-Point Problems
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P Balamurugan, Francis Bach
TL;DR
提出了一种新的随机优化算法,可以高效地解决凸-凹二次问题,并适用于更广泛类别的问题,该算法以局部更新的形式实现,可以使用非均匀采样来加速算法。
Abstract
We consider
convex-concave saddle-point problems
where the objective functions may be split in many components, and extend recent
stochastic variance reduction methods
(such as SVRG or SAGA) to provide the first
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