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Jan, 2020
非Lipschitz优化的随机Bregman坐标下降方法
Randomized Bregman Coordinate Descent Methods for Non-Lipschitz Optimization
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Tianxiang Gao, Songtao Lu, Jia Liu, Chris Chu
TL;DR
本研究提出了一种基于Bregman距离的随机Bregman(块)坐标下降法,解决了无法全局Lipschitz连续(部分)梯度假设的复合问题优化及收敛分析方面的瓶颈,给出了迭代收敛复杂度,并提出了加速RBCD方法。
Abstract
We propose a new \textit{randomized Bregman (block)
coordinate descent
} (RBCD) method for minimizing a
composite problem
, where the objective function could be either convex or nonconvex, and the smooth part are
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