Practical proximal primal-dual algorithms for structured saddle point problems Practical proximal primal-dual algorithms for structured saddle point problems

In this paper, we are concerned with a class of convex-concave saddle point problems, where one of the objective parts is assumed to be a convex and smooth function with Lipschitz continuous gradient. By exploiting the bilinear structure of the objective, we first propose a practical accelerated Pro...

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Bibliographic Details
Published in:Journal of global optimization Vol. 93; no. 3; pp. 803 - 831
Main Authors: Qu, Yunfei, He, Hongjin, Zhang, Tao, Han, Deren
Format: Journal Article
Language:English
Published: New York Springer US 01.11.2025
Springer Nature B.V
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ISSN:0925-5001, 1573-2916
Online Access:Get full text
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