The strictly contractive Peaceman-Rachford splitting method is one of effective methods for solving separable convex optimization problem, and the inertial proximal Peaceman-Rachford splitting method is one of its important variants. It is known that the convergence of the inertial proximal Peaceman-Rachford splitting method can be ensured if the relaxation factor in Lagrangian multiplier updates is underdetermined, which means that the steps for the Lagrangian multiplier updates are shrunk conservatively. Although small steps play an important role in ensuring convergence, they should be strongly avoided in practice. In this article, we propose a relaxed inertial proximal Peaceman-Rachford splitting method, which has a larger feasible set for the relaxation factor. Thus, our method provides the possibility to admit larger steps in the Lagrangian multiplier updates. We establish the global convergence of the proposed algorithm under the same conditions as the inertial proximal Peaceman-Rachford splitting method. Numerical experimental results on a sparse signal recovery problem in compressive sensing and a total variation based image denoising problem demonstrate the effectiveness of our method.
机构:
Liaoning Tech Univ, Sch Business Adm, Huludao 125105, Peoples R China
Liaoning Tech Univ, Inst Optimizat & Decis Analyt, Fuxin 123000, Peoples R ChinaLiaoning Tech Univ, Sch Business Adm, Huludao 125105, Peoples R China
Li, Hongyan
Yu, Dongmei
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Liaoning Tech Univ, Inst Optimizat & Decis Analyt, Fuxin 123000, Peoples R ChinaLiaoning Tech Univ, Sch Business Adm, Huludao 125105, Peoples R China
Yu, Dongmei
Gao, Leifu
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Liaoning Tech Univ, Inst Optimizat & Decis Analyt, Fuxin 123000, Peoples R ChinaLiaoning Tech Univ, Sch Business Adm, Huludao 125105, Peoples R China
机构:
School of Mathematics and Statistics, Zaozhuang University, ShandongSchool of Mathematics and Statistics, Zaozhuang University, Shandong
Sun M.
Liu J.
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School of Mathematics and Statistics, Zhejiang University of Finance and Economics, HangzhouSchool of Mathematics and Statistics, Zaozhuang University, Shandong
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Nanjing Univ, Int Ctr Management Sci & Engn, Nanjing 200093, Jiangsu, Peoples R China
Nanjing Univ, Dept Math, Nanjing 200093, Jiangsu, Peoples R ChinaNanjing Univ, Int Ctr Management Sci & Engn, Nanjing 200093, Jiangsu, Peoples R China
He, Bingsheng
Liu, Han
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Princeton Univ, Dept Operat Res & Financial Engn, Princeton, NJ 08544 USANanjing Univ, Int Ctr Management Sci & Engn, Nanjing 200093, Jiangsu, Peoples R China
Liu, Han
Wang, Zhaoran
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Princeton Univ, Dept Elect Engn, Princeton, NJ 08544 USANanjing Univ, Int Ctr Management Sci & Engn, Nanjing 200093, Jiangsu, Peoples R China
Wang, Zhaoran
Yuan, Xiaoming
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Hong Kong Baptist Univ, Dept Math, Hong Kong, Hong Kong, Peoples R ChinaNanjing Univ, Int Ctr Management Sci & Engn, Nanjing 200093, Jiangsu, Peoples R China