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Optimization On Solution Sets Of Common Fixed Point Problems (Hb 2021) at Meripustak

Optimization On Solution Sets Of Common Fixed Point Problems (Hb 2021) by ZASLAVSKI A.J., SPRINGER

Books from same Author: ZASLAVSKI A.J.

Books from same Publisher: SPRINGER

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  • General Information  
    Author(s)ZASLAVSKI A.J.
    PublisherSPRINGER
    ISBN9783030788483
    Pages434
    BindingHardbound
    LanguageEnglish
    Publish YearSeptember 2021

    Description

    SPRINGER Optimization On Solution Sets Of Common Fixed Point Problems (Hb 2021) by ZASLAVSKI A.J.

    This book is devoted to a detailed study of the subgradient projection method and its variants for convex optimization problems over the solution sets of common fixed point problems and convex feasibility problems. These optimization problems are investigated to determine good solutions obtained by different versions of the subgradient projection algorithm in the presence of sufficiently small computational errors. The use of selected algorithms is highlighted including the Cimmino type subgradient, the iterative subgradient, and the dynamic string-averaging subgradient. All results presented are new. Optimization problems where the underlying constraints are the solution sets of other problems, frequently occur in applied mathematics. The reader should not miss the section in Chapter 1 which considers some examples arising in the real world applications. The problems discussed have an important impact in optimization theory as well. The book will be useful for researches interested in the optimization theory and its applications. Preface.- Introduction.- Fixed Point Subgradient Algorithm.- Proximal Point Subgradient Algorithm.- Cimmino Subgradient Projection Algorithm.- Iterative Subgradient Projection Algorithm.- Dynamic Strong-Averaging Subgradient Algorithm.- Fixed Point Gradient Projection Algorithm.- Cimmino Gradient Projection Algorithm.- A Class of Nonsmooth Convex Optimization Problems.- Zero-Sum Games with Two Players.- References.- Index.



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