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Predictor-corrector iterative algorithms for solving generalized mixed quasi-variational-like inclusion

机译:求解广义混合拟似变量包含的预测校正校正迭代算法

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摘要

By applying the concept of partially relaxed eta-strong monotonicity of set-valued mappings due to author and the auxiliary variational inequality technique, some new predictor-corrector iterative algorithms for solving generalized mixed quasi-variational-like inclusions are suggested and analyzed. The convergence of the algorithms only need the continuity and the partially relaxed eta-strongly monotonicity of set-valued mappings. The algorithm and convergence result are new, and generalize some recent known results in literatures. (c) 2004 Elsevier B.V. All rights reserved.
机译:通过运用作者和辅助变分不等式技术引起的集值映射的部分松弛η-强单调性的概念,提出并分析了一些求解广义混合类拟变分包含问题的新的预测-校正迭代算法。算法的收敛性只需要集合值映射的连续性和部分松弛的η-强单调性。该算法和收敛结果是新的,并且概括了文献中一些最近的已知结果。 (c)2004 Elsevier B.V.保留所有权利。

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