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A Hybrid Gradient-Projection Algorithm for Averaged Mappings in Hilbert Spaces

机译:Hilbert空间中平均映射的混合梯度投影算法

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It is well known that the gradient-projection algorithm (GPA) is very useful in solving constrained convex minimization problems. In this paper, we combine a general iterative method with the gradient-projection algorithm to propose a hybrid gradient-projection algorithm and prove that the sequence generated by the hybrid gradient-projection algorithm converges in norm to a minimizer of constrained convex minimization problems which solves a variational inequality.
机译:众所周知,梯度投影算法(GPA)在解决约束凸最小化问题中非常有用。本文将一般迭代法与梯度投影算法相结合,提出了一种混合梯度投影算法,证明了该混合梯度投影算法生成的序列在范数内收敛到约束凸最小化问题的最小化子,从而解决了变分不平等

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