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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >A Modified Spectral PRP Conjugate Gradient Projection Method for Solving Large-Scale Monotone Equations and Its Application in Compressed Sensing
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A Modified Spectral PRP Conjugate Gradient Projection Method for Solving Large-Scale Monotone Equations and Its Application in Compressed Sensing

机译:一种改进的光谱PRP共轭梯度投影方法,用于求解大规模单调方程及其在压缩传感中的应用

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摘要

In this paper, we develop an algorithm to solve nonlinear system of monotone equations, which is a combination of a modified spectral PRP (Polak-Ribière-Polyak) conjugate gradient method and a projection method. The search direction in this algorithm is proved to be sufficiently descent for any line search rule. A line search strategy in the literature is modified such that a better step length is more easily obtained without the difficulty of choosing an appropriate weight in the original one. Global convergence of the algorithm is proved under mild assumptions. Numerical tests and preliminary application in recovering sparse signals indicate that the developed algorithm outperforms the state-of-the-art similar algorithms available in the literature, especially for solving large-scale problems and singular ones.
机译:在本文中,我们开发了一种解决单调方程的非线性系统的算法,其是改进的光谱PRP(Polak-Ribière-Polyak)共轭梯度方法和投影方法的组合。在任何行搜索规则中证明了该算法中的搜索方向是足够的下降。修改文献中的线路搜索策略,使得更容易获得更好的步长而不难以在原始的难题中选择适当的重量。在温和的假设下证明了算法的全局收敛。恢复稀疏信号中的数值测试和初步应用表明,发达的算法优于文献中可用的最先进的类似算法,特别是解决大规模问题和奇异的算法。

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