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Global Convergence of a Modified Two-Parameter Scaled BFGS Method with Yuan-Wei-Lu Line Search for Unconstrained Optimization

机译:具有袁伟路线路搜索无约束优化的修改的双参数缩放BFGS方法的全局融合

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The BFGS method is one of the most efficient quasi-Newton methods for solving small- and medium-size unconstrained optimization problems. For the sake of exploring its more interesting properties, a modified two-parameter scaled BFGS method is stated in this paper. The intention of the modified scaled BFGS method is to improve the eigenvalues structure of the BFGS update. In this method, the first two terms and the last term of the standard BFGS update formula are scaled with two different positive parameters, and the new value of yk is given. Meanwhile, Yuan-Wei-Lu line search is also proposed. Under the mentioned line search, the modified two-parameter scaled BFGS method is globally convergent for nonconvex functions. The extensive numerical experiments show that this form of the scaled BFGS method outperforms the standard BFGS method or some similar scaled methods.
机译:BFGS方法是解决小型和中小型无约束优化问题的最有效的准牛顿方法之一。为了探索其更有趣的特性,本文中规定了一种修改的双参数缩放BFGS方法。修改的缩放BFGS方法的目的是改善BFGS更新的特征值结构。在该方法中,前两个术语和标准BFGS更新公式的最后一个术语用两个不同的正参数缩放,并给出了YK的新值。同时,还提出了袁卫路线搜索。在提到的线路搜索下,修改的双参数缩放的BFGS方法是全局融合,用于非耦合功能。广泛的数值实验表明,这种形式的缩放的BFGS方法优于标准的BFGS方法或一些类似的缩放方法。

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