Title of article :
A New Modified Trust Region Algorithm for Solving Unconstrained Optimization Problems
Author/Authors :
Dehghan Niri, T. Yazd University , Hosseini, M. M. Yazd University , Heydari, M. Yazd University
Pages :
21
From page :
115
To page :
135
Abstract :
Iterative methods for optimization can be classified into two categories: line search methods and trust region methods. In this paper, we propose a modified regularized Newton method for minimizing nonconvex functions whose Hessian matrix may be singular without line search. The proposed method is proved to converge globally if the Gradient and Hessian of the objective function are Lipschitz continuous. Moreover, we report numerical results that show that the proposed algorithm is competitive with the existing methods
Keywords :
Regularized Newton method , unconstrained optimization , nonconvex , trust-region method , convergence analysis
Journal title :
Astroparticle Physics
Serial Year :
2018
Record number :
2443074
Link To Document :
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