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A Nonmonotone Adaptive Trust Region Method Based on Conic Model for Unconstrained Optimization

Zhaocheng Cui

Journal of Optimization, 2014, vol. 2014, 1-8

Abstract:

We propose a nonmonotone adaptive trust region method for unconstrained optimization problems which combines a conic model and a new update rule for adjusting the trust region radius. Unlike the traditional adaptive trust region methods, the subproblem of the new method is the conic minimization subproblem. Moreover, at each iteration, we use the last and the current iterative information to define a suitable initial trust region radius. The global and superlinear convergence properties of the proposed method are established under reasonable conditions. Numerical results show that the new method is efficient and attractive for unconstrained optimization problems.

Date: 2014
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Persistent link: https://EconPapers.repec.org/RePEc:hin:jjopti:237279

DOI: 10.1155/2014/237279

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