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The Barzilai and Borwein Gradient Method for the Large Scale Unconstrained Minimization Problem

Published: 01 January 1997 Publication History

Abstract

The Barzilai and Borwein gradient method for the solution of large scale unconstrained minimization problems is considered. This method requires few storage locations and very inexpensive computations. Furthermore, it does not guarantee descent in the objective function and no line search is required. Recently, the global convergence for the convex quadratic case has been established. However, for the nonquadratic case, the method needs to be incorporated in a globalization scheme. In this work, a nonmonotone line search strategy that guarantees global convergence is combined with the Barzilai and Borwein method. This strategy is based on the nonmonotone line search technique proposed by Grippo, Lampariello, and Lucidi [SIAM J. Numer. Anal., 23 (1986), pp. 707--716]. Numerical results to compare the behavior of this method with recent implementations of the conjugate gradient method are presented. These results indicate that the global Barzilai and Borwein method may allow some significant reduction in the number of line searches and also in the number of gradient evaluations.

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  1. The Barzilai and Borwein Gradient Method for the Large Scale Unconstrained Minimization Problem

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      Published In

      cover image SIAM Journal on Optimization
      SIAM Journal on Optimization  Volume 7, Issue 1
      1997
      294 pages

      Publisher

      Society for Industrial and Applied Mathematics

      United States

      Publication History

      Published: 01 January 1997

      Author Tags

      1. Barzilai and Borwein method
      2. conjugate gradient method
      3. nonmonotone line search
      4. unconstrained optimization

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      • (2024)A Feasible Method for Solving an SDP Relaxation of the Quadratic Knapsack ProblemMathematics of Operations Research10.1287/moor.2022.134549:1(19-39)Online publication date: 1-Feb-2024
      • (2024)An efficient Newton-like conjugate gradient method with restart strategy and its applicationMathematics and Computers in Simulation10.1016/j.matcom.2024.07.008226:C(354-372)Online publication date: 1-Dec-2024
      • (2024)A hybrid complex spectral conjugate gradient learning algorithm for complex-valued data processingEngineering Applications of Artificial Intelligence10.1016/j.engappai.2024.108352133:PDOnline publication date: 1-Jul-2024
      • (2024)Stabilized BB projection algorithm for large-scale convex constrained nonlinear monotone equations to signal and image processing problemsJournal of Computational and Applied Mathematics10.1016/j.cam.2024.115916448:COnline publication date: 1-Oct-2024
      • (2024)An efficient modified residual-based algorithm for large scale symmetric nonlinear equations by approximating successive iterated gradientsJournal of Computational and Applied Mathematics10.1016/j.cam.2023.115552438:COnline publication date: 1-Mar-2024
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