Subsampled Nonmonotone Spectral Gradient Methods
Author:
Affiliation:
1. Department of Industrial Engineering , University of Florence , Italy . Member of the INdAM Research Group GNCS.
2. Department of Mathematics and Informatics, Faculty of Sciences , University of Novi Sad , Serbia
Abstract
Publisher
Walter de Gruyter GmbH
Subject
Applied Mathematics,Industrial and Manufacturing Engineering
Link
https://www.sciendo.com/pdf/10.2478/caim-2020-0002
Reference27 articles.
1. 1. S. Bellavia, G. Gurioli, and B. Morini, Theoretical study of an adaptive cubic regularization method with dynamic inexact hessian information, arXiv:1808.06239, 2018.
2. 2. S. Bellavia, N. Krejić, and N. Krklec Jerinkić, Subsampled inexact newton methods for minimizing large sums of convex functions, IMA J. Numerical Analysis, 2019.10.1093/imanum/drz027
3. 3. A. Berahas, R. Bollapragada, and J. Nocedal, An investigation of newton-sketch and subsampled newton methods, arXiv:1705.06211v3, 2018.
4. 4. E. Birgin, N. Krejić, and J. Martínez, On the employment of inexact restoration for the minimization of functions whose evaluation is subject to programming errors, Mathematics of Computation, vol. 87, pp. 1307–1326, 2018.
5. 5. D. Blatt, A. O. Hero, and H. Gauchman, A convergent incremental gradient method with a constant step size, SIAM Journal of Optimization, vol. 18, no. 1, pp. 29–51, 2007.10.1137/040615961
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