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Nonlinear Conjugate Gradient Methods for Unconstrained Optimization - Springer Optimization and Its Applications Neculai Andrei 1st ed. 2020 edition
Nonlinear Conjugate Gradient Methods for Unconstrained Optimization - Springer Optimization and Its Applications
Neculai Andrei
Two approaches are known for solving large-scale unconstrained optimization problems—the limited-memory quasi-Newton method (truncated Newton method) and the conjugate gradient method.
498 pages, 90 Illustrations, color; 3 Illustrations, black and white; XXVIII, 498 p. 93 illus., 90 i
| Mídia | Livros Paperback Book (Livro de capa flexível e brochura) |
| Lançado | 24 de junho de 2021 |
| ISBN13 | 9783030429522 |
| Editoras | Springer Nature Switzerland AG |
| Páginas | 498 |
| Dimensões | 150 × 220 × 10 mm · 730 g |
| Idioma | Alemão |
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