Algorithms for Optimization 在线电子书 pdf 下载 txt下载 epub 下载 mobi 下载 2024


Algorithms for Optimization

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Mykel J. Kochenderfer 作者
The MIT Press
译者
2019-3-12 出版日期
520 页数
USD 85.00 价格
丛书系列
9780262039420 图书编码

Algorithms for Optimization 在线电子书 图书标签: 算法  数学  优化  Optimization  Algorithms   


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Algorithms for Optimization 在线电子书 epub 下载 mobi 下载 pdf 下载 txt 下载 2024

Algorithms for Optimization 在线电子书 epub 下载 mobi 下载 pdf 下载 txt 下载 2024

Algorithms for Optimization 在线电子书 pdf 下载 txt下载 epub 下载 mobi 下载 2024



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Algorithms for Optimization 在线电子书 图书描述

This book offers a comprehensive introduction to optimization with a focus on practical algorithms. The book approaches optimization from an engineering perspective, where the objective is to design a system that optimizes a set of metrics subject to constraints. Readers will learn about computational approaches for a range of challenges, including searching high-dimensional spaces, handling problems where there are multiple competing objectives, and accommodating uncertainty in the metrics. Figures, examples, and exercises convey the intuition behind the mathematical approaches. The text provides concrete implementations in the Julia programming language.

Topics covered include derivatives and their generalization to multiple dimensions; local descent and first- and second-order methods that inform local descent; stochastic methods, which introduce randomness into the optimization process; linear constrained optimization, when both the objective function and the constraints are linear; surrogate models, probabilistic surrogate models, and using probabilistic surrogate models to guide optimization; optimization under uncertainty; uncertainty propagation; expression optimization; and multidisciplinary design optimization. Appendixes offer an introduction to the Julia language, test functions for evaluating algorithm performance, and mathematical concepts used in the derivation and analysis of the optimization methods discussed in the text. The book can be used by advanced undergraduates and graduate students in mathematics, statistics, computer science, any engineering field, (including electrical engineering and aerospace engineering), and operations research, and as a reference for professionals.

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