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Stochastic Recursive Algorithms for Optimization

483770
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Stochastic Recursive Algorithms for Optimization—Simultaneous Perturbation Methods
90 折
出版日:2012/08/12 作者:S. Bhatnagar; H. L. Prasad; L.a. Prashanth  出版社:Springer Verlag  裝訂:平裝
Stochastic Recursive Algorithms for Optimization presents algorithms for constrained and unconstrained optimization and for reinforcement learning. Efficient perturbation approaches form a thread unif
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Stochastic Approximation and Recursive Algorithms and Applications
90 折
出版日:2003/07/01 作者:Harold J. Kushner; G. George Yin  出版社:Springer Verlag  裝訂:精裝
This book presents a thorough development of the modern theory of stochastic approximation or recursive stochastic algorithms for both constrained and unconstrained problems. This second edition is a
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Optimization for Data Analysis
滿額折
出版日:2021/10/31 作者:Stephen J. Wright  出版社:Cambridge Univ Pr  裝訂:精裝
Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; found
優惠價: 9 2222
無庫存
出版日:1996/06/01 作者:Julia L. Higle; Suvrajeet Sen  出版社:Springer Verlag  裝訂:精裝
This book summarizes developments related to a class of methods called Stochastic Decomposition (SD) algorithms, which represent an important shift in the design of optimization algorithms. Unlike tra
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Algorithms for Convex Optimization
90 折
出版日:2021/07/31 作者:Nisheeth K. Vishnoi  出版社:Cambridge Univ Pr  裝訂:精裝
In the last few years, Algorithms for Convex Optimization have revolutionized algorithm design, both for discrete and continuous optimization problems. For problems like maximum flow, maximum matching, and submodular function minimization, the fastest algorithms involve essential methods such as gradient descent, mirror descent, interior point methods, and ellipsoid methods. The goal of this self-contained book is to enable researchers and professionals in computer science, data science, and machine learning to gain an in-depth understanding of these algorithms. The text emphasizes how to derive key algorithms for convex optimization from first principles and how to establish precise running time bounds. This modern text explains the success of these algorithms in problems of discrete optimization, as well as how these methods have significantly pushed the state of the art of convex optimization itself.
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Algorithms for Convex Optimization
90 折
出版日:2021/07/31 作者:Nisheeth K. Vishnoi  出版社:Cambridge Univ Pr  裝訂:平裝
In the last few years, Algorithms for Convex Optimization have revolutionized algorithm design, both for discrete and continuous optimization problems. For problems like maximum flow, maximum matching, and submodular function minimization, the fastest algorithms involve essential methods such as gradient descent, mirror descent, interior point methods, and ellipsoid methods. The goal of this self-contained book is to enable researchers and professionals in computer science, data science, and machine learning to gain an in-depth understanding of these algorithms. The text emphasizes how to derive key algorithms for convex optimization from first principles and how to establish precise running time bounds. This modern text explains the success of these algorithms in problems of discrete optimization, as well as how these methods have significantly pushed the state of the art of convex optimization itself.
優惠價: 9 1781
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Algorithms and Programs of Dynamic Mixture Estimation ― Unified Approach to Different Types of Components
90 折
出版日:2017/08/24 作者:Ivan Nagy; Evgenia Suzdaleva  出版社:Springer Verlag  裝訂:平裝
This book provides a general theoretical background for constructing the recursive Bayesian estimation algorithms for mixture models. It collects the recursive algorithms for estimating dynamic mixtur
優惠價: 9 2835
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出版日:2016/07/31 作者:Xin-she Yang  出版社:Elsevier Science Ltd  裝訂:平裝
Nature-Inspired Optimization Algorithms provides a systematic introduction to all major nature-inspired algorithms for optimization. The book's unified approach, balancing algorithm introduction, theo
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Sequential Stochastic Optimization
90 折
出版日:1996/01/19 作者:Cairoli  出版社:John Wiley & Sons Inc  裝訂:精裝
Sequential Stochastic Optimization provides mathematicians and applied researchers with a well-developed framework in which stochastic optimization problems can be formulated and solved. Offering much
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Algorithms for Optimization
79 折
出版日:2019/03/12 作者:Mykel J. Kochenderfer; Tim A. Wheeler  出版社:Mit Pr  裝訂:精裝
A comprehensive introduction to optimization with a focus on practical algorithms for the design of engineering systems.This book offers a comprehensive introduction to optimization with a focus on pr
優惠價: 79 4503
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Real-time Recursive Hyperspectral Sample and Band Processing ― Algorithm Architecture and Implementation
90 折
出版日:2017/05/04 作者:Chein-I Chang  出版社:Springer Verlag  裝訂:精裝
This book explores recursive architectures in designing progressive hyperspectral imaging algorithms. In particular, it makes progressive imaging algorithms recursive by introducing the concept of Kal
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出版日:2014/09/02 作者:M. C. Bhuvaneswari (EDT)  出版社:Springer Verlag  裝訂:精裝
This book describes how evolutionary algorithms (EA), including genetic algorithms (GA) and particle swarm optimization (PSO) can be utilized for solving multi-objective optimization problems in the a
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出版日:2008/12/01 作者:Radoslaw Pytlak  出版社:Springer Verlag  裝訂:精裝
This up-to-date book is on algorithms for large-scale unconstrained and bound constrained optimization. Optimization techniques are shown from a conjugate gradient algorithm perspective. Large part of
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Stochastic Approximation:A Dynamical Systems Viewpoint
90 折
出版日:2008/09/01 作者:Vivek S. Borkar  出版社:Cambridge Univ Pr  裝訂:精裝
This simple, compact toolkit for designing and analyzing stochastic approximation algorithms requires only basic literacy in probability and differential equations. Yet these algorithms have powerful applications in control and communications engineering, artificial intelligence and economic modelling. The dynamical systems viewpoint treats an algorithm as a noisy discretization of a limiting differential equation and argues that, under reasonable hypotheses, it tracks the asymptotic behaviour of the differential equation with probability one. The differential equation, which can usually be obtained by inspection, is easier to analyze. Novel topics include finite-time behaviour, multiple timescales and asynchronous implementation. There is a useful taxonomy of applications, with concrete examples from engineering and economics. Notably it covers variants of stochastic gradient-based optimization schemes, fixed-point solvers, which are commonplace in learning algorithms for approximate
優惠價: 9 3041
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Online Stochastic Combinatorial Optimization
79 折
出版日:2006/10/13 作者:Russell Bent  出版社:Mit Pr  裝訂:精裝
This title offers a framework for online decision making under uncertainty and time constraints, with online stochastic algorithms for implementing the framework, performance guarantees, and demonstra
出版日:2003/07/01 作者:Harold J. Kushner; G. George Yin  出版社:Springer Verlag  裝訂:平裝
This book presents a thorough development of the modern theory of stochastic approximation or recursive stochastic algorithms for both constrained and unconstrained problems. This second edition is a
若需訂購本書,請電洽客服 02-25006600[分機130、131]。
出版日:2018/11/29 作者:Pratyusha Rakshit; Amit Konar  出版社:Springer-Nature New York Inc  裝訂:精裝
Noisy optimization is a topic of growing interest for researchers working on mainstream optimization problems. Although several techniques for dealing with stochastic noise in optimization problems ar
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Stochastic Optimization for Distributed Energy Resources in Smart Grids
90 折
出版日:2017/07/20 作者:Yuanxiong Guo; Yuguang Fang; Pramod P. Khargonekar  出版社:Springer-Verlag New York Inc  裝訂:平裝
This brief focuses on stochastic energy optimization for distributed energy resources in smart grids. Along with a review of drivers and recent developments towards distributed energy resources, this
優惠價: 9 2835
無庫存
Stochastic Dynamics, Filtering and Optimization
90 折
出版日:2017/04/30 作者:Debasish Roy  出版社:Cambridge Univ Pr  裝訂:精裝
Targeted at graduate students, researchers and practitioners in the field of science and engineering, this book gives a self-contained introduction to a measure-theoretic framework in laying out the definitions and basic concepts of random variables and stochastic diffusion processes. It then continues to weave into a framework of several practical tools and applications involving stochastic dynamical systems. These include tools for the numerical integration of such dynamical systems, nonlinear stochastic filtering and generalized Bayesian update theories for solving inverse problems and a new stochastic search technique for treating a broad class of non-convex optimization problems. MATLAB® codes for all the applications are uploaded on the companion website.
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Applications of Metaheuristic Optimization Algorithms in Civil Engineering
90 折
出版日:2016/12/16 作者:A. Kaveh  出版社:Springer Verlag  裝訂:精裝
The book presents recently developed efficient meta-heuristic optimization algorithms and their applications for solving various optimization problems in civil engineering. The concepts can also be us
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Optimization in Chemical Engineering
90 折
出版日:2016/03/11 作者:Suman Dutta  出版社:Cambridge Univ Pr  裝訂:精裝
Optimization is used to determine the most appropriate value of variables under given conditions. The primary focus of using optimisation techniques is to measure the maximum or minimum value of a function depending on the circumstances. This book discusses problem formulation and problem solving with the help of algorithms such as secant method, quasi-Newton method, linear programming and dynamic programming. It also explains important chemical processes such as fluid flow systems, heat exchangers, chemical reactors and distillation systems using solved examples. The book begins by explaining the fundamental concepts followed by an elucidation of various modern techniques including trust-region methods, Levenberg–Marquardt algorithms, stochastic optimization, simulated annealing and statistical optimization. It studies the multi-objective optimization technique and its applications in chemical engineering and also discusses the theory and applications of various optimization software
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Gems of Combinatorial Optimization and Graph Algorithms
90 折
Are you looking for new lectures for your course on algorithms, combinatorial optimization, or algorithmic game theory? Maybe you need a convenient source of relevant, current topics for a gradu
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Stochastic Multi-stage Optimization ― At the Crossroads Between Discrete Time Stochastic Control and Stochastic Programming
90 折
出版日:2015/05/19 作者:Pierre Carpentier; Jean-Philippe Chancelier; Guy Cohen; Michel De Lara  出版社:Springer Verlag  裝訂:精裝
The focus of the present volume is stochastic optimization of dynamical systems in discrete time where - by concentrating on the role of information regarding optimization problems - it discusses the
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Multistage Stochastic Optimization
90 折
出版日:2014/11/14 作者:Georg Ch. Pflug; Alois Pichler  出版社:Springer Verlag  裝訂:精裝
Multistage stochastic optimization problems appear in many ways in finance, insurance, energy production and trading, logistics and transportation, among other areas. They describe decision situations
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出版日:2012/09/14 作者:Muhammet Unal; Ayca Ak; Vedat Topuz; Hasan Erdal  出版社:Springer-Verlag New York Inc  裝訂:精裝
Artificial neural networks, genetic algorithms and the ant colony optimization algorithm have become a highly effective tool for solving hard optimization problems. As their popularity has increased,
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出版日:2009/11/01 作者:Osamu Watanabe (EDT); Thomas Zeugmann (EDT)  出版社:Springer-Verlag New York Inc  裝訂:平裝
This book constitutes the refereed proceedings of the 5th International Symposium on Stochastic Algorithms, Foundations and Applications, SAGA 2009, held in Sapporo, Japan, in October 2009.The 15 revi
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出版日:2007/11/09 作者:Anatoly Zhigljavsky; Antanas Zilinskas  出版社:Springer Verlag  裝訂:精裝
This book presents the main methodological and theoretical developments in stochastic global optimization. The extensive text is divided into four chapters; the topics include the basic principles an
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出版日:2002/12/01 作者:Herbert S. Wilf  出版社:A K Peters Ltd UK  裝訂:精裝
This book is an introductory textbook on the design and analysis of algorithms. The author uses a careful selection of a few topics to illustrate the tools for algorithm analysis. Recursive algorithms
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Iterative Computer Algorithms With Applications In Engineering: Solving Combinatorial Optimization Problems
90 折
出版日:2000/01/27 作者:Sait  出版社:John Wiley & Sons Inc  裝訂:平裝
Iterative Computer Algorithms with Applications in Engineering describes in-depth the five main iterative algorithms for solving hard combinatorial optimization problems: Simulated Annealing, Genetic
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Electromagnetic Optimization By Genetic Algorithms
90 折
出版日:1999/07/09 作者:Rahmat-Samii  出版社:John Wiley & Sons Inc  裝訂:精裝
Authoritative coverage of a revolutionary technique for overcoming problems in electromagnetic design Genetic algorithms are stochastic search procedures modeled on the Darwinian concepts of natural s
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Advanced Optimization for Process Systems Engineering
90 折
出版日:2021/04/30 作者:Ignacio E. Grossmann  出版社:Cambridge Univ Pr  裝訂:精裝
Based on the author's forty years of teaching experience, this unique textbook covers both basic and advanced concepts of optimization theory and methods for process systems engineers. Topics covered include continuous, discrete and logic optimization (linear, nonlinear, mixed-integer and generalized disjunctive programming), optimization under uncertainty (stochastic programming and flexibility analysis), and decomposition techniques (Lagrangean and Benders decomposition). Assuming only a basic background in calculus and linear algebra, it enables easy understanding of mathematical reasoning, and numerous examples throughout illustrate key concepts and algorithms. End-of-chapter exercises involving theoretical derivations and small numerical problems, as well as in modeling systems like GAMS, enhance understanding and help put knowledge into practice. Accompanied by two appendices containing web links to modeling systems and models related to applications in PSE, this is an essential
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出版日:2019/07/01 作者:Mingtian Fan; Zuping Zhang  出版社:Academic Pr  裝訂:精裝
Mathematical Models and Algorithms for Power System Optimization helps readers build a thorough understanding of new technologies and world-class practices developed by the State Grid Corporation of C
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Recursive Models of Dynamic Linear Economies
90 折
出版日:2018/07/10 作者:Lars Peter Hansen; Thomas J. Sargent; Thomas Sargent  出版社:Princeton Univ Pr  裝訂:平裝
A common set of mathematical tools underlies dynamic optimization, dynamic estimation, and filtering. In Recursive Models of Dynamic Linear Economies, Lars Peter Hansen and Thomas Sargent use these to
優惠價: 9 1607
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Practical Mathematical Optimization ― Basic Optimization Theory and Gradient-based Algorithms
90 折
出版日:2018/05/14 作者:Jan Snyman; Daniel Nicolas Wilke  出版社:Springer Verlag  裝訂:精裝
This book presents basic optimization principles and gradient-based algorithms to a general audience, in a brief and easy-to-read form. It enables professionals to apply optimization theory to enginee
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Portfolio Optimization With Different Information Flow
滿額折
出版日:2017/02/01 作者:Caroline Hillairet; Ying Jiao  出版社:Elsevier Science Ltd  裝訂:精裝
Portfolio Optimization with Different Information Flow recalls the stochastic tools and results concerning the stochastic optimization theory and the enlargement filtration theory. The authors detail
優惠價: 79 4740
無庫存
Dynamic Optimization ― Deterministic and Stochastic Models
90 折
出版日:2017/01/18 作者:Karl Hinderer; Ulrich Rieder; Michael Stieglitz  出版社:Springer Verlag  裝訂:平裝
This book explores discrete-time dynamic optimization and provides a detailed introduction to both deterministic and stochastic models. Covering problems with finite and infinite horizon, as well as M
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Advances in Stochastic and Deterministic Global Optimization
90 折
出版日:2016/11/14 作者:Panos M. Pardalos (EDT); Anatoly Zhigljavsky (EDT); Julius ?槌inskas (EDT)  出版社:Springer Verlag  裝訂:精裝
Current research results in stochastic and deterministic global optimization are presented in this volume from leading specialists. Graduate students, researchers, and scientist in computer science, n
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Grouping Genetic Algorithms ― Advances and Applications
90 折
出版日:2016/10/12 作者:Michael Mutingi; Charles Mbohwa  出版社:Springer-Verlag New York Inc  裝訂:精裝
This book presents advances and innovations in grouping genetic algorithms, enriched with new and unique heuristic optimization techniques. These algorithms are specially designed for solving industri
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Search and Optimization by Metaheuristics ― Techniques and Algorithms Inspired by Nature
90 折
出版日:2016/08/02 作者:Ke-lin Du; M. N. S. Swamy  出版社:Birkhauser  裝訂:精裝
This textbook provides a comprehensive introduction to nature-inspired metaheuristic methods for search and optimization, including the latest trends in evolutionary algorithms and other forms of natu
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出版日:2014/11/14 作者:Michael C. Fu (EDT)  出版社:Springer Verlag  裝訂:精裝
The Handbook of Simulation Optimization presents an overview of the state of the art of simulation optimization, providing a survey of the most well-established approaches for optimizing stochastic si
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