A programmed stduy guide for introduction to probability and statistics

A programmed stduy guide for introduction to probability and statistics PDF Author: Frederic Barnett
Publisher:
ISBN:
Category :
Languages : en
Pages : 451

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A programmed stduy guide for introduction to probability and statistics

A programmed stduy guide for introduction to probability and statistics PDF Author: Frederic Barnett
Publisher:
ISBN:
Category :
Languages : en
Pages : 451

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A Programmed Study Guide for Introduction to Probability and Statistics

A Programmed Study Guide for Introduction to Probability and Statistics PDF Author: Frederic C. Barnett
Publisher:
ISBN:
Category : Probabilities
Languages : en
Pages : 451

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Introduction to Probability and Statistics. Study Guide

Introduction to Probability and Statistics. Study Guide PDF Author: Robert J. Beaver
Publisher:
ISBN:
Category : Mathematical statistics
Languages : en
Pages : 498

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Programmed Study Guide for Introduction to Probability and Statistics

Programmed Study Guide for Introduction to Probability and Statistics PDF Author: William Mendenhall
Publisher: PWS Publishing Company
ISBN:
Category : Mathematics
Languages : en
Pages : 352

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A Programmed Study Guide for Introduction to Probability and Statistics, Second Edition, by William Mendenhall

A Programmed Study Guide for Introduction to Probability and Statistics, Second Edition, by William Mendenhall PDF Author: Frederic Barnett
Publisher:
ISBN:
Category :
Languages : en
Pages : 451

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Introduction to Probability and Statistics

Introduction to Probability and Statistics PDF Author:
Publisher:
ISBN:
Category : Mathematical statistics
Languages : en
Pages : 323

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Approximate Dynamic Programming

Approximate Dynamic Programming PDF Author: Warren B. Powell
Publisher: John Wiley & Sons
ISBN: 0470182954
Category : Mathematics
Languages : en
Pages : 487

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Book Description
A complete and accessible introduction to the real-world applications of approximate dynamic programming With the growing levels of sophistication in modern-day operations, it is vital for practitioners to understand how to approach, model, and solve complex industrial problems. Approximate Dynamic Programming is a result of the author's decades of experience working in large industrial settings to develop practical and high-quality solutions to problems that involve making decisions in the presence of uncertainty. This groundbreaking book uniquely integrates four distinct disciplines—Markov design processes, mathematical programming, simulation, and statistics—to demonstrate how to successfully model and solve a wide range of real-life problems using the techniques of approximate dynamic programming (ADP). The reader is introduced to the three curses of dimensionality that impact complex problems and is also shown how the post-decision state variable allows for the use of classical algorithmic strategies from operations research to treat complex stochastic optimization problems. Designed as an introduction and assuming no prior training in dynamic programming of any form, Approximate Dynamic Programming contains dozens of algorithms that are intended to serve as a starting point in the design of practical solutions for real problems. The book provides detailed coverage of implementation challenges including: modeling complex sequential decision processes under uncertainty, identifying robust policies, designing and estimating value function approximations, choosing effective stepsize rules, and resolving convergence issues. With a focus on modeling and algorithms in conjunction with the language of mainstream operations research, artificial intelligence, and control theory, Approximate Dynamic Programming: Models complex, high-dimensional problems in a natural and practical way, which draws on years of industrial projects Introduces and emphasizes the power of estimating a value function around the post-decision state, allowing solution algorithms to be broken down into three fundamental steps: classical simulation, classical optimization, and classical statistics Presents a thorough discussion of recursive estimation, including fundamental theory and a number of issues that arise in the development of practical algorithms Offers a variety of methods for approximating dynamic programs that have appeared in previous literature, but that have never been presented in the coherent format of a book Motivated by examples from modern-day operations research, Approximate Dynamic Programming is an accessible introduction to dynamic modeling and is also a valuable guide for the development of high-quality solutions to problems that exist in operations research and engineering. The clear and precise presentation of the material makes this an appropriate text for advanced undergraduate and beginning graduate courses, while also serving as a reference for researchers and practitioners. A companion Web site is available for readers, which includes additional exercises, solutions to exercises, and data sets to reinforce the book's main concepts.

A Modern Introduction to Probability and Statistics

A Modern Introduction to Probability and Statistics PDF Author: F.M. Dekking
Publisher: Springer Science & Business Media
ISBN: 1846281687
Category : Mathematics
Languages : en
Pages : 485

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Book Description
Suitable for self study Use real examples and real data sets that will be familiar to the audience Introduction to the bootstrap is included – this is a modern method missing in many other books

Introduction to Probability and Statistics

Introduction to Probability and Statistics PDF Author: William Mendenhall
Publisher: Thomson Brooks/Cole
ISBN: 9781133111504
Category : Mathematical statistics
Languages : en
Pages : 721

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Book Description
Used by hundreds of thousands of students, INTRODUCTION TO PROBABILITY AND STATISTICS, 14E, International Edition blends proven coverage with new innovations to ensure you gain a solid understanding of statistical concepts--and see their relevance to your everyday life. The new edition retains the text's straightforward presentation and traditional outline for descriptive and inferential statistics while incorporating modern technology--including computational software and interactive visual tools--to help you master statistical reasoning and skillfully interpret statistical results. Drawing from decades of classroom teaching experience, the authors clearly illustrate how to apply statistical procedures as they explain how to describe real sets of data, what statistical tests mean in terms of practical application, how to evaluate the validity of the assumptions behind statistical tests, and what to do when statistical assumptions have been violated. Statistics can be an intimidating course, but with this text you will be well prepared. With its thorough explanations, insightful examples, practical exercises, and innovative technology features, this text equips you with a firm foundation in statistical concepts, as well as the tools to apply them to the world around you.

Introduction to Probability and Statistics

Introduction to Probability and Statistics PDF Author: William Mendenhall
Publisher:
ISBN:
Category : Probabilities
Languages : en
Pages : 393

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