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Empirical Model Building - Data, Models and Reality 2e, Thompson


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Цена: 20109.00р.
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Автор: Thompson
Название:  Empirical Model Building - Data, Models and Reality 2e
ISBN: 9780470467039
Издательство: Wiley
Классификация:

ISBN-10: 0470467037
Обложка/Формат: Hardback
Страницы: 464
Вес: 0.77 кг.
Дата издания: 02.12.2011
Серия: Wiley series in probability and statistics
Язык: English
Издание: 2 revised edition
Иллюстрации: Illustrations
Размер: 159 x 243 x 29
Читательская аудитория: Professional & vocational
Ключевые слова: Economics,Mathematics
Основная тема: Applied Probability & Statistics - Models
Подзаголовок: Data, models, and reality
Ссылка на Издательство: Link
Рейтинг:
Поставляется из: Англии
Описание: * First Edition users testify that the book is well written and expertly documented. * The reader is introduced to provocative pointers such as the relevance of graphs, the meaning of interpretation, Henry Ford s Code of Practice, and Deming s 14 points, among others.


      Старое издание

Empirical Modeling and Data Analysis for Engineers and Appli

Автор: Pardo Scott
Название: Empirical Modeling and Data Analysis for Engineers and Appli
ISBN: 3319327674 ISBN-13(EAN): 9783319327679
Издательство: Springer
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Цена: 9362.00 р.
Наличие на складе: Есть у поставщика Поставка под заказ.

Описание: This textbook teaches advanced undergraduate and first-year graduate students in Engineering and Applied Sciences to gather and analyze empirical observations (data) in order to aid in making design decisions.

While science is about discovery, the primary paradigm of engineering and 'applied science' is design. Scientists are in the discovery business and want, in general, to understand the natural world rather than to alter it. In contrast, engineers and applied scientists design products, processes, and solutions to problems.
That said, statistics, as a discipline, is mostly oriented toward the discovery paradigm. Young engineers come out of their degree programs having taken courses such as 'Statistics for Engineers and Scientists' without any clear idea as to how they can use statistical methods to help them design products or processes. Many seem to think that statistics is only useful for demonstrating that a device or process actually does what it was designed to do. Statistics courses emphasize creating predictive or classification models - predicting nature or classifying individuals, and statistics is often used to prove or disprove phenomena as opposed to aiding in the design of a product or process. In industry however, Chemical Engineers use designed experiments to optimize petroleum extraction; Manufacturing Engineers use experimental data to optimize machine operation; Industrial Engineers might use data to determine the optimal number of operators required in a manual assembly process. This text teaches engineering and applied science students to incorporate empirical investigation into such design processes.
Much of the discussion in this book is about models, not whether the models truly represent reality but whether they adequately represent reality with respect to the problems at hand; many ideas focus on how to gather data in the most efficient way possible to construct adequate models.Includes chapters on subjects not often seen together in a single text (e.g., measurement systems, mixture experiments, logistic regression, Taguchi methods, simulation)Techniques and concepts introduced present a wide variety of design situations familiar to engineers and applied scientists and inspire incorporation of experimentation and empirical investigation into the design process.Software is integrally linked to statistical analyses with fully worked examples in each chapter; fully worked using several packages: SAS, R, JMP, Minitab, and MS Excel - also including discussion questions at the end of each chapter.
The fundamental learning objective of this textbook is for the reader to understand how experimental data can be used to make design decisions and to be familiar with the most common types of experimental designs and analysis methods.
Model Building in Mathematical Programming

Автор: Williams H Paul
Название: Model Building in Mathematical Programming
ISBN: 1118443330 ISBN-13(EAN): 9781118443330
Издательство: Wiley
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Цена: 7437.00 р.
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Описание: The 5th edition of Model Building in Mathematical Programming discusses the general principles of model building in mathematical programming and demonstrates how they can be applied by using several simplified but practical problems from widely different contexts.

The Methodology of Economic Model Building (Routledge Revivals)

Автор: Boland
Название: The Methodology of Economic Model Building (Routledge Revivals)
ISBN: 1138776319 ISBN-13(EAN): 9781138776319
Издательство: Taylor&Francis
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Цена: 7042.00 р.
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Описание: In The Methodology of Economic Model Building, first published in 1989, Lawrence Boland presents the results of a research project that spanned more than twenty years. He examines how economists have applied the philosophy of Karl Popper, relating methodological debates about falsifiability to wider discussions about the truth status of models in natural and social sciences.

Mastering Financial Modeling; A Professionals Guide To Building Financial Models In Excel

Автор: Soubeiga
Название: Mastering Financial Modeling; A Professionals Guide To Building Financial Models In Excel
ISBN: 0071808507 ISBN-13(EAN): 9780071808507
Издательство: McGraw-Hill
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Цена: 11667.00 р.
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Описание: All the precision of financial modeling - and none of the complexity. Evidence-based decision making is only as good as the external evidence on which it is based. This title offers a simplified method for building the fast and accurate financial models serious evidence based decision makers need.


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