Isbn: 9781071614204 - an introduction to statistical learning: with applications in r (springer texts in statistics) (41 resultados)

An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer (edition Second Edition 2021), 2022
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Paperback. Condición: Very Good. Second Edition 2021. It's a well-cared-for item that has seen limited use. The item may show minor signs of wear. All the text is legible, with all pages included. It may have slight markings and/or highlighting.

An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer (edition Second Edition 2021), 2022
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Paperback. Condición: Very Good. Second Edition 2021. It's a well-cared-for item that has seen limited use. The item may show minor signs of wear. All the text is legible, with all pages included. It may have slight markings and/or highlighting.

An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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Soft cover. Condición: Fine. 2nd Edition. This is a fine, unmarked, second edition paperback copy, 607 pages with index, blue-yellow spine. Photos on request.

Idioma: Inglés
Editorial: Springer, 2022
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paperback. Condición: Good. Second Edition 2021. Ships in a BOX from Central Missouri! May not include working access code. Will not include dust jacket. Has used sticker(s) and some writing or highlighting. UPS shipping for most packages, (Priority Mail for AK/HI/APO/PO Boxes).

An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth,Witten, Daniela,Hastie, Trevor,Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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paperback. Condición: Good. The text is creased. The copy shows minor external wear, but is otherwise in clean condition.

An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth,Witten, Daniela,Hastie, Trevor,Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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Idioma: Inglés
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paperback. Condición: New. Second Edition 2021. Ships in a BOX from Central Missouri! UPS shipping for most packages, (Priority Mail for AK/HI/APO/PO Boxes).

Introduction to Statistical Learning : With Applications in R
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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Introduction to Statistical Learning : With Applications in R
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
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An Introduction to Statistical Learning: with Applications in R
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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AN INTRODUCTION TO STATISTICAL LEARNING WITH APPLICATIONS IN R 2ED (PB 2021)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
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Condición: New. This is a Brand-new US Edition. This Item may be shipped from US or any other country as we have multiple locations worldwide.

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An Introduction to Statistical Learning: with Applications in R
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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AN INTRODUCTION TO STATISTICAL LEARNING WITH APPLICATIONS IN R 2ED (PB 2021)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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Condición: New. pp. 607.

Introduction to Statistical Learning : With Applications in R
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
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Editorial: Springer, 2022
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An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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An Introduction to Statistical Learning
Robert Tibshirani, Gareth James, Trevor Hastie, Daniela Witten
Idioma: Inglés
Editorial: Springer-Verlag New York Inc., US, 2022
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Paperback. Condición: New. Second Edition 2021. An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to marketing to astrophysics in the past twenty years. This book presents some of the most important modeling and prediction techniques, along with relevant applications. Topics include linear regression, classification, resampling methods, shrinkage approaches, tree-based methods, support vector machines, clustering, deep learning, survival analysis, multiple testing, and more. Color graphics and real-world examples are used to illustrate the methods presented. Since the goal of this textbook is to facilitate the use of these statistical learning techniques by practitioners in science, industry, and other fields, each chapter contains a tutorial on implementing the analyses and methods presented in R, an extremely popular open source statistical software platform.Two of the authors co-wrote The Elements of Statistical Learning (Hastie, Tibshirani and Friedman, 2nd edition 2009), a popular reference book for statistics and machine learning researchers. An Introduction to Statistical Learning covers many of the same topics, but at a level accessible to a much broader audience. This book is targeted at statisticians and non-statisticians alike who wish to use cutting-edge statistical learning techniques to analyze their data. The text assumes only a previous course in linear regression and no knowledge of matrix algebra.This Second Edition features new chapters on deep learning, survival analysis, and multiple testing, as well as expanded treatments of naïve Bayes, generalized linear models, Bayesian additive regression trees, and matrix completion. R code has been updated throughout to ensure compatibility.…

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Condición: New. pp. 607.

Introduction to Statistical Learning : With Applications in R
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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Condición: As New. Unread book in perfect condition.

An Introduction to Statistical Learning
Robert Tibshirani, Gareth James, Trevor Hastie, Daniela Witten
Idioma: Inglés
Editorial: Springer-Verlag New York Inc., US, 2022
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Paperback. Condición: New. Second Edition 2021. An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to marketing to astrophysics in the past twenty years. This book presents some of the most important modeling and prediction techniques, along with relevant applications. Topics include linear regression, classification, resampling methods, shrinkage approaches, tree-based methods, support vector machines, clustering, deep learning, survival analysis, multiple testing, and more. Color graphics and real-world examples are used to illustrate the methods presented. Since the goal of this textbook is to facilitate the use of these statistical learning techniques by practitioners in science, industry, and other fields, each chapter contains a tutorial on implementing the analyses and methods presented in R, an extremely popular open source statistical software platform.Two of the authors co-wrote The Elements of Statistical Learning (Hastie, Tibshirani and Friedman, 2nd edition 2009), a popular reference book for statistics and machine learning researchers. An Introduction to Statistical Learning covers many of the same topics, but at a level accessible to a much broader audience. This book is targeted at statisticians and non-statisticians alike who wish to use cutting-edge statistical learning techniques to analyze their data. The text assumes only a previous course in linear regression and no knowledge of matrix algebra.This Second Edition features new chapters on deep learning, survival analysis, and multiple testing, as well as expanded treatments of naïve Bayes, generalized linear models, Bayesian additive regression trees, and matrix completion. R code has been updated throughout to ensure compatibility.…

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An Introduction to Statistical Learning: with Applications in R (Springer Texts in Statistics)
James, Gareth; Witten, Daniela; Hastie, Trevor; Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, 2022
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Librería: Ria Christie Collections, Uxbridge, Reino UnidoRia Christie Collections
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Condición: New. In English.

Idioma: Inglés
Editorial: Springer, Humana Jul 2022, 2022
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Taschenbuch. Condición: Neu. Neuware -An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to marketing to astrophysics in the past twenty years. This book presents some of the most important modeling and prediction techniques, along with relevant applications. Topics include linear regression, classification, resampling methods, shrinkage approaches, tree-based methods, support vector machines, clustering, deep learning, survival analysis, multiple testing, and more. Color graphics and real-world examples are used to illustrate the methods presented. Since the goal of this textbook is to facilitate the use of these statistical learning techniques by practitioners in science, industry, and other fields, each chapter contains a tutorial on implementing the analyses and methods presented in R, an extremely popular open source statistical software platform.Two of the authors co-wrote The Elements of Statistical Learning (Hastie, Tibshirani and Friedman, 2nd edition 2009), a popular reference book for statistics and machine learning researchers. An Introduction to Statistical Learning covers many of the same topics, but at a level accessible to a much broader audience. This book is targeted at statisticians and non-statisticians alike who wish to use cutting-edge statistical learning techniques to analyze their data. The text assumes only a previous course in linear regression and no knowledge of matrix algebra.This Second Edition features new chapters on deep learning, survival analysis, and multiple testing, as well as expanded treatments of naïve Bayes, generalized linear models, Bayesian additive regression trees, and matrix completion. R code has been updated throughout to ensure compatibility. 624 pp. Englisch.…

Idioma: Inglés
Editorial: Springer, 2022
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Condición: NEW.

Idioma: Inglés
Editorial: Springer Jul 2022, 2022
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Taschenbuch. Condición: Neu. Neuware - An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to marketing to astrophysics in the past twenty years. This book presents some of the most important modeling and prediction techniques, along with relevant applications. Topics include linear regression, classification, resampling methods, shrinkage approaches, tree-based methods, support vector machines, clustering, deep learning, survival analysis, multiple testing, and more. Color graphics and real-world examples are used to illustrate the methods presented. Since the goal of this textbook is to facilitate the use of these statistical learning techniques by practitioners in science, industry, and other fields, each chapter contains a tutorial on implementing the analyses and methods presented in R, an extremely popular open source statistical software platform.Two of the authors co-wrote The Elements of Statistical Learning (Hastie, Tibshirani and Friedman, 2nd edition 2009), a popular reference book for statistics and machine learning researchers. An Introduction to Statistical Learning covers many of the same topics, but at a level accessible to a much broader audience. This book is targeted at statisticians and non-statisticians alike who wish to use cutting-edge statistical learning techniques to analyze their data. The text assumes only a previous course in linear regression and no knowledge of matrix algebra.This Second Edition features new chapters on deep learning, survival analysis, and multiple testing, as well as expanded treatments of naïve Bayes, generalized linear models, Bayesian additive regression trees, and matrix completion. R code has been updated throughout to ensure compatibility.…

An Introduction to Statistical Learning
James, Gareth|Witten, Daniela|Hastie, Trevor|Tibshirani, Robert
Idioma: Inglés
Editorial: Springer, Berlin|Springer US|Springer, 2022
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Librería: moluna, Greven, Alemaniamoluna
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EUR 57,62
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Condición: New. An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to ma.