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Nonparametric Functional Data Analysis: Theory and Practice (Springer Series in Statistics)

Nonparametric Functional Data Analysis: Theory and Practice (Springer Series in Statistics)

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Authors: Frederic Ferraty, Philippe Vieu
Publisher: Springer
Category: Book

List Price: $84.95
Buy New: $62.86
You Save: $22.09 (26%)



New (16) Used (6) from $62.86

Sales Rank: 454768

Media: Hardcover
Edition: 1
Pages: 268
Number Of Items: 1
Shipping Weight (lbs): 1.2
Dimensions (in): 9.4 x 6.3 x 0.7

ISBN: 0387303693
Dewey Decimal Number: 551
EAN: 9780387303697

Publication Date: June 6, 2006
Availability: Usually ships in 1-2 business days
Condition: BRAND NEW

Accessories:

  • Time Series Analysis and Its Applications: With R Examples (Springer Texts in Statistics)
  • Linear and Generalized Linear Mixed Models and Their Applications (Springer Series in Statistics)
  • Bayesian Core: A Practical Approach to Computational Bayesian Statistics (Springer Texts in Statistics)

Similar Items:

  • Functional Data Analysis (Springer Series in Statistics)
  • Applied Functional Data Analysis
  • Nonlinear Time Series: Nonparametric and Parametric Methods (Springer Series in Statistics)
  • Bayesian Computation with R (Use R)
  • All of Nonparametric Statistics (Springer Texts in Statistics)

Editorial Reviews:

Product Description

Modern apparatuses allow us to collect samples of functional data, mainly curves but also images. On the other hand, nonparametric statistics produces useful tools for standard data exploration. This book links these two fields of modern statistics by explaining how functional data can be studied through parameter-free statistical ideas. This book starts from theoretical foundations including functional nonparametric modeling, description of the mathematical framework, construction of the statistical methods, and statements of their asymptotic behaviors. It proceeds to computational issues including R and S-PLUS routines. Several functional datasets in chemometrics, econometrics, and pattern recognition are used to emphasize the wide scope of nonparametric functional data analysis in applied sciences. The companion Web site includes R and S-PLUS routines, command lines for reproducing examples presented in the book, and the functional datasets.

Rather than set application against theory, this book is really an interface of these two features of statistics. A special effort has been made in writing this book to accommodate several levels of reading. The computational aspects are oriented toward practitioners whereas open problems emerging from this new field of statistics will attract Ph.D. students and academic researchers. Finally, this book is also accessible to graduate students starting in the area of functional statistics.



 
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