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Multivariate Statistics : Exercises and Solutions / by Wolfgang Karl Härdle, Zdeněk Hlávka

Edition 2nd ed. 2015.
Publisher (Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer)
Year 2015
Size XXIV, 362 p. 123 illus., 30 illus. in color : online resource
Authors *Härdle, Wolfgang Karl author
Hlávka, Zdeněk author
SpringerLink (Online service)
Subjects LCSH:Statistics 
LCSH:Mathematics—Data processing
LCSH:Information visualization
LCSH:Data mining
LCSH:Computational intelligence
FREE:Statistical Theory and Methods
FREE:Computational Mathematics and Numerical Analysis
FREE:Data and Information Visualization
FREE:Data Mining and Knowledge Discovery
FREE:Computational Intelligence
Notes Part I Descriptive Techniques:  Comparison of Batches -- Part II Multivariate Random Variables:  A Short Excursion into Matrix Algebra -- Moving to Higher -- Multivariate -- Theory of the Multinormal --  Theory of Estimation -- Part III Multivariate Techniques: Regression Models -- Variable Selection -- Decomposition of Data Matrices by Factors -- Principal Component Analysis -- Factor Analysis -- Cluster Analysis -- Discriminant Analysis -- Correspondence Analysis -- Canonical Correlation Analysis -- Multidimensional Scaling -- Conjoint Measurement Analysis -- Applications in Finance -- Highly Interactive, Computationally Intensive Techniques -- Data Sets -- References -- Index
The authors present tools and concepts of multivariate data analysis by means of exercises and their solutions. The first part is devoted to graphical techniques. The second part deals with multivariate random variables and presents the derivation of estimators and tests for various practical situations. The last part introduces a wide variety of exercises in applied multivariate data analysis. The book demonstrates the application of simple calculus and basic multivariate methods in real life situations. It contains altogether more than 250 solved exercises which can assist a university teacher in setting up a modern multivariate analysis course. All computer-based exercises are available in the R language. All R codes and data sets may be downloaded via the quantlet download center  www.quantlet.org or via the Springer webpage. For interactive display of low-dimensional projections of a multivariate data set, we recommend GGobi
HTTP:URL=https://doi.org/10.1007/978-3-642-36005-3
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E-Book オンライン 電子ブック

Springer eBooks 9783642360053
電子リソース
EB00205617

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Material Type E-Book
Classification LCC:QA276-280
DC23:519.5
ID 4000119377
ISBN 9783642360053

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