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Data Structures for Computational Statistics

Data Structures for Computational Statistics
Catalogue Information
Field name Details
Dewey Class 004.0151
Title Data Structures for Computational Statistics ([EBook] /) / by Sigbert Klinke.
Author Klinke, Sigbert
Other name(s) SpringerLink (Online service)
Publication Heidelberg : : Physica-Verlag HD : : Imprint: Physica, , 1997.
Physical Details VIII, 284 p. 8 illus. : online resource.
Series Contributions to Statistics 1431-1968
ISBN 9783642592423
Summary Note Since the beginning of the seventies computer hardware is available to use programmable computers for various tasks. During the nineties the hardware has developed from the big main frames to personal workstations. Nowadays it is not only the hardware which is much more powerful, but workstations can do much more work than a main frame, compared to the seventies. In parallel we find a specialization in the software. Languages like COBOL for business­ orientated programming or Fortran for scientific computing only marked the beginning. The introduction of personal computers in the eighties gave new impulses for even further development, already at the beginning of the seven­ ties some special languages like SAS or SPSS were available for statisticians. Now that personal computers have become very popular the number of pro­ grams start to explode. Today we will find a wide variety of programs for almost any statistical purpose (Koch & Haag 1995).:
Contents note 1 Introduction -- 1.1 Motivation -- 1.2 The Need of Interactive Environments -- 1.3 Modern Computer Soft- and Hardware -- 2 Exploratory Statistical Techniques -- 2.1 Descriptive Statistics -- 2.2 Some Stratifications -- 2.3 Boxplots -- 2.4 Quantile-Quantile Plot -- 2.5 Histograms, Regressograms and Charts -- 2.6 Bivariate Plots -- 2.7 Scatterplot Matrices -- 2.8 Three Dimensional Plots -- 2.9 Higher Dimensional Plots -- 2.10 Basic Properties for Graphical Windows -- 3 Some Statistical Applications -- 3.1 Cluster Analysis -- 3.2 Teachware -- 3.3 Regression Methods -- 4 Exploratory Projection Pursuit -- 4.1 Motivation and History -- 4.2 The Basis of Exploratory Projection Pursuit -- 4.3 Application to the Swiss Banknote Dataset -- 4.4 Multivariate Exploratory Projection Pursuit -- 4.5 Discrete Exploratory Projection Pursuit -- 4.6 Requirements for a Tool Doing Exploratory Projection Pursuit -- 5 Data Structures -- 5.1 For Graphical Objects -- 5.2 For Data Objects -- 5.3 For Linking -- 5.4 Existing Computational Environments -- 6 Implementation in XploRe -- 6.1 Data Structures in XploRe 3.2 -- 6.2 Selected Commands in XploRe 3.2 -- 6.3 Selected Tools in XploRe 3.2 -- 6.4 Data Structure in XploRe 4.0 -- 6.5 Commands and Macros in XploRe 4.0 -- 7 Conclusion -- A The Datasets -- B Mean Squared Error of the Friedman-Tukey Index -- C Density Estimation on Hexagonal Bins -- D Programs -- E Tables -- References.
System details note Online access to this digital book is restricted to subscription institutions through IP address (only for SISSA internal users)
Internet Site http://dx.doi.org/10.1007/978-3-642-59242-3
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