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Advanced Linear Modeling: Statistical Learning And Dependent DataAdvanced Linear Modeling: Statistical Learning And Dependent DataAdvanced Linear Modeling: Statistical Learning And Dependent DataAdvanced Linear Modeling: Statistical Learning And Dependent Data

Advanced Linear Modeling: Statistical Learning And Dependent Data

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Current price: $149.13
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Advanced Linear Modeling: Statistical Learning And Dependent Data

Coles

Advanced Linear Modeling: Statistical Learning And Dependent Data

By None

Current price: $149.13
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Size: Hardcover (2019)

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Now in its third edition, this companion volume to Ronald Christensen's Plane  Answers to Complex Questions uses three fundamental concepts from standard linear model theory-best linear prediction, projections, and Mahalanobis distance- to extend standard linear modeling into the realms of Statistical Learning and Dependent Data.   This new edition features a wealth of new and revised content.  In Statistical Learning it delves into nonparametric regression, penalized estimation (regularization), reproducing kernel Hilbert spaces, the kernel trick, and support vector machines.  For Dependent Data it uses linear model theory to examine general linear models, linear mixed models, time series, spatial data, (generalized) multivariate linear models, discrimination, and dimension reduction.  While numerous references to  Plane Answers are made throughout the volume, Advanced Linear Modeling can be used on its own given a solid background in linear models.  Accompanying R code for the analyses is available online.
Now in its third edition, this companion volume to Ronald Christensen's Plane  Answers to Complex Questions uses three fundamental concepts from standard linear model theory-best linear prediction, projections, and Mahalanobis distance- to extend standard linear modeling into the realms of Statistical Learning and Dependent Data.   This new edition features a wealth of new and revised content.  In Statistical Learning it delves into nonparametric regression, penalized estimation (regularization), reproducing kernel Hilbert spaces, the kernel trick, and support vector machines.  For Dependent Data it uses linear model theory to examine general linear models, linear mixed models, time series, spatial data, (generalized) multivariate linear models, discrimination, and dimension reduction.  While numerous references to  Plane Answers are made throughout the volume, Advanced Linear Modeling can be used on its own given a solid background in linear models.  Accompanying R code for the analyses is available online.

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