Generalized Kernel Equating with Applications in R - Wiberg, Marie; Gonzalez, Jorge; von Davier, Alina A.; - Prospero Internetes Könyváruház

Generalized Kernel Equating with Applications in R
 
A termék adatai:

ISBN13:9781138196988
ISBN10:1138196983
Kötéstípus:Keménykötés
Terjedelem:272 oldal
Méret:234x156 mm
Súly:662 g
Nyelv:angol
Illusztrációk: 25 Illustrations, black & white; 9 Illustrations, color; 25 Line drawings, black & white; 9 Line drawings, color; 9 Tables, black & white
700
Témakör:

Generalized Kernel Equating with Applications in R

 
Kiadás sorszáma: 1
Kiadó: Chapman and Hall
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Kiadói listaár:
GBP 89.99
Becsült forint ár:
46 016 Ft (43 825 Ft + 5% áfa)
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36 813 (35 060 Ft + 5% áfa )
Kedvezmény(ek): 20% (kb. 9 203 Ft)
A kedvezmény érvényes eddig: 2024. december 31.
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  példányt

 
Rövid leírás:

Generalized Kernel Equating is a comprehensive guide for those aiming to master test score equating. This book introduces the Generalized Kernel Equating (GKE) framework, providing the necessary tools and methodologies for accurate and fair score comparisons.

Hosszú leírás:

Generalized Kernel Equating is a comprehensive guide for statisticians, psychometricians, and educational researchers aiming to master test score equating. This book introduces the Generalized Kernel Equating (GKE) framework, providing the necessary tools and methodologies for accurate and fair score comparisons.


The book presents test score equating as a statistical problem and covers all commonly used data collection designs. It details the five steps of the GKE framework: presmoothing, estimating score probabilities, continuization, equating transformation, and evaluating the equating transformation. Various presmoothing strategies are explored, including log-linear models, item response theory models, beta4 models, and discrete kernel estimators. The estimation of score probabilities when using IRT models is described and Gaussian kernel continuization is extended to other kernels such as uniform, logistic, epanechnikov and adaptive kernels. Several bandwidth selection methods are described. The kernel equating transformation and variants of it are defined, and both equating-specific and statistical measures for evaluating equating transformations are included. Real data examples, guiding readers through the GKE steps with detailed R code and explanations are provided. Readers are equipped with an advanced knowledge and practical skills for implementing test score equating methods.

Tartalomjegyzék:

Foreword  Preface  Part 1: Test Equating and Kernel Equating Overview   1 Introduction  2 Kernel Equating  Part 2: Generalized Kernel Equating Framework  3 Presmoothing  4 Estimating Score Probabilities  5 Continuization  6 Bandwidth Selection  7 Equating 8 Evaluating the Equating Transformation  Part 3: Applications  9 Examples under the EG design  10 Examples under the NEAT design  Part 4: Appendix   A Installing R and Reading in Data  B R packages for GKE  Bibliography