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Regression models for paired compari...
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Verkuilen, John V.
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Regression models for paired comparisons.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Regression models for paired comparisons./
作者:
Verkuilen, John V.
面頁冊數:
91 p.
附註:
Source: Dissertation Abstracts International, Volume: 68-11, Section: B, page: 7705.
Contained By:
Dissertation Abstracts International68-11B.
標題:
Quantitative psychology. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3290414
ISBN:
9780549342229
Regression models for paired comparisons.
Verkuilen, John V.
Regression models for paired comparisons.
- 91 p.
Source: Dissertation Abstracts International, Volume: 68-11, Section: B, page: 7705.
Thesis (Ph.D.)--University of Illinois at Urbana-Champaign, 2007.
Paired comparisons are among the most widely used experimental methods in psychology and related fields. First employed in the middle of the 19th Century, many models have been developed over the years to analyze data from such experiments, for instance the Thurstone and Bradley-Terry-Luce models. This dissertation proposes an integrative framework in which the vast majority of extant scaling procedures for paired comparisons can be cast. The framework is based on the Generalized Linear Mixed Model (GLMM) and it characterizes paired comparison models according to four characteristics, taken in order: (1) the response format, (2) the link function, (3) the error distribution, and (4) the mixing distribution. It expresses the scaling problem as a regression fitting in the GLMM, and shows how particular aspects of paired comparisons restrict the choices that can be made among these four model components. All known response formats---binary, discrete ordinal, continuous constant sum and continuous constant product---fit as examples in this framework. Given this, it is easy to consider other models based on the four characteristics. In addition to the framework, models designed to analyze data for graded response formats where subjects are heterogeneous in their response styles are proposed and examined. Finally a simulation study illustrates the robustness of the classic "Case V" specification.
ISBN: 9780549342229Subjects--Topical Terms:
2144748
Quantitative psychology.
Regression models for paired comparisons.
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Source: Dissertation Abstracts International, Volume: 68-11, Section: B, page: 7705.
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Paired comparisons are among the most widely used experimental methods in psychology and related fields. First employed in the middle of the 19th Century, many models have been developed over the years to analyze data from such experiments, for instance the Thurstone and Bradley-Terry-Luce models. This dissertation proposes an integrative framework in which the vast majority of extant scaling procedures for paired comparisons can be cast. The framework is based on the Generalized Linear Mixed Model (GLMM) and it characterizes paired comparison models according to four characteristics, taken in order: (1) the response format, (2) the link function, (3) the error distribution, and (4) the mixing distribution. It expresses the scaling problem as a regression fitting in the GLMM, and shows how particular aspects of paired comparisons restrict the choices that can be made among these four model components. All known response formats---binary, discrete ordinal, continuous constant sum and continuous constant product---fit as examples in this framework. Given this, it is easy to consider other models based on the four characteristics. In addition to the framework, models designed to analyze data for graded response formats where subjects are heterogeneous in their response styles are proposed and examined. Finally a simulation study illustrates the robustness of the classic "Case V" specification.
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