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Hierarchical Models for the Analysis of Likert Scales in Regression and Item Response Analysis

[journal article]

Tutz, Gerhard

Abstract

Appropriate modelling of Likert-type items should account for the scale level and the specific role of the neutral middle category, which is present in most Likert-type items that are in common use. Powerful hierarchical models that account for both aspects are proposed. To avoid biased estimates, t... view more

Appropriate modelling of Likert-type items should account for the scale level and the specific role of the neutral middle category, which is present in most Likert-type items that are in common use. Powerful hierarchical models that account for both aspects are proposed. To avoid biased estimates, the models separate the neutral category when modelling the effects of explanatory variables on the outcome. The main model that is propagated uses binary response models as building blocks in a hierarchical way. It has the advantage that it can be easily extended to include response style effects and non-linear smooth effects of explanatory variables. By simple transformation of the data, available software for binary response variables can be used to fit the model. The proposed hierarchical model can be used to investigate the effects of covariates on single Likert-type items and also for the analysis of a combination of items. For both cases, estimation tools are provided. The usefulness of the approach is illustrated by applying the methodology to a large data set.... view less

Keywords
attitude; measurement; method; model

Classification
Methods and Techniques of Data Collection and Data Analysis, Statistical Methods, Computer Methods

Free Keywords
djacent categories model; cumulative model; hierarchically structured models; ordinal regression; proportional odds model; sequential model; ZA5700: Pre-election Cross Section (GLES 2013)

Document language
English

Publication Year
2021

Page/Pages
p. 18-35

Journal
International Statistical Review, 89 (2021) 1

DOI
https://doi.org/10.1111/insr.12396

ISSN
1751-5823

Status
Published Version; peer reviewed

Licence
Creative Commons - Attribution-NonCommercial 4.0


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© 2007 - 2025 Social Science Open Access Repository (SSOAR).
Based on DSpace, Copyright (c) 2002-2022, DuraSpace. All rights reserved.