Applying Negative Binomial Distribution in Diagnostic Classification Models for Analyzing Count Data

Author:

Liu Ren1ORCID,Heo Ihnwhi1ORCID,Liu Haiyan1,Shi Dexin2,Jiang Zhehan3

Affiliation:

1. University of California, Merced, CA, USA

2. University of South Carolina, Columbia, SC, USA

3. Peking University, Beijing, China

Abstract

Diagnostic classification models (DCMs) have been used to classify examinees into groups based on their possession status of a set of latent traits. In addition to traditional item-based scoring approaches, examinees may be scored based on their completion of a series of small and similar tasks. Those scores are usually considered as count variables. To model count scores, this study proposes a new class of DCMs that uses the negative binomial distribution at its core. We explained the proposed model framework and demonstrated its use through an operational example. Simulation studies were conducted to evaluate the performance of the proposed model and compare it with the Poisson-based DCM.

Publisher

SAGE Publications

Subject

Psychology (miscellaneous),Social Sciences (miscellaneous)

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