A Hierarchical Rater Model Approach for Integrating Automated Essay Scoring Models

Author:

Fink Aron1ORCID,Gombert Sebastian2,Liu Tuo1ORCID,Drachsler Hendrik23,Frey Andreas1

Affiliation:

1. Educational Psychology: Counseling, Measurement, & Evaluation, Institute of Psychology, Goethe University Frankfurt, Frankfurt a. M., Germany

2. Educational Technologies, DIPF | Leibniz Institute for Research and Information in Education, Frankfurt a. M., Germany

3. Department of Online Learning and Instruction, Open University of the Netherlands, Heerlen, The Netherlands

Abstract

Abstract: Essay writing tests, integral in many educational settings, demand significant resources for manual scoring. Automated essay scoring (AES) can alleviate this by automating the process, thereby reducing human effort. However, the multitude of AES models, each varying in its features and scoring approaches, complicates selecting one optimal model, especially when evaluating diverse content-related aspects across multiple rating items. Therefore, we propose a hierarchical rater model-based approach to integrate predictions from multiple AES models, accounting for their distinct scoring behaviors. We investigated its performance on data from a university essay writing test. The proposed method achieved accuracy that was comparable to the best individual AES model. This is a promising result because it additionally reduced the amount of differential item functioning between human and automated scoring and thus established a higher degree of measurement invariance compared to the individual AES models.

Publisher

Hogrefe Publishing Group

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Natural Language Processing in Psychology;Zeitschrift für Psychologie;2024-07

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