Computer Science Meets Education: Natural Language Processing for Automatic Grading of Open-Ended Questions in eBooks

Author:

Smith Glenn Gordon1ORCID,Haworth Robert2,Žitnik Slavko3

Affiliation:

1. Department of Educational and Psychological Studies, University of South Florida

2. Department of Computer Science, University of Western Ontario

3. Faculty of Computer and Information Science, University of Ljubljana

Abstract

We investigated how Natural Language Processing (NLP) algorithms could automatically grade answers to open-ended inference questions in web-based eBooks. This is a component of research on making reading more motivating to children and to increasing their comprehension. We obtained and graded a set of answers to open-ended questions embedded in a fiction novel written in English. Computer science students used a subset of the graded answers to develop algorithms designed to grade new answers to the questions. The algorithms utilized the story text, existing graded answers for a given question and publicly accessible databases in grading new responses. A computer science professor used another subset of the graded answers to evaluate the students’ NLP algorithms and to select the best algorithm. The results showed that the best algorithm correctly graded approximately 85% of the real-world answers as correct, partly correct, or wrong. The best NLP algorithm was trained with questions and graded answers from a series of new text narratives in another language, Slovenian. The resulting NLP algorithm model was successfully used in fourth-grade language arts classes for providing feedback to student answers on open-ended questions in eBooks.

Funder

Javna Agencija za Raziskovalno Dejavnost RS

University of South Florida

Fulbright Association

Publisher

SAGE Publications

Subject

Computer Science Applications,Education

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