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Integration of AI and Metaheuristics in Educational Software : A Hybrid Approach to Exercise Generation

Láng, Blanka and Dömsödi, Balázs (2024) Integration of AI and Metaheuristics in Educational Software : A Hybrid Approach to Exercise Generation. International Journal of Emerging Technologies in Learning (iJET), 19 (6). pp. 38-51. DOI 10.3991/ijet.v19i06.49829

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Official URL: https://doi.org/10.3991/ijet.v19i06.49829


Abstract

This study explores the integration of generative artificial intelligence (AI) with Exercise Generation Algorithm+ (EGAL+), a multi-objective harmony search (HS) metaheuristic-based algorithm capable of composing high-quality exercises. These exercises are characterized by their diversity, consistent difficulty, and comprehensive coverage of the source material, tailored to user preferences. One of the main challenges of using metaheuristics to compile exercises efficiently is the initial creation of a large question bank, which often demands significant time and effort from instructors. To overcome this challenge, the integration of a readily available existing generative AI module is proposed. This module is accessed through its application programming interface, autonomously populating the question bank. This sets the stage for EGAL+ to fine-tune the selection and assembly of specific exams. The resulting program enables educators to create an extensive question bank from any educational material, independent of the subject, and subsequently compose exercises with minimal effort. This approach leverages the synergistic benefits of both generative AI and metaheuristic- based optimization, offering a robust and efficient solution for exercise generation.

Item Type:Article
Uncontrolled Keywords:automatic question generation (AQG) ; artificial intelligence (AI) ; multi-objective optimization ; exercise generation ; metaheuristics ; harmony search (HS) ;
Divisions:Institute of Data Analytics and Information Systems
Corvinus Doctoral Schools
Subjects:Education
Pedagogy
Computer science
DOI:10.3991/ijet.v19i06.49829
ID Code:10268
Deposited By: MTMT SWORD
Deposited On:21 Aug 2024 12:09
Last Modified:21 Aug 2024 12:09

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