IRDLITJul 29, 2020

A Hybrid Adaptive Educational eLearning Project based on Ontologies Matching and Recommendation System

arXiv:2007.14771v320 citations
Originality Incremental advance
AI Analysis

This addresses the need for personalized learning in education, but it appears incremental as it builds on existing adaptive educational systems with AI enhancements.

The study tackled the problem of providing uniform educational conditions to all students by proposing a hybrid Adaptive Educational eLearning System (AEeLS) that adapts teaching content to individual student skills and experience, using a novel combination of semi-supervised classification for ontology matching and a hybrid recommendation mechanism.

The implementation of teaching interventions in learning needs has received considerable attention, as the provision of the same educational conditions to all students, is pedagogically ineffective. In contrast, more effectively considered the pedagogical strategies that adapt to the real individual skills of the students. An important innovation in this direction is the Adaptive Educational Systems (AES) that support automatic modeling study and adjust the teaching content on educational needs and students' skills. Effective utilization of these educational approaches can be enhanced with Artificial Intelligence (AI) technologies in order to the substantive content of the web acquires structure and the published information is perceived by the search engines. This study proposes a novel Adaptive Educational eLearning System (AEeLS) that has the capacity to gather and analyze data from learning repositories and to adapt these to the educational curriculum according to the student skills and experience. It is a novel hybrid machine learning system that combines a Semi-Supervised Classification method for ontology matching and a Recommendation Mechanism that uses a hybrid method from neighborhood-based collaborative and content-based filtering techniques, in order to provide a personalized educational environment for each student.

Foundations

The foundational work for this paper's niche, ranked by how specifically the neighbourhood builds on it — not by global fame.

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