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Active Methodology, Educational Data Mining and Learning Analytics: A Systematic Mapping Study
Volume 20, Issue 2 (2021), pp. 171–204
Tiago Luís de ANDRADE   Sandro José RIGO   Jorge Luis Victória BARBOSA  

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https://doi.org/10.15388/infedu.2021.09
Pub. online: 5 August 2022      Type: Article      Open accessOpen Access

Published
5 August 2022

Abstract

Distance Learning has enabled educational practices based on digital platforms, generating massive amounts of data. Several initiatives use this data to identify dropout contexts, mainly providing teacher support about student behavior. Approaches such as Active Methodologies are known as having good potential to involve and motivate students. This article presents a systematic mapping aiming to identify current Educational Data Mining and Learning Analytics methods. Besides, we identify Active Methodologies’ application to mitigate dropout in Distance Learning. We evaluated 668 papers published from January 2015 to March 2020. The results indicate a growing application of Educational Data Mining and Learning Analytics to identify and mitigate students’ abandonment in Distance Learning. However, studies with Active Methodologies to minimize dropout and enhance student permanence are scarce. Some works suggest Active Methods as a possible complement of Learning Analytics in dropout.

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Open access article under the CC BY license.

Keywords
active methodology educational data mining learning analytics dropout distance education

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INFORMATICS IN EDUCATION

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