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Journal ArticleDOI

Mining LMS data to develop an early warning system for educators: A proof of concept

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TLDR
This study affirms that pedagogically meaningful information can be extracted from LMS-generated student tracking data, and discusses how these findings are informing the development of a customizable dashboard-like reporting tool for educators that will extract and visualize real-time data on student engagement and likelihood of success.
Abstract
Earlier studies have suggested that higher education institutions could harness the predictive power of Learning Management System (LMS) data to develop reporting tools that identify at-risk students and allow for more timely pedagogical interventions. This paper confirms and extends this proposition by providing data from an international research project investigating which student online activities accurately predict academic achievement. Analysis of LMS tracking data from a Blackboard Vista-supported course identified 15 variables demonstrating a significant simple correlation with student final grade. Regression modelling generated a best-fit predictive model for this course which incorporates key variables such as total number of discussion messages posted, total number of mail messages sent, and total number of assessments completed and which explains more than 30% of the variation in student final grade. Logistic modelling demonstrated the predictive power of this model, which correctly identified 81% of students who achieved a failing grade. Moreover, network analysis of course discussion forums afforded insight into the development of the student learning community by identifying disconnected students, patterns of student-to-student communication, and instructor positioning within the network. This study affirms that pedagogically meaningful information can be extracted from LMS-generated student tracking data, and discusses how these findings are informing the development of a customizable dashboard-like reporting tool for educators that will extract and visualize real-time data on student engagement and likelihood of success.

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Journal ArticleDOI

Democracy and education.

TL;DR: In this article, a critical examination of democratic theory and its implications for the civic education roles and contributions of teachers, adult educators, community development practitioners, and community organizers is presented.
Book ChapterDOI

Educational Data Mining and Learning Analytics

TL;DR: How these methods emerged in the early days of research in this area is discussed, which methods have seen particular interest in the EDM and learning analytics communities, and how this has changed as the field matures and has moved to making significant contributions to both educational research and practice.
Journal Article

Translating Learning into Numbers: A Generic Framework for Learning Analytics

TL;DR: Greller, W., & Drachsler, H. (2012).
Journal ArticleDOI

Learning Analytics The Emergence of a Discipline

TL;DR: It is argued that LA has sufficiently developed, through conferences, journals, summer institutes, and research labs, to be considered an emerging research field.

Enhancing Teaching and Learning Through Educational Data Mining and Learning Analytics: An Issue Brief

TL;DR: This issue brief is intended to help policymakers and administrators understand how analytics and data mining have been—and can be—applied for educational improvement.
References
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Book

Discovering Statistics Using SPSS

TL;DR: Suitable for those new to statistics as well as students on intermediate and more advanced courses, the book walks students through from basic to advanced level concepts, all the while reinforcing knowledge through the use of SAS(R).
Book

Thought and language

Lev Vygotsky
TL;DR: Kozulin has created a new edition of the original MIT Press translation by Eugenia Hanfmann and Gertrude Vakar that restores the work's complete text and adds materials that will help readers better understand Vygotsky's meaning and intentions as discussed by the authors.
Book

Social Network Analysis: Methods and Applications

TL;DR: This paper presents mathematical representation of social networks in the social and behavioral sciences through the lens of Dyadic and Triadic Interaction Models, which describes the relationships between actor and group measures and the structure of networks.
Book

Democracy and Education

John Dewey
TL;DR: Dewey's "Common Sense" as mentioned in this paper explores the nature of knowledge and learning as well as formal education's place, purpose, and process within a democratic society, and it continues to influence contemporary educational thought.
Journal ArticleDOI

Social Network Analysis: Methods and Applications.

TL;DR: This work characterizes networked structures in terms of nodes (individual actors, people, or things within the network) and the ties, edges, or links that connect them.
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