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<dc:creator>Figueiredo, José</dc:creator>
<dc:creator>Lopes, Noel</dc:creator>
<dc:creator>García-Peñalvo, Francisco J.</dc:creator>
<dc:date>2019</dc:date>
<dc:description>One of the most challenging tasks in computer science and similar courses consists of both teaching and learning computer&#xd;
programming. Usually this requires a great deal of work, dedication, and motivation from both teachers and students.&#xd;
Accordingly, ever since the first programming languages emerged, the problems inherent to programming teaching and&#xd;
learning have been studied and investigated. The theme is very serious, not only for the important concepts underlying&#xd;
computer science courses but also for reducing the lack of motivation, failure, and abandonment that result from students&#xd;
frustration. Therefore, early identification of potential problems and immediate response is a fundamental aspect to avoid&#xd;
student’s failure and reduce dropout rates. In this paper, we propose a machine-learning (neural network) predictive model&#xd;
of student failure based on the student profile, which is built throughout programming classes by continuously monitoring&#xd;
and evaluating student activities. The resulting model allows teachers to early identify students that are more likely to fail,&#xd;
allowing them to devote more time to those students and try novel strategies to improve their programming skills.</dc:description>
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<dc:identifier>http://hdl.handle.net/10366/140544</dc:identifier>
<dc:language>eng</dc:language>
<dc:subject>1203.17 Informática</dc:subject>
<dc:title>Predicting Student Failure in an Introductory Programming Course with Multiple Back-Propagation</dc:title>
<dc:type>info:eu-repo/semantics/article</dc:type>
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