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Identification and Assessment of Educational Experiences: Utilizing Data Mining With Robotics

David Scaradozzi, Lorenzo Cesaretti, Laura Screpanti, Eleni Mangina

发表年份
2021
引用次数
8

摘要

This article describes an example of data mining techniques applied to an open educational environment. These novel assessment methods in the educational robotics (ER) field provide empirical evidence of problem-solving styles behind the key tasks of proposed activities within real operative scenarios. A supervised, mixed machine learning (ML) approach was applied to data from seven Italian secondary schools (197 students), and four ML techniques [logistic regression (LR), support vector machine (SVM), <italic xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">k</i> -nearest neighbors (KNN), and random forest (RF)] were explored to predict students’ success.

关键词

Artificial intelligenceSupport vector machineRoboticsRandom forestMachine learningField (mathematics)Logistic regressionComputer scienceIdentification (biology)Key (lock)

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