个性化电子学习课程使用:反向轮盘选择算法

Melvin A. Ballera, I. A. Lukandu, Abdalla Radwan
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引用次数: 9

摘要

从教学的角度来看,电子学习提出了一个挑战,比如如何在没有人类教师的情况下激励学生学习。许多研究人员提出并实施了各种机制来改善学习过程,如个性化和个性化。其主要目标是通过动态选择最接近的教学操作来实现学习的最大化。本文提出并实现了一种革命性的技术,使用运行速度为O(n)的反向轮盘赌轮盘选择算法来执行个性化和个性化。与其他革命性的算法相比,该技术实现起来更简单,算法成本也更低,因为它收集了动态的实时性能,如考试、复习和学习矩阵。结果表明,所实现的系统能够基于先验知识和实际性能矩阵推荐新的学习序列,从而缩短学习时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Personalizing E-learning curriculum using: reversed roulette wheel selection algorithm
E-learning poses a challenge in a pedagogical perspective such as finding ways on how to motivate the students to learn in spite of the absence of a human instructor. Many researchers in the field have proposed and implemented various mechanisms to improve the learning process such as individualization and personalization. The main objectives is to maximize learning by dynamically selecting the closest teaching operation in order to achieve the learning goals. In this paper, a revolutionary technique has been proposed and implemented to perform individualization and personalization using reversed roulette wheel selection algorithm that runs at O(n). The technique is simpler to implement and is algorithmically less expensive compared to other revolutionary algorithms since it collects the dynamic real time performance such as examinations, reviews and study matrices. Results show that the implemented system is capable of recommending new learning sequences that lessens time of study based on their prior knowledge and real performance matrix.
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