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Using Strongly Typed Genetic Programming for knowledge discovery of course quality from e-learning's web log

机译:使用强大类型的遗传编程,从电子学习的网页日志中使用历程发现的知识发现

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Learning Management System (LMS) has become the popular instrument in academic institutions by providing feasible pedagogical interaction. In the abundance of registered users take some activities inside LMS, the result of analyzing the quality of courses becomes remarkable feedback for teachers to enhance their teaching program via e-learning. Unexceptionally, mining web server log has been fascinating area in e-education environment. Our objective is to find interrelationships knowledge among e-learning web log's metrics. Strongly Typed Genetic Programming (STGP) as the cutting the edge technique for finding accurate rule inductions is used to achieve the goal. Revealed knowledge may useful for teachers or academicians to rearrange strategies in the purpose of improving e-learning usage quality based on the course activities.
机译:学习管理系统(LMS)通过提供可行的教学互动,已成为学术机构中的流行乐器。 在丰富的注册用户中占据了LMS内部的一些活动,分析课程质量的结果成为教师通过电子学习加强其教学计划的卓越反馈。 无知,矿业网络服务器日志在电子教育环境中一直是迷人的地区。 我们的目标是在电子学习网络日志指标中找到相互关系的知识。 强型遗传编程(STGP)作为切割用于寻找准确规则诱导的边缘技术用于实现目标。 透露知识可能对教师或院士人有用,以便根据课程活动提高电子学习使用质量的策略来重新排列策略。

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