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Comparative study of supervised learning algorithms for student performance prediction

机译:学生绩效预测监督学习算法的比较研究

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With huge amount of data in diverse technological areas, and generating such kinds of data rapidly, it needs for proper usage; therefore, Data Mining has emerged. Data Mining can extract prominent knowledge from customary data that can attract attention of people to it which is meaningful information. Regarding this concept that data can be generated rapidly every day or even every moment, data need to take under process for offering better valuable information. Data of educational areas is more that belongs to students, and it's all right a good basis for commence of applying Data Mining. In this paper the focus is on how to use Data Mining techniques to discover information in student`s raw data and different algorithms such as KNN, Na?ve Bayes, and Decision Tree are implemented.
机译:在不同的技术领域拥有大量数据,并迅速生成这些数据,需要适当的使用;因此,已经出现了数据挖掘。数据挖掘可以从习惯性数据中提取突出知识,这些数据可以吸引人们注意它是有意义的信息。关于这一概念,可以每天甚至每一刻快速生成数据,数据需要在提供更好的有价值信息的过程中进行。教育领域的数据更为属于学生,这是开始应用数据挖掘的好依据。在本文中,重点是如何利用数据挖掘技术来发现学生原始数据和不同算法等信息,如KNN,NA?VE贝叶斯和决策树。

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