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Dropout prediction system to reduce discontinue study rate of information technology students

机译:辍学预测系统可降低信息技术学生的辍学率

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Nowadays, The student dropout is a serious problem which has an impact on education in Thailand. This research is a case study of the students at Thai-Nichi Institute of Technology between first-year and second-year that have a high rate retirement. There are analyze in order to find dropout rate and develop the web application to predict status of the students from their grade of each subjects. The prediction models were developed to use Decision Tree algorithms as well as Random Forest Algorithms to achieve an improvement. The Decision Tree classifier has obtained precision, recall and F1-Measure of 0.80, 0.92 and 0.85, respectively. Results show that overall results of the predictor are satisfactory. The application can recognize dropout students and identify those students who need special attention that is very useful to help the students improving their learning process and to monitor the student performance in a systematic way.
机译:如今,学生辍学是一个严重的问题,已经影响到泰国的教育。这项研究是对泰国日立理工学院一年级和二年级退休率较高的学生进行的案例研究。为了找到辍学率并进行分析,开发了Web应用程序以根据学生的每门学科成绩来预测学生的状态。开发预测模型以使用决策树算法和随机森林算法来实现改进。决策树分类器的精度,召回率和F1-Measure分别为0.80、0.92和0.85。结果表明,预测器的总体结果令人满意。该应用程序可以识别辍学学生,并识别需要特别注意的学生,这对帮助学生改善学习过程并以系统的方式监控学生的表现非常有用。

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