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RESEARCH ON EARLY WARNING SYSTEM OF COLLEGE STUDENTS’ BEHAVIOR BASED ON BIG DATA ENVIRONMENT

机译:基于大数据环境的大学生行为预警系统研究

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Because most schools have been using traditional methods to manage students, there is a lack of effective monitoring of students' behavioral problems. In order to solve this problem, this paper analyses the characteristics of big data in University campus, adopts K-Means algorithm, a traditional clustering analysis algorithm, and proposes an early warning system of College Students' behavior based on Internet of Things and big data environment under the mainstream Hadoop open source platform. The system excavates and analyses the potential connections in the massive data of these campuses, studies the characteristics of students' behavior, analyses the law of students' behavior, and clusters the categories of students' behavior. It can provide students, colleges, schools and logistics management departments with multi-dimensional behavior analysis and prediction, early warning and safety control of students' behavior, realize the informatization of students' management means, improve the scientific level of students' education management, and promote the construction of intelligent digital campus.
机译:由于大多数学校一直在使用传统方法来管理学生,因此缺乏对学生的行为问题的有效监测。为了解决这个问题,本文分析了大学校园大数据的特点,采用K-Means算法,传统聚类分析算法,提出了基于事物互联网和大数据的大学生行为的预警系统主流Hadoop开源平台下的环境。该系统挖掘和分析了这些校区大规模数据中的潜在联系,研究了学生行为的特征,分析了学生行为的法律,并群集了学生行为的类别。它可以为学生,学院,学校和物流管理部门提供多维行为分析和预测,提前预警和安全控制学生的行为,实现学生管理手段的信息化,提高学生教育管理的科学水平,并促进智能数字校园的建设。

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