MapReduce-Based Improved Random Forest Model for Massive Educational Data Processing and Classification

被引:0
作者
Wei Xu
Vinh Truong Hoang
机构
[1] Xi’an University of Finance and Economics,Business School
[2] Ho Chi Minh City Open University,Faculty of Computer Science
来源
Mobile Networks and Applications | 2021年 / 26卷
关键词
Machine learning; Data classification model; Big data processing; MapReduce;
D O I
暂无
中图分类号
学科分类号
摘要
This paper takes education data mining as the research theme, mine the existing massive education big data, compares the analysis methods of existing data models, and proposes an improved random forest reference model. The information gain of various features is calculated by introducing the feature weighting system, and the evaluation index is used to improve the existing data analysis. The simulation results show that the improved model is highly efficient as compared to the existing models for classification. In order to resolve the performance bottleneck of a single node in multiple data classification tasks in the era of big data, a classification and prediction model of graduates’ large-scale employment data, based on distributed improved RF algorithm, is proposed. The MapReduce distributed computing framework is used to complete the serial writing and deserialization loading of the training model between the local disk and the distributed file system, and realizing the distributed expansion of the large-scale data classification model based on the improved RF model.
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页码:191 / 199
页数:8
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