基于多层感知机与随机森林混合模型的学生学习成绩预测与分析

Akagra Jain, Kushagra Shah, P. Chaturvedi, Anuj Tambe
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引用次数: 2

摘要

教育数据研究注重分析、预测和生成准确的结果。全球的每一个教育机构都维护着结局库。这些存储库可以通过数据挖掘暴露出来。本文将多层感知器和决策树放在一起,从知识库中预测学生的成绩,其中MLP(多层感知器)给出了比决策树更精细的结果,然后使用随机森林对成绩进行处理,预测其薄弱部分的主题,并帮助他们提高未来的成绩。该模型有助于教师、学生和家长提前了解学生的预测成绩,并使他们能够采取预防措施。
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Prediction and Analysis of Student Performance using Hybrid Model of Multilayer Perceptron and Random Forest
Educational Data Research lays emphasis on analysis, prediction and generating accurate result. Every educational institute around the globe maintains the denouement repository. These repositories can be lay bared through data mining. In this paper multilayer perceptron and decision tree are set by side to predict the student grades from the repositories in which MLP (Multilayer Perceptron) gave finer and meticulous results compared to decision tree and there after the grades are processed using Random forest to predict the topic of their weak portion and help them to improve their future grades. This model will be helpful for teacher, student and their parents to know in advance about student predicted grade and will enable them to take preventive measure.
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