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首页> 外文期刊>RAIRO operations research >EVALUATING THE POTENTIAL TRADE-OFF BETWEEN STUDENTS' SATISFACTION AND SCHOOL PERFORMANCE USING EVOLUTIONARY MULTIOBJECTIVE OPTIMIZATION
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EVALUATING THE POTENTIAL TRADE-OFF BETWEEN STUDENTS' SATISFACTION AND SCHOOL PERFORMANCE USING EVOLUTIONARY MULTIOBJECTIVE OPTIMIZATION

机译:使用进化多目标优化评估学生满意度和学校绩效之间的潜在权衡

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摘要

In this article, we carry out a combined econometric and multiobjective analysis using data from a representative sample of Andalusian schools. In particular, four econometric models are estimated in which the students' academic performance (scores in math and reading, and percentage of students reaching a certain threshold in both subjects, respectively) are regressed against the satisfaction of students with different aspects of the teaching-learning process. From these estimates, four objective functions are defined which have been simultaneously maximized, subject to a set of constraints obtained by analyzing dependencies between explanatory variables. This multiobjective programming model is intended to optimize the students' academic performance as a function of the students' satisfaction. To solve this problem we use a decomposition-based evolutionary multiobjective algorithm called Global WASF-GA with different scalarizing functions which allows generating an approximation of the Pareto optimal front. In general, the results show the importance of promoting respect and closer interaction between students and teachers, as a way to increase the average performance of the students and the proportion of high performance students.
机译:在本文中,我们使用来自安达卢西亚学校代表性样本的数据进行了综合的经济学和多目标分析。特别是,估计四种经济学型号,其中学生的学生表现(数学和阅读中的分数分别在两个受试者中达到某种门槛的学生百分比)是以教学的不同方面的对学生的满意度回归 - 学习过程。根据这些估计,定义了四个客观函数,其被同时最大化,受到通过分析解释变量之间的依赖性而获得的一组约束。这种多目标编程模型旨在优化学生的学术表现,作为学生的满意度。为了解决这个问题,我们使用一种基于分解的进化多目标算法,称为全局WASF-GA,具有不同的标定功能,允许产生帕累托最佳前部的近似值。一般来说,结果表明,促进学生和教师之间互动和更紧密的互动的重要性,作为提高学生平均性能的方式和高性能学生的比例。

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