基于移动学习应用的遗传算法学生学习成绩分析

Cemei Li, Mohd Nazri Abdul Rahman, Xin Zhang
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引用次数: 0

摘要

由于移动技术在教育过程中的重要作用,一些学者已经开始关注这一领域,从而产生了大量的学术成果。本研究的主要目的是调查移动学习对学生学业成绩的影响。本研究采用了元分析方法。我们使用多个数据库对现有研究进行了审查,以找到调查范围内的相关研究。研究的纳入标准和组成部分是在文献综述后实施的。本研究提出了一种基于遗传算法的移动教育系统方法,以解决当前系统存在的问题。分析结果表明,大多数人的工资都维持在 10%左右。只有在教学人员众多的情况下,工资才会略有增加,但也在一个正常、适当的范围内,可以适应更复杂的任务。根据因素分析结果,移动教育设备对学生学习成绩的影响因课程和学科而异。不过,无论学生的教育水平和实施时间长短,其影响都保持不变。除了前面提到的研究结果外,本文还对参与元分析的研究进行了描述性分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Analysis of Student's Academic Achievement in Genetic Algorithms Based on Mobile Learning Applications
Several scholars have focused on this area due to the significance of mobile technology in the educational process, resulting in a substantial body of scholarly work. The primary objective of this study is to investigate the impact of mobile learning on students’ academic performance. The meta-analysis approach was utilized in this research. The available research was examined using several databases to find the relevant studies that were within the scope of the investigation. The study’s inclusion criteria and components were implemented following a literature review. This research proposes a mobile education system approach based on genetic algorithms to address the issues with the current system. The analysis findings indicate that most of them stay at around 10%. The salary only slightly increases when numerous individuals teach, but it also falls within a regular, appropriate range that can accommodate more complex tasks. According to the factor analysis findings, the influence of mobile educational devices on students’ learning performance varied depending on the course and subject. However, it remained constant regardless of the students’ education level and implementation duration. Apart from the previously mentioned research findings, this article also includes a descriptive analysis of the studies that were part of the meta-analysis.
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