An integrative review of computational methods for vocational curriculum, apprenticeship, labor market, and enrollment problems

A. Dardiri, F. Dwiyanto, Agung Bella Putra Utama
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引用次数: 5

Abstract

Computational methods have been used extensively to solve problems in the education sector. This paper aims to explore the computational method's recent implementation in solving global Vocational education and training (VET) problems. The study used a systematic literature review to answer specific research questions by identifying, assessing, and interpreting all available research shreds of evidence. The result shows that researchers use the computational method to predict various cases in VET. The most popular methods are ANN and Naive Bayes. It has significant potential to develop because VET has a very complex problem of (a) curriculum, (b) apprenticeship, (c) matching labor market, and (d) attracting enrollment. In the future, academics may have broad overviews of the use of the computational method in VET. A computer scientist may use this study to find more efficient and intelligent solutions for VET issues.
对职业课程、学徒制、劳动力市场和招生问题计算方法的综合回顾
计算方法已被广泛用于解决教育领域的问题。本文旨在探讨计算方法在解决全球职业教育与培训(VET)问题中的最新实施。该研究采用了系统的文献综述,通过识别、评估和解释所有可用的研究证据碎片来回答具体的研究问题。结果表明,研究人员使用计算方法预测了VET的各种病例。最流行的方法是人工神经网络和朴素贝叶斯。它具有巨大的发展潜力,因为VET有一个非常复杂的问题:(a)课程,(b)学徒制,(c)匹配劳动力市场,(d)吸引入学。在未来,学者们可能会对计算方法在VET中的应用有更广泛的概述。计算机科学家可以利用这项研究为VET问题找到更有效、更智能的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Advances in Intelligent Informatics
International Journal of Advances in Intelligent Informatics Computer Science-Computer Vision and Pattern Recognition
CiteScore
3.00
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