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Predicting the suitability of IS students’ skills for the recruitment in Saudi Arabian industry

机译:预测IS学生的技能是否适合沙特阿拉伯行业的招聘

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Soft and hard skills have become a challenging issue for Information Systems (IS) graduates and recruiters in Saudi industry. IS students are lacking the skills that are required by Saudi industry. Recruiters, on the other hand, consider the GPA as a major factor for hiring IS candidates. This paper discusses the impacts of self-regulated learning strategies and academic achievements on matching the required skills of Saudi industry. Therefore, it identifies the most required skills of IS jobs in Saudi industry and how the skills of IS students in major Saudi universities can match them. Two questionnaires were distributed, one for recruiters and another for students. First questionnaire is to assess the required IS skills in Saudi industry by recruiters. Second questionnaire is to capture the skills, self-regulated learning (SRL), and academic achievement of IS students. The collected data was used to develop a classification model using Decision Tree, Naïve Bayes, and Nearest Neighbor algorithms to predict the suitability of IS graduates to the Saudi industry. The results show that the Naïve Bayes algorithm performed the best (with accuracy 69% and ROC 0.62). Finally, this paper demonstrated a novel way to predict student skills' suitability for the industry and thereby helping the universities to design better curriculum and the students to prepare better for the job market.
机译:对于沙特工业的信息系统(IS)毕业生和招聘人员来说,软硬技能已成为一个具有挑战性的问题。 IS学生缺乏沙特工业所需的技能。另一方面,招聘人员认为GPA是雇用IS候选人的主要因素。本文讨论了自我调节的学习策略和学业成就对匹配沙特工业所需技能的影响。因此,它确定了沙特阿拉伯行业IS工作最需要的技能,以及沙特主要大学IS学生的技能如何与他们匹配。分发了两份调查表,一份用于招聘人员,另一份用于学生。第一份调查问卷旨在评估招聘人员在沙特阿拉伯行业所需的信息系统技能。第二份问卷是为了捕获IS学生的技能,自我调节学习(SRL)和学习成绩。收集的数据用于使用决策树,朴素贝叶斯和最近邻算法开发分类模型,以预测IS毕业生对沙特行业的适合性。结果表明,朴素贝叶斯算法表现最好(准确度为69%,ROC为0.62)。最后,本文演示了一种预测学生技能对行业适用性的新颖方法,从而帮助大学设计更好的课程,并帮助学生为就业市场做更好的准备。

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