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Optimization of Self-Learning in Computer Engineering Courses: An Intelligent Software System Supported by Artificial Neural Network and Vortex Optimization Algorithm

机译:计算机工程课程自学学习的优化:由人工神经网络和涡旋优化算法支持的智能软件系统

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Self-learning process is an important factor that enables learners to improve their own educational experiences when they are away of face-to-face interactions with the teacher. A well-designed self-learning activity process supports both learners and teachers to achieve educational objectives rapidly. Because of this, there has always been a remarkable trend on developing alternative self-learning approaches. In this context, this study is based on two essential objectives. Firstly, it aims to introduce an intelligent software system, which optimizes and improves computer engineering students' self-learning processes. Secondly, it aims to improve computer engineering students' self-learning during the courses. As general, the software system introduced here evaluates students' intelligence levels according to the Theory of Multiple Intelligences and supports their learning via accurately chosen materials provided over the software interface. The evaluation mechanism of the system is based on a hybrid Artificial Intelligence approach formed by an Artificial Neural Network, and an optimization algorithm called as Vortex Optimization Algorithm (VOA). The system is usable for especially technical courses taught at computer engineering departments of universities and makes it easier to teach abstract subjects. For having idea about success of the system, it has been tested with students and positive results on optimizing and improving self-learning have been obtained. Additionally, also a technical evaluation has been done previously, in order to see if the VOA is a good choice to be used in the system. It can be said that the whole obtained results encourage the authors to continue to future works. (C) 2017 Wiley Periodicals, Inc.
机译:自主学习过程是一个重要的因素,它使学习者在与老师面对面的互动时能够改善自己的教育体验。精心设计的自学活动过程可支持学习者和教师快速实现教育目标。因此,在开发替代性自学方法方面一直存在着显着的趋势。在这种情况下,本研究基于两个基本目标。首先,它旨在引入一种智能软件系统,该系统可以优化和改进计算机工程专业学生的自学过程。其次,它旨在提高计算机工程专业学生的自学能力。通常,此处介绍的软件系统会根据多元智能理论评估学生的智力水平,并通过软件界面上提供的准确选择的材料来支持他们的学习。该系统的评估机制基于由人工神经网络形成的混合人工智能方法以及称为涡旋优化算法(VOA)的优化算法。该系统可用于大学计算机工程系教授的特别技术课程,并且使教授抽象科目变得更加容易。为了对系统的成功有所了解,该系统已通过学生测试,并获得了优化和改进自学的积极成果。另外,之前也已经进行了技术评估,以查看VOA是否是在系统中使用的不错选择。可以说,整体取得的成果鼓励作者继续从事未来的工作。 (C)2017威利期刊公司

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