Enhancing Learning and Knowledge Retention of Abstract Physics Concepts with Virtual Reality.

IF 6.5
M Akif Akdag, Jean Botev, Steffen Rothkugel
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Abstract

Virtual reality (VR) is increasingly recognized as a powerful tool for science education, offering interactive environments to explore intangible concepts. Traditional teaching methods often struggle to convey abstract concepts in science, where many phenomena are not directly observable. VR can address this issue by modeling and visualizing complex and unobservable entities and processes, allowing learners to dynamically interact with what would otherwise not be directly perceptible. However, relatively few controlled studies have compared immersive VR learning with equivalent hands-on laboratory learning in physics education, particularly for more abstract topics. In this work, we designed a VR-based physics lab that is capable of visualizing electrons and electromagnetic fields to teach fundamental concepts of electronics and magnetism, closely replicating a traditional electronics learning kit used as a baseline for comparison. We evaluated the impact of the two conditions (VR versus traditional) on students' learning outcomes, motivation, engagement, and cognitive load. Our results show significantly higher knowledge retention in the VR group compared to the traditional group. Also, while there were no significant differences in immediate comprehension between the two groups, participants in the VR group spent substantially more time engaged with the learning content. These findings highlight the potential of visually enriched virtual environments to enhance the learning experience and improve knowledge retention of intangible scientific concepts.

利用虚拟现实增强抽象物理概念的学习和知识记忆。
虚拟现实(VR)越来越被认为是科学教育的有力工具,为探索无形概念提供了互动环境。传统的教学方法往往难以传达科学中的抽象概念,因为许多现象是无法直接观察到的。VR可以通过建模和可视化复杂和不可观察的实体和过程来解决这个问题,允许学习者动态地与无法直接感知的事物进行交互。然而,相对较少的对照研究将沉浸式虚拟现实学习与物理教育中同等的动手实验室学习进行了比较,特别是对于更抽象的主题。在这项工作中,我们设计了一个基于vr的物理实验室,能够可视化电子和电磁场,以教授电子学和磁学的基本概念,密切复制传统的电子学学习工具包,用作比较的基线。我们评估了两种条件(虚拟现实与传统)对学生学习成果、动机、参与度和认知负荷的影响。我们的研究结果显示,与传统组相比,VR组的知识保留率明显更高。此外,虽然两组之间的即时理解没有显着差异,但VR组的参与者花在学习内容上的时间要多得多。这些发现强调了视觉丰富的虚拟环境在增强学习体验和提高无形科学概念知识保留方面的潜力。
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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