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A VISUALIZATION-BASED APPROACH TO ENGINEERING KINEMATICS USING COGNITIVE MODELS

机译:基于认知模型的基于可视化的工程运动学方法

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Visualization and spatial reasoning are integral to developing an understanding of contemporary sciences. They form the basis for understanding a wide variety of topics across science, mathematics and engineering, including molecular structures, topologies, motion and forces, and manufacturing processes. Within engineering, it can be argued that challenging and time consuming topics such as kinematics can be better taught by faculty, and hence better understood and appreciated by students, by advancing our understanding of human visualization and spatial reasoning and using this knowledge to develop computer-based visualization instruction in ways that maximize their effectiveness. The achievement of such a goal will require importing proven extant theories from other fields such as psychology, education, engineering and computer science. This paper presents the results of one such effort for teaching engineering kinematics. The motivation for this work can be found in cognitive science literature, where motion comprehension has been identified and studied as a mental task. Accordingly, a major task in doing this work involved the study of cognitive models of motion comprehension, and identifying key stages present in them. Mapping such key stages in motion comprehension on to kinematics domain, this paper presents the framework for the visual comprehension based pedagogical approach to kinematics. A web-based gear-trains tutor has been developed to demonstrate this concept. Results from the tests on a controlled population of engineering students are presented and the efficacy of a visual comprehension based approach as an instructional tool is discussed.
机译:可视化和空间推理是发展对当代科学的理解所不可或缺的。它们构成了理解科学,数学和工程学等众多主题的基础,包括分子结构,拓扑,运动和力以及制造过程。在工程学领域,可以说,通过提高我们对人类可视化和空间推理的理解,并利用这些知识来开发计算机,可以更好地由教师教授运动学等具有挑战性和耗时的主题,从而使学生更好地理解和赞赏。基于可视化的说明,以最大化其有效性。要实现这一目标,就需要从心理学,教育,工程学和计算机科学等其他领域引入经过验证的现存理论。本文介绍了一种用于工程运动学教学的成果。这项工作的动机可以在认知科学文献中找到,其中运动理解已被识别并作为一项精神任务进行研究。因此,从事这项工作的主要任务涉及运动理解认知模型的研究,并确定其中存在的关键阶段。将运动理解中的这些关键阶段映射到运动学领域,本文提出了基于视觉理解的运动学教学方法的框架。已经开发了基于Web的齿轮传动导师来演示此概念。给出了对受控工科学生的测试结果,并讨论了基于视觉理解的方法作为教学工具的功效。

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