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AMI: Augmented Michelson Interferometer

机译:AMI:增强型迈克尔逊干涉仪

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摘要

Experiments in optics are essential for learning and understanding physical phenomena. The problem with these experiments is that they are generally time consuming for both their construction and their maintenance, potentially dangerous through the use of laser sources, and often expensive due to high technology optical components. We propose to simulate such experiments by way of hybrid systems that exploit both spatial augmented reality and tangible interaction. In particular, we focus on one of the most popular optical experiments: the Michelson interferometer. In our approach, we target a highly interactive system where students are able to interact in real time with the Augmented Michelson Interferometer (AMI) to observe, test hypotheses and then to enhance their comprehension. Compared to a fully digital simulation, we are investigating an approach that benefits from both physical and virtual elements, and where the students experiment by manipulating 3D-printed physical replicas of optical components (e.g. lenses and mirrors). Our objective is twofold. First, we want to ensure that the students will learn with our simulator the same concepts and skills that they learn with traditional methods. Second, we hypothesis that such a system opens new opportunities to teach optics in a way that was not possible before, by manipulating concepts beyond the limits of observable physical phenomena. To reach this goal, we have built a complementary team composed of experts in the field of optics, human-computer interaction, computer graphics, sensors and actuators, and education science.
机译:光学实验对于学习和理解物理现象至关重要。这些实验的问题在于,它们的构造和维护通常很耗时,通过使用激光源可能会带来危险,并且由于高科技的光学组件而往往很昂贵。我们建议通过利用空间增强现实和有形交互的混合系统来模拟此类实验。特别是,我们专注于最受欢迎的光学实验之一:迈克尔逊干涉仪。在我们的方法中,我们针对的是高度互动的系统,在该系统中,学生能够与增强型迈克尔逊干涉仪(AMI)进行实时交互,以观察,检验假设并增强他们的理解力。与全数字仿真相比,我们正在研究一种既受益于物理元素又受益于虚拟元素的方法,并且学生可以通过操纵3D打印的光学组件(例如镜头和镜子)的物理副本进行实验。我们的目标是双重的。首先,我们要确保学生将使用我们的模拟器学习与传统方法学到的相同的概念和技能。其次,我们假设这样的系统通过操纵超出可观察到的物理现象限制的概念,以前所未有的方式为光学教学提供了新的机会。为了实现这一目标,我们建立了一个由光学,人机交互,计算机图形学,传感器和执行器以及教育科学领域的专家组成的互补团队。

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