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Helios: a tangible and augmented environment to learn optical phenomena in astronomy

机译:Helios:一个有形的增强环境,用于学习天文学中的光学现象

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France is among the few countries that have integrated astronomy in primary school levels. However, for fifteen years, a lot of studies have shown that children have difficulties in understanding elementary astronomic phenomena such as dayight alternation, seasons or moon phases' evolution. To understand these phenomena, learners have to mentally construct 3D perceptions of aster motions and to understand how light propagates from an allocentric point of view. Therefore, 4-5 grades children (8 to 11 years old), who are developing their spatial cognition, have many difficulties to assimilate geometric optical problems that are linked to astronomy. To make astronomical learning more efficient for young pupils, we have designed an Augmented Inquiry-Based Learning Environment (AIBLE): HELIOS. Because manipulations in astronomy are intrinsically not possible, we propose to manipulate the underlying model. With HELIOS, virtual replicas of the Sun, Moon and Earth are directly manipulated from tangible manipulations. This digital support combines the possibilities of Augmented Reality (AR) while maintaining intuitive interactions following the principles of didactic of sciences. Light properties are taken into account and shadows of Earth and Moon are directly produced by an omnidirectional light source associated to the virtual Sun. This AR environment provides users with experiences they would otherwise not be able to experiment in the physical world. Our main goal is that students can take active control of their learning, express and support their ideas, make predictions and hypotheses, and test them by conducting investigations.
机译:法国是将天文学纳入小学水平的少数几个国家之一。然而,十五年来,许多研究表明,儿童很难理解基本的天文学现象,例如昼夜交替,季节或月相的演变。为了理解这些现象,学习者必须在心理上构建对星体运动的3D感知,并从等心轴的角度理解光的传播方式。因此,正在发展其空间认知能力的4-5岁的儿童(8至11岁)在吸收与天文学有关的几何光学问题方面有许多困难。为了使天文学习对年轻学生更有效,我们设计了一种基于查询的增强学习环境(AIBLE):HELIOS。由于天文学中的操作本质上是不可能的,因此我们建议对基础模型进行操作。借助HELIOS,可以直接从有形操纵中操纵太阳,月亮和地球的虚拟副本。这种数字支持结合了增强现实(AR)的可能性,同时保持了遵循科学教学原则的直观交互。考虑到光照特性,并且由与虚拟太阳关联的全向光源直接生成了地球和月球的阴影。这种AR环境为用户提供了他们原本无法在物理世界中进行实验的体验。我们的主要目标是使学生能够主动控制自己的学习,表达和支持他们的想法,做出预测和假设,并通过调查进行检验。

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