真实世界学习领域空间特征的多模态分析

Masaya Okada, Masahiro Tada
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引用次数: 3

摘要

现实世界的学习很重要,因为它鼓励学习者通过各种经验获得知识。为了提高学习效果,有必要对现实学习中发生的各种学习活动进行分析,并制定可行的学习支持策略。我们的观点是,一个真实的学习领域是促进多样化学习互动的关键。利用多模态感知和知识外化技术,我们提出了一种方法来捕捉现实世界学习的时间序列,并分析学习领域的空间特征,从而得出不同的智力相互作用。我们的数据分析发现,学习领域的每个区域都会产生不同的现实学习。分析还表明,现实世界的知识无处不在,但分布不均。我们的方法有助于发现对学习支持有用的知识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multimodal Analysis of Spatial Characteristics of a Real-world Learning Field
Real-world learning is important because it encourages learners to obtain knowledge through various experiences. To increase the learning effects, it is necessary to analyze the diverse learning activities that occur in real-world learning and to develop workable strategies for learning support. Our viewpoint is that a real-world learning field is the key to promoting diverse learning interactions. Using the technologies of multimodal sensing and knowledge externalization, we propose a method to capture the time-series occurrence of real-world learning and to analyze the spatial characteristics of a learning field that draws out diverse intellectual interactions. Our data analysis found that each region in a learning field draws out different real-world learning. The analysis also showed that real-world knowledge is ubiquitously but unevenly distributed. Our method contributes toward discovering knowledge useful for learning support.
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