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Semantic Enrichment of Twitter News for Differentiated STEAM Education

机译:Twitter新闻的语义丰富性,用于差异化STEAM教育

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Recently, STEAM education is attracting much attention as a new educational method. In the STEAM education lesson, the latest science/technology materials are usually used to arouse or increase the learner's interest. Twitter is one of the most effective mediums for learners to easily access such materials. A large amount of news is generated every second on Twitter and disseminated quickly to the public. However, such news is not appropriate for learning because it does not take into account various levels of learners or relevance to the class subjects. In this paper, to solve these problems, we propose a semantic enrichment scheme for the latest science/technology Twitter news for differentiated STEAM education lessons. Our proposed scheme enables the learners to browse news of desired topics and their relevant materials, even filtered by the user level.
机译:近年来,STEAM教育作为一种新的教育方法受到了广泛的关注。在STEAM教育课中,通常使用最新的科学/技术材料来激发或增加学习者的兴趣。 Twitter是学习者轻松访问此类材料的最有效媒介之一。 Twitter上每秒产生大量新闻,并迅速向公众传播。但是,此类新闻不适合学习,因为它没有考虑学习者的不同水平或与课程主题的相关性。在本文中,为解决这些问题,我们针对最新的科技Twitter新闻提出了一种语义丰富方案,以用于差异化STEAM教育课程。我们提出的方案使学习者可以浏览所需主题的新闻及其相关材料,甚至可以按用户级别进行过滤。

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