半滴:新兴语义数据的社会化语义标记方法

Diego Torres, A. Díaz, H. Skaf-Molli, P. Molli
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引用次数: 20

摘要

本文提出了一种针对新兴语义数据的集体智能策略。它提出了一种将社交网络实践与语义网络技术相结合的方法,通过语义数据丰富现有的网络资源。本文介绍了一种称为Semdrops的社会语义标记方法。Semdrops定义了一个概念模型,该模型是Gruber标签模型的扩展,其中标签概念扩展为语义标签。Semdrops是作为Firefox插件工具实现的,它将web浏览器转变为协作语义数据编辑器。为了验证Semdrops的方法,我们进行了评估和可用性研究,并将结果与语义数据的自动生成方法(如DBpedia)进行了比较。研究表明,Semdrops是在Web上生成足够语义数据的一种有效和互补的方法。
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Semdrops: A Social Semantic Tagging Approach for Emerging Semantic Data
This paper proposes a collective intelligence strategy for emerging semantic data. It presents a combination of social web practices with semantic web technologies to enrich existing web resources with semantic data. The paper introduces a social semantic tagging approach called Semdrops. Semdrops defines a conceptual model which is an extension of the Gruber's tag model where the tag concept is extended to semantic tag. Semdrops is implemented as a Firefox add-on tool that turns the web browser into a collaborative semantic data editor. To validate Semdrops's approach, we conducted an evaluation and usability studies and compared the results with automatic generation methods of semantic data such as DBpedia. The studies demonstrated that Semdrops is an effective and complementary approach to produce adequate semantic data on the Web.
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