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Communities and Emerging Semantics in Semantic Link Network: Discovery and Learning

机译:语义链接网络中的社区和新兴语义:发现和学习

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摘要

The World Wide Web provides plentiful contents for Web-based learning, but its hyperlink-based architecture connects Web resources for browsing freely rather than for effective learning. To support effective learning, an e-learning system should be able to discover and make use of the semantic communities and the emerging semantic relations in a dynamic complex network of learning resources. Previous graph-based community discovery approaches are limited in ability to discover semantic communities. This paper first suggests the semantic link network (SLN), a loosely coupled semantic data model that can semantically link resources and derive out implicit semantic links according to a set of relational reasoning rules. By studying the intrinsic relationship between semantic communities and the semantic space of SLN, approaches to discovering reasoning-constraint, rule-constraint, and classification-constraint semantic communities are proposed. Further, the approaches, principles, and strategies for discovering emerging semantics in dynamic SLNs are studied. The basic laws of the semantic link network motion are revealed for the first time. An e-learning environment incorporating the proposed approaches, principles, and strategies to support effective discovery and learning is suggested.
机译:万维网为基于Web的学习提供了丰富的内容,但是其基于超链接的体系结构连接了Web资源以自由浏览而不是有效学习。为了支持有效的学习,电子学习系统应该能够发现并利用动态复杂的学习资源网络中的语义社区和新兴的语义关系。以前的基于图的社区发现方法发现语义社区的能力有限。本文首先提出了语义链接网络(SLN),它是一种松散耦合的语义数据模型,可以根据一组关系推理规则进行语义链接资源并派生出隐式语义链接。通过研究语义社区与SLN语义空间之间的内在联系,提出了发现推理约束,规则约束和分类约束语义社区的方法。此外,研究了在动态SLN中发现新兴语义的方法,原理和策略。首次揭示了语义链接网络运动的基本规律。建议建立一个包含建议的方法,原理和策略的电子学习环境,以支持有效的发现和学习。

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