基于本体的语义关联规则挖掘在位置服务中的应用

A. Mousavi, A. Hunter, M. Akbari
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引用次数: 4

摘要

最近,GPS和移动设备可以收集大量的移动数据。来自不同社区的研究人员开发了流动性分析的模型和技术。但它们主要关注轨迹的几何特性,而没有考虑运动物体的语义方面。这些技术很擅长提取模式,但是很难在特定的应用领域中解释它们。本文提出了一种理解机动数据和语义解释轨迹模式的方法。该过程考虑了语义、语义与空间、语义与时间、语义与时空等四种不同的行为类型。最后,开发了一个系统原型,使用一种基于位置的服务来评估不同方面的行为模型。结果表明,应用语义关联规则可以显著减少可用服务的数量,并基于规则定制服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using Ontology Based Semantic Association Rule Mining in Location Based Services
Recently, GPS and mobile devices allowed collecting a huge amount of mobility data. Researchers from different communities have developed models and techniques for mobility analysis. But they mainly focused on the geometric properties of trajectories and do not consider the semantic facet of moving objects. The techniques are good at extracting patterns, but they are hard to interpret in a specific application domain. This paper proposes a methodology to understand mobility data and semantically interpret trajectory patterns. The process considers four different behavior types such as semantic, semantic and space, semantic and time, and semantic and space-time. Finally, a system prototype was developed to evaluate the behavior models in different aspects using one of the location based services. The results showed that applying the semantic association rules could significantly reduce the number of available services and customize the services based on the rules.
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