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Environmental Spatio-temporal Ontology for the Linked Open Data Cloud

机译:链接开放数据云的环境时空本体

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摘要

The rapid access of sensor technology provides both challenges and opportunities to authenticated spatiotemporal data. Authentication can be assured by developing related ontologies. Ontology explicitly specifies shared conceptualization and formal vocabularies. In this paper, we proposed an environmental spatio-temporal ontology (ESTO) using unified resource description framework (RDF) and Intelligent Environmental Knowledgebase (i-EKbase) recommendation system. Five different environmental data sources namely SILO, AWAP, ASRIS, CosmOz, and MODIS were considered to develop i-EKbase where knowledge was integrated. The recommendation system was founded on web based large scale dynamic data mining, contextual knowledge extraction, and integrated knowledge representation. The proposed ESTO was tested for optimization of the accessibility and usability issues related to big data sets and minimize the overall application costs. RDF representation made this ontology very flexible to publish on Linked Open Data Cloud environment.
机译:传感器技术的快速访问为经过验证的时空数据提供了挑战和机遇。可以通过开发相关的本体来确保认证。本体明确规定了共享的概念化和形式化词汇。在本文中,我们使用统一资源描述框架(RDF)和智能环境知识库(i-EKbase)推荐系统,提出了一种环境时空本体(ESTO)。考虑了五个不同的环境数据源,即SILO,AWAP,ASRIS,CosmOz和MODIS,以开发集成了知识的i-EKbase。该推荐系统建立在基于Web的大规模动态数据挖掘,上下文知识提取和集成知识表示的基础上。已对提议的ESTO进行了测试,以优化与大数据集有关的可访问性和可用性问题,并将总应用程序成本降至最低。 RDF表示使该本体非常灵活,可以在链接开放数据云环境中发布。

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