主情境模型和本体:普适交通服务的组合方法

Deirdre Lee, R. Meier
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引用次数: 36

摘要

先进的普惠性交通服务旨在提高公共和私人交通设施的安全性和效率,同时降低运营成本,改善司机、乘客和其他旅行者的出行体验。为了实现这些目标,这些服务需要访问来自无数分布式、异构智能交通系统的上下文信息。以标准方式对信息建模的上下文管理方案对于支持各个系统之间的信息共享和更高级的信息推理至关重要。本文提出了一种基于本体的空间上下文模型,该模型采用一种组合方法对普世性交通服务使用的上下文信息进行建模:主上下文模型促进了独立智能交通系统之间的互操作,而主上下文本体使普世性交通服务能够推断共享的上下文信息并做出相应的反应。独立定义的分布式信息根据其主要上下文(位置、时间、身份和服务质量)进行关联。通过对智能车位定位服务的停车场系统建模,对主上下文模型和本体进行了评价
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Primary-Context Model and Ontology: A Combined Approach for Pervasive Transportation Services
Advanced pervasive transportation services aim to improve the safety and efficiency of public and private transportation facilities, while reducing operating costs and improving the travel experience for drivers, passengers and other travellers. In order to achieve these goals, such services require access to context information from a myriad of distributed, heterogeneous intelligent transportation systems. A context management scheme that models information in a standard fashion is essential to support information sharing between individual systems, and higher-level information reasoning. This paper presents an ontology-based spatial context model, which takes a combined approach to modelling context information utilised by pervasive transportation services: the primary-context model facilitates interoperation across independent intelligent transportation systems, whereas the primary-context ontology enables pervasive transportation services to reason about shared context information and to react accordingly. The independently defined, distributed information is correlated based on its primary-context: location, time, identity, and quality of service. The primary-context model and ontology have been evaluated by modelling a car park system for a smart parking space locator service
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