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Enhancement of Trajectory Ontology Inference Over Domain and Temporal Rules

机译:增强轨迹本体推论域和时间规则

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Capture devices rise large scale trajectory data from moving objects. These devices use different technologies like global navigation satellite system (GNSS), wireless communication, radio-frequency identification (RFID), and other sensors. Huge trajectory data are available today. In this paper, we use an ontological data modeling approach to build a trajectory ontology from such large data. This ontology contains temporal concepts, so we map it to a temporal ontology. We present an implementation framework for declarative and imperative parts of ontology rules in a semantic data store. An inference mechanism is computed over these semantic data. The computational time and memory of the inference increases very rapidly as a function of the data size. For this reason, we propose a two-tier inference filters on data. The primary filter analyzes the trajectory data considering all the possible domain constraints. The analyzed data are considered as the first knowledge base. The secondary filter then computes the inference over the filtered trajectory data and yields to the final knowledge base, that the user can query.
机译:捕获设备从移动对象上升大规模轨迹数据。这些设备使用不同的技术,如全球导航卫星系统(GNSS),无线通信,射频识别(RFID)和其他传感器。巨大的轨迹数据今天可用。在本文中,我们使用本体论数据建模方法从这些大数据构建轨迹本体。此本体论包含时间概念,因此我们将其映射到时间本体。我们在语义数据存储中为本体规则的声明性和命令部分提供了一个实施框架。在这些语义数据上计算推断机制。推理的计算时间和存储器随数据大小的函数而迅速增加。因此,我们提出了一个关于数据的双层推理过滤器。主滤波器考虑所有可能的域约束,分析轨迹数据。分析的数据被视为第一个知识库。然后,辅助滤波器通过滤波的轨迹数据计算推断并产生最终知识库,用户可以查询。

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