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Decentralized Monitoring of Moving Objects in a Transportation Network Augmented with Checkpoints

机译:带有检查点的交通网络中的运动对象的分散监控

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摘要

This paper examines efficient and decentralized monitoring of objects moving in a transportation network. Previous work in moving object monitoring has focused primarily on centralized information systems, like moving object databases and geographic information systems. In contrast, in this paper monitoring is in-network, requiring no centralized control and allowing for substantial spatial constraints to the movement of information. The transportation network is assumed to be augmented with fixed checkpoints that can detect passing mobile objects. This assumption is motivated by many practical applications, from traffic management in vehicle ad hoc networks to habitat monitoring by tracking animal movements. In this context, this paper proposes and evaluates a family of efficient decentralized algorithms for capturing, storing and querying the movements of objects. The algorithms differ in the restrictions they make on the communication and sensing constraints to the mobile nodes and the fixed checkpoints. The performance of the algorithms is evaluated and compared with respect to their scalability (in terms of communication and space complexity), and their latency (the time between when a movement event occurs, and when all interested nodes are updated with records about that event). The conclusions identify three key principles for efficient decentralized monitoring of objects moving past checkpoints: structuring computation around neighboring checkpoints; taking advantage of mobility diffusion and separating the generation and querying of movement information.
机译:本文研究了在运输网络中移动物体的高效分散监控。移动对象监视的先前工作主要集中在集中式信息系统上,例如移动对象数据库和地理信息系统。相反,在本文中,监视是在网络内进行的,不需要集中控制,并且可以对信息的移动进行实质性的空间约束。假定交通网络增加了固定的检查点,可以检测经过的移动物体。这个假设是由许多实际应用推动的,从车辆自组织网络中的流量管理到通过跟踪动物运动进行栖息地监控。在这种情况下,本文提出并评估了一系列有效的分散算法,用于捕获,存储和查询对象的运动。这些算法的不同之处在于它们对与移动节点和固定检查点的通信和感知约束的限制。对算法的性能进行评估,并就其可伸缩性(就通信和空间复杂性而言)及其延迟(发生移动事件以及所有有关该事件的记录更新到所有感兴趣的节点之间的时间)进行比较。 。结论确定了对经过检查点的对象进行高效分散监控的三个关键原则:围绕相邻检查点的结构化计算;充分利用移动性扩散的优势,将运动信息的产生和查询分开。

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