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Differential Forms for Target Tracking and Aggregate Queries in Distributed Networks

机译:分布式网络中目标跟踪和汇总查询的差异形式

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Consider mobile targets in a plane and their movements being monitored by a network such as a field of sensors. We develop distributed algorithms for in-network tracking and range queries for aggregated data (for example, returning the number of targets within any user given region). Our scheme stores the target detection information locally in the network and answers a query by examining the perimeter of the given range. The cost of updating data about mobile targets is proportional to the target displacement. The key insight is to maintain in the sensor network a function with respect to the target detection data on the graph edges that is a differential form such that the integral of this form along any closed curve C gives the integral within the region bounded by C. The differential form has great flexibility, making it appropriate for tracking mobile targets. The basic range query can be used to find a nearby target or any given identifiable target with cost O(d), where d is the distance to the target in question. Dynamic insertion, deletion, coverage holes, and mobility of sensor nodes can be handled with only local operations, making the scheme suitable for a highly dynamic network. It is extremely robust and capable of tolerating errors in sensing and target localization. Targets do not need to be identified for the tracking, thus user privacy can be preserved. In this paper, we only elaborate the advantages of differential forms in tracking of mobile targets. Similar routines can be applied for organizing many other types of information-for example, streaming scalar sensor data (such as temperature data field)-to support efficient range queries. We demonstrate through analysis and simulations that this scheme compares favorably to existing schemes that use location services for answering aggregate range queries of target detection data.
机译:考虑飞机中的移动目标,并通过诸如传感器领域之类的网络监视其移动。我们开发了用于网络内跟踪和范围查询聚合数据的分布式算法(例如,返回任何给定用户区域内的目标数量)。我们的方案将目标检测信息本地存储在网络中,并通过检查给定范围的周长来回答查询。更新有关移动目标的数据的成本与目标位移成正比。关键的见解是在传感器网络中相对于图边缘上的目标检测数据保持一种微分形式的功能,以使该形式沿任何闭合曲线C的积分都能在以C为边界的区域内提供积分。差异形式具有很大的灵活性,使其适合跟踪移动目标。基本范围查询可用于查找附近目标或成本为O(d)的任何给定可识别目标,其中d是到相关目标的距离。传感器节点的动态插入,删除,覆盖漏洞和移动性只能通过本地操作来处理,从而使该方案适用于高度动态的网络。它具有极强的鲁棒性,并能够承受感测和目标定位中的错误。跟踪不需要识别目标,因此可以保护用户隐私。在本文中,我们仅阐述差分形式在移动目标跟踪中的优势。可以将类似的例程用于组织许多其他类型的信息(例如,流式标量传感器数据(例如温度数据字段))以支持有效的范围查询。通过分析和仿真,我们证明了该方案与使用定位服务来回答目标检测数据的集合范围查询的现有方案相比具有优势。

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