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An algorithmic strategy for in-network distributed spatial analysis in wireless sensor networks

机译:无线传感器网络中网络内分布式空间分析的算法策略

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A wireless sensor network (WSN) can be construed as an intelligent, largely autonomous, instrument for scientific observation at fine temporal and spatial granularities and over large areas. The ability to perform spatial analyses over sensor data has often been highlighted as desirable in areas such as environmental monitoring. Whilst there exists research on computing topological changes of dynamic phenomena, existing proposals do not allow for more expressive in-network spatial analysis. This paper addresses the challenges involved in using WSNs to identify, track and report topological relationships between dynamic, transient spatial phenomena and permanent application-specific geometries focusing on cases where the geometries involved can be characterized by sets of nodes embedded in a finite 2-dimensional space. The approach taken is algebraic, i.e., analyses are expressed as algebraic expressions that compose primitive operations (such as Adjacent, or Arealnside). The main contributions are distributed algorithms for the operations in the proposed algebra and an empirical evaluation of their performance in terms of bit complexity, response time, and energy consumption.
机译:无线传感器网络(WSN)可以解释为一种智能的,高度自治的仪器,用于在精细的时间和空间粒度以及大范围内进行科学观测。对传感器数据执行空间分析的能力通常在环境监测等领域中被强调为理想的。尽管已经有关于计算动态现象的拓扑变化的研究,但是现有的提议不允许进行更具表现力的网络内空间分析。本文解决了使用WSN来识别,跟踪和报告动态,瞬态空间现象与永久性特定于应用程序的几何之间的拓扑关系时所面临的挑战,着重研究了可以通过嵌入有限二维空间中的节点集来表征所涉及的几何的情况空间。所采用的方法是代数的,即,分析表示为组成原始运算(例如,相邻或AreaInside)的代数表达式。主要贡献是针对所提出的代数中的运算进行分布式算法,并根据位复杂度,响应时间和能耗对它们的性能进行了经验评估。

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