爆发:无线传感器网络的节能可靠来源树

S. Alam, David K. Y. Yau, S. Fahmy
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引用次数: 7

摘要

传感器节点本身就不可靠,容易出现硬件或软件故障。因此,他们可能会报告不可信或不一致的数据。评估传感器数据项的可信度可以实现对物理现象的可靠感知或监测。基于来源的信任框架可以根据直觉来评估数据项和传感器节点的可信度,即两个数据值相似但来源(即转发路径)不同的数据项可以被认为更可信。由冗余部署的传感器生成的数据项的转发路径应该由可信节点组成,并且保持不相似。不幸的是,操作许多不同路径的传感器会消耗大量的能量。在本文中,我们制定了一个优化问题,以确定一组传感器节点及其通往基站的路径,这些节点达到一定的可信阈值,同时保持网络的能量消耗最小。我们证明了这个问题的np -硬度,并提出了一个模拟退火解。试验台和仿真结果表明,与现有方法相比,该方法具有较高的可信度,同时总能耗降低32-50%。
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ERUPT: Energy-efficient trustworthy provenance trees for wireless sensor networks
Sensor nodes are inherently unreliable and prone to hardware or software faults. Thus, they may report untrustworthy or inconsistent data. Assessing the trustworthiness of sensor data items can allow reliable sensing or monitoring of physical phenomena. A provenance-based trust framework can evaluate the trustworthiness of data items and sensor nodes based on the intuition that two data items with similar data values but with different provenance (i.e., forwarding path) can be considered more trustworthy. Forwarding paths of data items generated from redundantly deployed sensors should consist of trustworthy nodes and remain dissimilar. Unfortunately, operating many sensors with dissimilar paths consumes significant energy. In this paper, we formulate an optimization problem to identify a set of sensor nodes and their corresponding paths toward the base station that achieve a certain trustworthiness threshold, while keeping the energy consumption of the network minimal. We prove the NP-hardness of this problem and propose ERUPT, a simulated annealing solution. Testbed and simulation results show that ERUPT achieves high trustworthiness, while reducing total energy consumption by 32-50% with respect to current approaches.
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