灾区分布式监测传感器网络的数据采集

Yao Zhao, Xin Wang, Jin Zhao, A. Lim
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引用次数: 4

摘要

无线传感器网络监控任务的许多应用程序的目标是提供对特定环境的长期监测,例如受灾地区。这些应用程序通常在没有任何维护的情况下执行连续监控,即使某些传感器节点发生故障。设计此类系统的数据收集方法时面临的一个重大挑战是,由于节点故障导致网络拓扑结构迅速变化,无线传感器网络的传统通信协议将呈现低效率。因此,此类系统中的传感器节点应使用自动传输方法以分布式方式将其感测数据传播到接收器。在本文中,我们提出了一种新的基于编码的概率路由(CPR)来解决受灾地区分布式监控传感器网络的数据收集问题。该算法能够动态适应节点故障,在任意给定时间内收集最多的数据,并选择最优概率路由以减少传输消耗。广泛的仿真结果表明,心肺复苏优于其他策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data collection for distributed surveillance sensor networks in disaster-hit regions
The objective of many applications with the surveillance missions in wireless sensor networks is to provide long-term monitoring of the specific environments, such as disaster-hit regions. These applications usually perform continuous monitoring without any maintenance, even if some sensor nodes fail. A significant challenge when designing the data collection approaches for such systems is that the conventional communication protocols for wireless sensor networks would present low efficiency, since the network topology changes rapidly due to the node failure. Thus the sensor nodes in such systems should use an automatic transmission approach to disseminate their sensed data to the sink in a distributed manner. In this paper, we propose a novel Coding-based Probabilistic Routing (CPR) to address this specific problem of data collection for distributed surveillance sensor networks in disaster-hit regions. CPR dynamically adapts to node failure to collect the maximum data in any given time and chooses an optimal probabilistic routing to decrease the transmission consumption. The extensive simulation results are presented to show that CPR outperforms other strategies.
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