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Market-Based Resource Allocation for Distributed Data Processing in Wireless Sensor Networks

机译:无线传感器网络中基于市场的资源分配用于分布式数据处理

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摘要

In recent years, improved wireless technologies have enabled the low-cost deployment of large numbers of sensors for a wide range of monitoring applications. Because of the computational resources (processing capability, storage capacity, etc.) collocated with each sensor in a wireless network, it is often possible to perform advanced data analysis tasks autonomously and in-network, eliminating the need for the post-processing of sensor data. With new parallel algorithms being developed for in-network computation, it has become necessary to create a framework in which all of a wireless network's scarce resources (CPU time, wireless bandwidth, storage capacity, battery power, etc.) can be best utilized in the midst of competing computational requirements. In this study, a market-based method is developed to autonomously distribute these scarce network resources across various computational tasks with competing objectives and/or resource demands. This method is experimentally validated on a network of wireless sensing prototypes, where it is shown to be capable of Pareto-optimally allocating scarce network resources. Then, it is applied to the real-world problem of rupture detection in shipboard chilled water systems.
机译:近年来,改进的无线技术已使低成本的大量传感器可以部署到各种监视应用程序中。由于无线网络中与每个传感器并置的计算资源(处理能力,存储容量等),通常可以自主地和在网络中执行高级数据分析任务,从而无需对传感器进行后处理数据。随着开发用于网络内计算的新并行算法,已经有必要创建一个框架,在其中最好地利用无线网络的所有稀缺资源(CPU时间,无线带宽,存储容量,电池电量等)。竞争中的计算需求。在这项研究中,开发了一种基于市场的方法来自动将这些稀缺的网络资源分配给具有竞争目标和/或资源需求的各种计算任务。该方法已在无线传感原型网络上进行了实验验证,该方法被证明能够对帕累托最优地分配稀缺的网络资源。然后,将其应用于船用冷冻水系统中破裂检测的实际问题。

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