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A Customized Flocking Algorithm for Swarms of Sensors Tracking a Swarm of Targets

机译:一种针对成群的传感器跟踪大量目标的定制植绒算法

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摘要

Wireless mobile sensor networks (WMSNs) are groups of mobile sensing agents with multi-modal sensing capabilities that communicate over wireless networks. WMSNs have more flexibility in terms of deployment and exploration abilities over static sensor networks. Sensor networks have a wide range of applications in security and surveillance systems, environmental monitoring, data gathering for network-centric healthcare systems, monitoring seismic activities and atmospheric events, tracking traffic congestion and air pollution levels, localization of autonomous vehicles in intelligent transportation systems, and detecting failures of sensing, storage, and switching components of smart grids. The above applications require target tracking for processes and events of interest occurring in an environment. Various methods and approaches have been proposed in order to track one or more targets in a pre-defined area. Usually, this turns out to be a complicated job involving higher order mathematics coupled with artificial intelligence due to the dynamic nature of the targets. To optimize the resources we need to have an approach that works in a more straightforward manner while resulting in fairly satisfactory data. In this paper we have discussed the various cases that might arise while flocking a group of sensors to track targets in a given environment. The approach has been developed from scratch although some basic assumptions have been made keeping in mind some previous theories. This paper outlines a customized approach for feasibly tracking swarms of targets in a specific area so as to minimize the resources and optimize tracking efficiency
机译:无线移动传感器网络(WMSN)是具有通过无线网络进行通信的多模式传感功能的一组移动传感代理。 WMSN在静态传感器网络上的部署和探索能力方面具有更大的灵活性。传感器网络在安全和监视系统,环境监视,以网络为中心的医疗系统的数据收集,监视地震活动和大气事件,跟踪交通拥堵和空气污染水平,智能交通系统中自动驾驶汽车的定位,以及检测智能电网的感测,存储和切换组件的故障。上面的应用程序需要对环境中发生的感兴趣的过程和事件进行目标跟踪。为了跟踪预定区域中的一个或多个目标,已经提出了各种方法和方法。通常,由于目标的动态性质,结果证明这是一项涉及高阶数学和人工智能的复杂工作。为了优化资源,我们需要一种方法,以更简单的方式工作,同时获得相当令人满意的数据。在本文中,我们讨论了在给定环境中聚集一组传感器以跟踪目标时可能发生的各种情况。尽管已经做出一些基本假设并牢记了一些先前的理论,但是该方法是从零开始开发的。本文概述了一种可定制的方法,用于在特定区域中可行地跟踪大量目标,从而最大程度地减少资源并优化跟踪效率

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