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Context-Centric Target Localization with Optimal Anchor Deployments

机译:具有最佳锚点部署的以上下文为中心的目标本地化

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Localization proves to be a promising application of wireless sensor networks. Although a considerable number of algorithms have been designed for low-overhead and high-accuracy localization, problems remain to be tackled such as the way to use anchor-deploying. In this paper, we present a mechanism for range-free localization called Enhanced Map Segmentation (EMS) to deploy and segment the map where precise indoor localization is required. Despite the limits of environmental noise, sensing irregularity, received signal strength (RSS) variation and other unavoidable factors, EMS can be reliable by improving the quality of map segmentation. This paper will present and analyze the enhancing method by a series of simulations. In addition, to deal with ambiguous context positions that confounds the localization, this paper ameliorates the segmentation with context conception mentioned in [1] by statistical methods. In fact, a well-organized deployment and a context-based decision mechanism can make such a layer of abstraction more reliable and compatible.
机译:本地化被证明是无线传感器网络的一个有前途的应用。尽管已经为低开销和高精度定位设计了很多算法,但是仍然存在诸如使用锚定部署的方式等问题需要解决。在本文中,我们提出了一种称为增强地图分割(EMS)的无范围定位机制,可以在需要精确的室内定位的情况下部署和分割地图。尽管存在环境噪声,感应不规则,接收信号强度(RSS)变化和其他不可避免因素的限制,但EMS可以通过提高地图分割质量来提高可靠性。本文将通过一系列仿真来介绍和分析增强方法。另外,为了处理混淆位置的模糊上下文位置,本文通过统计方法改善了[1]中提到的上下文概念的分割。实际上,组织良好的部署和基于上下文的决策机制可以使这种抽象层更加可靠和兼容。

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