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Inverting Systems of Embedded Sensors for Position Verification in Location-Aware Applications

机译:用于位置识别应用中位置验证的嵌入式传感器反相系统

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Wireless sensor networks are typically deployed to monitor phenomena that vary over the spatial region the sensor network covers. The sensor readings may also be dual-used for additional purposes. In this paper, we propose to use the inherent spatial variability in physical phenomena, such as temperature or ambient acoustic energy, to support localization and position verification. We first present the problem of localization using general spatial information fields, and then, propose a theory for exploiting this spatial variability for localization. Our Spatial Correlation Weighting Mechanism (SCWM) uses spatial correlation across different phenomena to isolate an appropriate subset of environmental parameters for better location accuracy. We then develop an array of algorithms employing environmental parameters using a two-level approach: first, we develop the strategies on how the subset of parameters should be chosen, and second, we derive mapping functions for position estimation. Our algorithms support our theoretical model for performing localization utilizing environmental properties. Finally, we provide an experimental evaluation of our approach by using a collection of physical phenomena measured across 100 locations inside a building. Our results provide strong evidence of the viability of using general sensor readings for location-aware applications.
机译:通常部署无线传感器网络以监视在传感器网络覆盖的空间区域内变化的现象。传感器读数也可以用于其他目的。在本文中,我们建议在物理现象(例如温度或环境声能)中使用固有的空间变异性,以支持定位和位置验证。我们首先提出了使用一般空间信息场进行定位的问题,然后提出了一种利用这种空间变异性进行定位的理论。我们的空间相关性加权机制(SCWM)使用跨不同现象的空间相关性来隔离适当的环境参数子集,以提高定位精度。然后,我们使用两级方法开发了一系列使用环境参数的算法:首先,我们开发了有关如何选择参数子集的策略,其次,我们导出了用于位置估计的映射函数。我们的算法支持我们的理论模型,用于利用环境属性进行定位。最后,我们通过使用在建筑物内100个位置测得的物理现象的集合,对我们的方法进行了实验评估。我们的结果提供了强有力的证据,证明了将通用传感器读数用于位置感知应用的可行性。

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