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E-HIPA: An Energy-Efficient Framework for High-Precision Multi-Target-Adaptive Device-Free Localization

机译:E-HIPA:高精度多目标自适应无设备定位的节能框架

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Device-free localization (DFL), which does not require any devices to be attached to target(s), has become an appealing technology for many applications, such as intrusion detection and elderly monitoring. To achieve high localization accuracy, most recent DFL methods rely on collecting a large number of received signal strength (RSS) changes distorted by target(s). Consequently, the incurred high energy consumption renders them infeasible for resource-constraint networks, such as wireless sensor networks. This paper introduces an e nergy-efficient framework for high-precision multi-target-a daptive device-free localization (E-HIPA). Compared with the existing methods, E-HIPA demands fewer transceivers, applies the compressive sensing (CS) theory to guarantee high localization accuracy with less RSS change measurements. The motivation behind the proposed E-HIPA is the sparse nature of multi-target locations in the spatial domain. Before taking advantage of this intrinsic sparseness, we theoretically prove the validity of the proposed CS-based framework problem formulation. Based on the formulation, the proposed E-HIPA primarily includes an adaptive orthogonal matching pursuit (AOMP) algorithm, by which it is capable of recovering the precise location vector with high probability, even for a more practical scenario with unknown target number. Experimental results via real testbed demonstrate that, compared with the previous state-of-the-art solutions, i.e., RTI, SCPL, and RASS approaches, E-HIPA reduces the energy consumption by up to 69 percent with meter-level localization accuracy.
机译:无设备定位(DFL)不需要将任何设备连接到目标,已成为许多应用的吸引人的技术,例如入侵检测和老人监测。为了获得较高的定位精度,最新的DFL方法依赖于收集因目标而失真的大量接收信号强度(RSS)变化。因此,所产生的高能耗使得它们对于诸如无线传感器网络之类的资源受限网络是不可行的。本文介绍了一种高效节能的框架,用于高精度多目标,无适配器的本地化(E-HIPA)。与现有方法相比,E-HIPA需要更少的收发器,应用压缩感测(CS)理论来保证较高的定位精度,同时减少RSS变化测量。提出的E-HIPA背后的动机是空间域中多目标位置的稀疏性质。在利用这种固有的稀疏性之前,我们从理论上证明了所提出的基于CS的框架问题公式的有效性。基于该公式,提出的E-HIPA主要包括自适应正交匹配追踪(AOMP)算法,通过该算法,即使在目标数未知的实际情况下,也能够以较高的概率恢复精确的位置向量。通过实际测试平台进行的实验结果表明,与以前的最新解决方案(即RTI,SCPL和RASS方法)相比,E-HIPA的能耗降低了69%,并且达到了仪表级的定位精度。

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