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System and method for passive surveillance in indoor environments based on principal components of the signal strength variation

机译:基于信号强度变化的主要成分的室内环境中被动监视的系统和方法

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Efficient wireless sensor nodes have significantly motivated the usage of wireless sensor networks for intrusion detection and surveillance. A passive wireless surveillance network has the ability to detect humans by analyzing only the variations of the signal strength with respect to distance and alignment between nodes. When a human passes through an area covered by radio network, his/her body interferes with radio signals resulting in signal strength variations due to absorption, reflection and diffraction. In this paper, we analyze the signal strength variation induced by human presence, as a reliable method for passive surveillance. The proposed method analyzes principal components from a covariance matrix composed of samples that present signal strength variations gathered from wireless nodes. By using smart wireless outlets and inter-outlets communication signals, the original environment is not visually modified, but a certain level of sensorial intelligence is introduced without additional sensors. Principal component analysis enhances the detection accuracy level and improves the overall robustness of the surveillance method. Compared to conventional sensor networks, the use of smart wireless outlets and signal strength analysis preserves the transparency of the surveillance system and supports high level of sensorial intelligence, retaining low installation costs.
机译:高效的无线传感器节点极大地促进了无线传感器网络在入侵检测和监视中的使用。被动无线监视网络具有通过仅分析信号强度相对于节点之间的距离和对齐的变化来检测人员的能力。当人经过无线电网络覆盖的区域时,他/她的身体会干扰无线电信号,从而由于吸收,反射和衍射而导致信号强度变化。在本文中,我们分析了人的存在引起的信号强度变化,这是一种可靠的被动监视方法。所提出的方法从协方差矩阵分析主要成分,该协方差矩阵由表示从无线节点收集的信号强度变化的样本组成。通过使用智能无线插座和插座间通信信号,不会在视觉上改变原始环境,但是在没有附加传感器的情况下引入了一定级别的感官智能。主成分分析提高了检测准确性,并提高了监视方法的整体鲁棒性。与传统的传感器网络相比,使用智能无线插座和信号强度分析可保持监视系统的透明性,并支持高水平的传感智能,并保持较低的安装成本。

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