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An Improved Unauthorized Unmanned Aerial Vehicle Detection Algorithm Using Radiofrequency-Based Statistical Fingerprint Analysis

机译:改进的基于射频统计指纹分析的无人驾驶无人机检测算法

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摘要

Unmanned aerial vehicles (UAVs) are now readily available worldwide and users can easily fly them remotely using smart controllers. This has created the problem of keeping unauthorized UAVs away from private or sensitive areas where they can be a personal or public threat. This paper proposes an improved radio frequency (RF)-based method to detect UAVs. The clutter (interference) is eliminated using a background filtering method. Then singular value decomposition (SVD) and average filtering are used to reduce the noise and improve the signal to noise ratio (SNR). Spectrum accumulation (SA) and statistical fingerprint analysis (SFA) are employed to provide two frequency estimates. These estimates are used to determine if a UAV is present in the detection environment. The data size is reduced using a region of interest (ROI), and this improves the system efficiency and improves azimuth estimation accuracy. Detection results are obtained using real UAV RF signals obtained experimentally which show that the proposed method is more effective than other well-known detection algorithms. The recognition rate with this method is close to 100% within a distance of 2.4 km and greater than 90% within a distance of 3 km. Further, multiple UAVs can be detected accurately using the proposed method.
机译:无人机现已在全球范围内普及,用户可以使用智能控制器轻松地进行远程飞行。这就产生了使未经授权的无人机远离私人或敏感区域的问题,在私人或敏感区域,它们可能会成为个人或公共威胁。本文提出了一种基于射频(RF)的改进方法来检测无人机。使用背景滤波方法可以消除杂波(干扰)。然后使用奇异值分解(SVD)和平均滤波来减少噪声并提高信噪比(SNR)。频谱累积(SA)和统计指纹分析(SFA)用于提供两个频率估计。这些估计值用于确定检测环境中是否存在UAV。使用关注区域(ROI)可以减小数据大小,从而提高了系统效率并提高了方位角估计的准确性。利用实验获得的真实无人机射频信号获得检测结果,表明该方法比其他众所周知的检测算法更有效。此方法的识别率在2.4 km的距离内接近100%,在3 km的距离内大于90%。此外,使用所提出的方法可以准确地检测出多个无人机。

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