论文标题
智能反射表面辅助飞行员污染攻击及其对策
Intelligent Reflecting Surface Aided Pilot Contamination Attack and Its Countermeasure
论文作者
论文摘要
考虑到时间划分双面无线通信系统中的飞行员污染攻击(PCA),窃听器(EVE)攻击反向飞行员传输阶段,以便窃听从发射机,爱丽丝的数据传输到接收器,鲍勃。我们为EVE提出了一种新的PCA方案,其中夏娃本身不会发出任何信号,而是使用智能反射表面(IRS)来反映鲍勃发送给爱丽丝的飞行员。提出的新PCA方案(称为IRS-PCA)在数据传输阶段增加了从爱丽丝到IRS的信号泄漏,然后由IRS反射到EVE,以提高EVE的窃听能力。拟议的IRS-PCA计划禁用了PCA上的许多现有对策,这是因为在IRS-PCA中,EVE不再需要了解Bob的试点序列,因此对合法无线通信系统的安全构成了严重威胁。鉴于此,本文考虑了IRS-PCA检测和2)在IRSPCA下的安全传输的问题。对于IRS-PCA检测,根据最快检测的框架提出了广义累积总和(GCUSUM)检测程序,旨在一旦发生IRS-PCA的出现。对于IRS-PCA下的安全传输,提出了一种合作通道估计方案来估计IRS的通道,基于该方案,零强度的光束成形旨在减少信号泄漏。
Pilot contamination attack (PCA) in a time division duplex wireless communication system is considered, where an eavesdropper (Eve) attacks the reverse pilot transmission phase in order to wiretap the data transmitted from a transmitter, Alice, to a receiver, Bob. We propose a new PCA scheme for Eve, wherein Eve does not emit any signal by itself but uses an intelligent reflecting surface (IRS) to reflect the pilot sent by Bob to Alice. The proposed new PCA scheme, referred to as IRS-PCA, increases the signal leakage from Alice to the IRS during the data transmission phase, which is then reflected by the IRS to Eve in order to improve the wiretapping capability of Eve. The proposed IRS-PCA scheme disables many existing countermeasures on PCA due to the fact that with IRS-PCA, Eve no longer needs to know the pilot sequence of Bob, and therefore, poses severe threat to the security of the legitimate wireless communication system. In view of this, the problems of 1) IRS-PCA detection and 2) secure transmission under IRSPCA are considered in this paper. For IRS-PCA detection, a generalized cumulative sum (GCUSUM) detection procedure is proposed based on the framework of quickest detection, aiming at detecting the occurrence of IRS-PCA as soon as possible once it occurs. For secure transmission under IRS-PCA, a cooperative channel estimation scheme is proposed to estimate the channel of the IRS, based on which zero-forcing beamforming is designed to reduce signal leakage.