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Intelligent Interference Exploitation for Heterogeneous Cellular Networks Against Eavesdropping

机译:异构蜂窝网络防窃听的智能干扰开发

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This paper explores the co-existence of a macro cell and a small cell for heterogeneous cellular networks, where a macro base station (MBS) and small base station (SBS) transmit to respective macro user (MU) and small user (SU) through their shared spectrum in the face of a common eavesdropper. We consider two spectrum sharing mechanisms, namely the overlay spectrum sharing (OSS) and underlay spectrum sharing (USS). In the OSS, the MBS and the SBS take turns to access their shared spectrum. By contrast, the USS allows the MBS and SBS to simultaneously transmit over the shared spectrum with the aid of power control for limiting their mutual interference, thus called interference-limited USS (IL-USS). In order to take advantage of mutual interference in confusing the eavesdropper without causing adverse effect on the MU, we propose an interference-canceled USS (IC-USS) scheme, where a sophisticatedly designed signal is emitted at the MBS to cancel out the interference received at the MU, which is also beneficial in terms of defending the common eavesdropper. Closed-form expressions of overall outage probability and intercept probability are derived for OSS, IL-USS, and IC-USS schemes by taking into account both MBS-MU and SBS-SU transmissions. The secrecy diversity analysis is also carried out by characterizing an asymptotic behavior of the overall outage probability with a given intercept probability in the high signal-to-noise ratio region. It is shown that the secrecy diversity gains of conventional OSS and IL-USS are zero, whereas the proposed IC-USS achieves a higher secrecy diversity gain of one. This implies that with an arbitrarily low overall intercept probability, the conventional OSS and IL-USS methods converge to their respective outage probability floors; however, the proposed IC-USS scheme can make the overall outage probability asymptotically decrease to zero by simply increasing the transmit power. In addition, numerical results demonstrate an obvious advantage of the proposed IC-USS over OSS and IL-USS against eavesdropping.
机译:本文探讨了异构蜂窝网络中宏小区和小小区的共存,其中宏基站(MBS)和小基站(SBS)通过以下方式分别发送给宏用户(MU)和小用户(SU)面对一个普通的窃听者,他们共享的频谱。我们考虑两种频谱共享机制,即重叠频谱共享(OSS)和底层频谱共享(USS)。在OSS中,MBS和SBS轮流访问它们的共享频谱。相比之下,USS允许MBS和SBS在功率控制的帮助下同时在共享频谱上进行传输,以限制它们之间的相互干扰,因此被称为干扰受限USS(IL-USS)。为了利用相互干扰来混淆窃听者而不对MU造成不利影响,我们提出了一种消除干扰的USS(IC-USS)方案,该方案在MBS处发射了经过精心设计的信号以抵消接收到的干扰在MU上,这对于保护普通的窃听者也是有益的。通过考虑MBS-MU和SBS-SU传输,得出OSS,IL-USS和IC-USS方案的总体中断概率和拦截概率的闭式表达式。还通过在高信噪比区域中以给定的拦截概率表征总体中断概率的渐近行为来进行保密分集分析。结果表明,传统OSS和IL-USS的保密分集增益为零,而拟议的IC-USS的保密分集增益为1。这意味着,在总体拦截概率任意低的情况下,常规的OSS和IL-USS方法都收敛到各自的中断概率下限。但是,提出的IC-USS方案可以通过简单地增加发射功率,使总中断概率渐渐地减小到零。此外,数值结果表明,所提出的IC-USS相对于OSS和IL-USS具有明显的防窃听优势。

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