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A New Design Paradigm for Secure Full-Duplex Multiuser Systems

机译:安全全双工多用户系统的新设计范例

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We consider a full-duplex (FD) multiuser system where an FD base station (BS) is designed to simultaneously serve both downlink (DL) and uplink (UL) users in the presence of half-duplex eavesdroppers (Eves). The problem is to maximize the minimum (max-min) secrecy rate (SR) among all legitimate users, where the information signals at the FD-BS are accompanied with artificial noise to debilitate the Eves' channels. To enhance the max-min SR, a major part of the power budget should be allocated to serve the users with poor channel qualities, such as those far from the FD-BS, undermining the SR for other users, and thus compromising the SR per-user. In addition, the main obstacle in designing an FD system is due to the self-interference (SI) and co-channel interference (CCI) among users. We therefore propose an alternative solution, where the FD-BS uses a fraction of the time block to serve near DL users and far UL users, and the remaining fractional time to serve other users. The proposed scheme mitigates the harmful effects of SI, CCI, and multiuser interference, and provides system robustness. The SR optimization problem has a highly nonconcave and nonsmooth objective, subject to nonconvex constraints. For the case of perfect channel state information (CSI), we develop a low-complexity path-following algorithm, which involves only a simple convex program of moderate dimension at each iteration. We show that our path-following algorithm guarantees convergence at least to a local optimum. Then, we extend the path-following algorithm to the cases of partially known Eves' CSI, where only statistics of CSI for the Eves are known, and worst-case scenario in which Eves can employ a more advanced linear decoder. The merit of our proposed approach is further demonstrated by extensive numerical results.
机译:我们考虑一个全双工(FD)多用户系统,其中在存在半双工窃听者(Eves)的情况下,FD基站(BS)设计为同时为下行(DL)和上行(UL)用户提供服务。问题是要使所有合法用户的最小(最大-最小)保密率(SR)最大化,其中FD-BS上的信息信号会伴随人为噪声,从而使Eves的频道变得虚弱。为了提高最大-最小SR,应将功率预算的主要部分分配给服务于信道质量较差的用户(例如远离FD-BS的用户),从而损害其他用户的SR,从而损害每个用户的SR。 -用户。此外,设计FD系统的主要障碍是由于用户之间的自干扰(SI)和同频道干扰(CCI)。因此,我们提出了一种替代解决方案,其中FD-BS使用时间块的一小部分来服务于近DL用户和远UL用户,而剩余的时间用于服务其他用户。所提出的方案减轻了SI,CCI和多用户干扰的有害影响,并提供了系统鲁棒性。 SR优化问题具有高度不凹且不平滑的目标,受非凸约束的约束。对于完美的信道状态信息(CSI),我们开发了一种低复杂度的路径跟踪算法,该算法每次迭代仅涉及一个简单的中等大小的凸程序。我们表明,我们的路径跟踪算法可确保收敛至少局部最优。然后,我们将路径跟踪算法扩展到部分已知的Eves CSI的情况下,在这种情况下,只有Eves的CSI统计信息是已知的,以及Eves可以采用更高级的线性解码器的最坏情况。广泛的数值结果进一步证明了我们提出的方法的优点。

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