One of the key technologies for the future cellular networks is full duplex (FD)-enabled integrated access and backhaul (IAB) networks operating in the millimeter-wave (mmWave) frequencies. The main challenge in realizing FD-IAB networks is mitigating the impact of self-interference (SI) in the wideband mmWave frequencies. In this article, we first introduce the 3GPP IAB network architectures and wideband mmWave channel models. By utilizing the subarray-based hybrid precoding scheme at the FD-IAB node, multiuser interference is mitigated using zero-forcing at the transmitter, whereas the residual SI after successfully deploying antenna and analog cancellation is canceled by a minimum mean square error baseband combiner at the receiver. The spectral efficiency (SE) is evaluated for the RF insertion loss (RFIL) with different kinds of phase shifters and channel uncertainty. Simulation results show that, in the presence of the RFIL, the almost double SE, which is close to that obtained from fully connected hybrid precoding, can be achieved as compared to half duplex systems when the uncertainties are of low strength.
翻译:未来蜂窝网络的关键技术之一是全双倍(FD)驱动的综合存取和回路(IAB)网络,在毫米波频率下运行。实现FD-IAB网络的主要挑战是如何减轻宽频毫米波频率中自干预的影响。在本篇文章中,我们首先引入3GPP IAB网络架构和宽频毫米Wave频道模型。通过在FD-IAB节点上使用基于子阵型混合预编码计划,在发射器上使用零叉,减少多用户干扰,而在成功部署天线和模拟取消后的剩余SI后,由接收器上一个最小平均平方差基带组合取消。光谱效率(SE)被评估为RF插入损失(RFIL),有各种不同的相位转移器和频道不确定性。模拟结果显示,在RFIL存在的情况下,近于完全连接混合前编码获得的近一倍的SE,可以与低强度的不确定性时半平面系统相比较。