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QoS-Based Interference Alignment With Similarity Clustering for Efficient Subchannel Allocation in Dense Small Cell Networks

机译:密集小小区网络中基于QoS的相似性干扰对准与相似性聚类,用于有效的子信道分配

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摘要

Interference alignment (IA) can remarkably improve the spectral efficiency of dense small cell networks (SCNs) underlaying a macrocell, but its feasibility condition and implementation complexity are restricted by the number of small cell equipments (SUEs). Moreover, the SUEs performing IA may have unsatisfactory quality of service (QoS) requirements as IA only eliminates interference while neglecting the gain of desired signals. In this paper, we propose a centralized efficient subchannel allocation scheme based on IA with similarity clustering in dense SCNs underlaying a macrocell, which aims at maximizing the number of QoS guaranteed SUEs performing IA. The corresponding problem is formulated as a combinatorial optimization problem which is NP-hard. So a low-complexity solution is proposed which includes three phases: similarity clustering for SUEs through graph partitioning, further adjustments of cluster sizes to make IA feasible in each cluster, and subchannel allocation for the formed clusters, each of which is performed with a notably reduced computational complexity. Moreover, the proposed solution greatly reduces the signaling overhead incurred by channel state information estimation. Numerical results show that the proposed solution not only outperforms other related schemes, but also achieves a performance close to the optimal solution.
机译:干扰对准(IA)可以显着提高底层宏小区的密集小小区网络(SCN)的频谱效率,但是其可行性条件和实现复杂性受到小小区设备(SUE)数量的限制。此外,执行IA的SUE可能对服务质量(QoS)的要求不令人满意,因为IA仅消除干扰而忽略了所需信号的增益。在本文中,我们提出了一种基于IA的集中高效子信道分配方案,该方案在宏小区下面的密集SCN中具有相似性聚类,旨在最大化执行IA的QoS保证SUE数量。相应的问题被公式化为组合优化问题,它是NP难的。因此,提出了一种低复杂度的解决方案,该解决方案包括三个阶段:通过图划分对SUE进行相似性聚类,进一步调整聚类大小以使IA在每个聚类中可行,以及对已形成聚类的子信道分配,每个阶段的执行都非常明显降低了计算复杂度。此外,所提出的解决方案大大减少了信道状态信息估计所引起的信令开销。数值结果表明,所提出的解决方案不仅优于其他相关方案,而且性能也接近最佳方案。

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