Exploring spatial motifs for device-to-device network analysis (DNA) in 5G networks

Tengchan Zeng, Omid Semiari, W. Saad
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引用次数: 5

Abstract

Device-to-device (D2D) communication is a promising approach to efficiently disseminate critical or viral information across 5G cellular networks. Reaping the benefits of D2D-enabled networks is contingent upon choosing the optimal dissemination policy and resource allocation strategy subject to resource, topology, and user distribution constraints. In this paper, a resource allocation problem within a single-cell orthogonal frequency division multiple-access (OFDMA) network has been formulated to optimize the system throughput. The problem is cast as a mixed binary integer programming problem, which is challenging to solve. Therefore, in order to obtain a sub-optimal solution, the optimization problem is decomposed into two subproblems: seed selection and subchannel allocation. For the seed selection sub-problem, a novel D2D network analysis (DNA) framework is proposed to explore frequent communication patterns across D2D users, known as spatial motifs, to determine the optimal number of devices which can disseminate contents. Furthermore, to solve the second sub-problem, a heuristic algorithm is introduced. Simulation results show the effectiveness of exploring motifs to design D2D dissemination policies, and show that the proposed algorithm can achieve a performance gain of up to 40% compared with a baseline scheme that selects subchannels randomly.
探索5G网络中设备对设备网络分析(DNA)的空间基元
设备对设备(D2D)通信是在5G蜂窝网络中有效传播关键信息或病毒信息的一种有前途的方法。获得支持d2d的网络的好处取决于选择受资源、拓扑和用户分布约束的最佳传播策略和资源分配策略。为了优化系统吞吐量,提出了单小区正交频分多址(OFDMA)网络中的资源分配问题。该问题是一个具有挑战性的混合二进制整数规划问题。因此,为了得到次优解,将优化问题分解为种子选择和子信道分配两个子问题。对于种子选择子问题,提出了一种新的D2D网络分析(DNA)框架,用于探索D2D用户之间的频繁通信模式(称为空间motif),以确定可以传播内容的设备的最佳数量。在此基础上,引入了一种启发式算法求解第二子问题。仿真结果表明,该算法在设计D2D传播策略时可以有效地探索基元,并且与随机选择子信道的基准方案相比,可以获得高达40%的性能增益。
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