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Joint Access and Fronthaul Radio Resource Allocation in PD-NOMA-Based 5G Networks Enabling Dual Connectivity and CoMP

机译:基于PD-NOMA的5G网络中的联合访问和前传无线电资源分配,实现双连接和CoMP

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In this paper, fifth-generation (5G) cellular networks under three promising technologies, namely, dual connectivity, coordinated multi-point transmission (CoMP), and power domain non orthogonal multiple access (PD-NOMA) are investigated. The main aim is to maximize the downlink energy efficiency (EE) by using both millimeter wave (mmW) and micro wave ($mu ext{W}$) links in access and fronthaul, while employing CoMP and PD-NOMA. In this regard, joint access and fronthaul radio resource allocation for a downlink heterogeneous cloud radio access network is considered. The proposed optimization is a mixed integer non-convex problem with a high computational complexity solution, and hence, the alternate search method based on a successive convex approximation approach using fractional programing is exploited. Furthermore, the convergence of the proposed iterative resource allocation method is proved and its computational complexity is investigated. As the numerical results show, via dual connectivity through receiving signals from both mmW and$mu ext{W}$transmitters, the system EE is improved by approximately 50%, in contrast to using only$mu ext{W}$subcarriers (e.g., as in local thermal equilibrium). In addition, by applying both PD-NOMA and CoMP technologies on the$mu ext{W}$subcarriers, the EE of the system increases by approximately 45%.
机译:在本文中,研究了在三种有前途的技术下的第五代(5G)蜂窝网络,即双连接,协作多点传输(CoMP)和功率域非正交多址(PD-NOMA)。主要目的是通过同时使用毫米波(mmW)和微波( n $ mu text {W} $ < / tex-math> n)在使用CoMP和PD-NOMA时在访问和前传中进行链接。在这方面,考虑了针对下行链路异构云无线电接入网络的联合接入和前传无线电资源分配。所提出的优化是具有高计算复杂度解决方案的混合整数非凸问题,因此,采用了基于分数阶编程的逐次凸逼近方法的替代搜索方法。此外,证明了所提出的迭代资源分配方法的收敛性,并研究了其计算复杂性。如数值结果所示,通过从mmW和 n $ mu text {W} $ n发送器,与仅使用 n <内联公式xmlns:mml = “ http://www.w3.org/1998/Math/MathML 相比,系统EE大约提高了50%。 “ xmlns:xlink = ” http://www.w3.org/1999/xlink “> $ mu text {W} $ n个子载波(例如,在局部热平衡中)。此外,通过将PD-NOMA和CoMP技术应用于 n $ mu text {W} $ n副载波,系统的EE增加大约45%。

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