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Energy Efficient SCMA Supported Downlink Cloud-RANs for 5G Networks

机译:节能SCMA支持5G网络的下行链路云RANS

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Cloud-radio access networks (C-RANs) are regarded as a promising solution to provide low cost services among users through the centralized coordination of baseband units for 5G wireless networks. The coordinated multi-point access, visualization and cloud computing technologies enable C-RANs to provide higher capacity and wider coverage, as well as manage the interference and mobility in a centralized coordinated way. However, C-RANs face many challenges due to massive connectivity and spectrum scarcity. If not properly handled, these challenges may degrade the overall performance. Recently, the non-orthogonal multiple access (NOMA) scheme has been suggested as an attractive solution to support multi-user resource sharing in order to improve the spectrum and energy efficiency in 5G wireless networks. In this paper, among various NOMA schemes, we consider and implement the sparse code multiple access (SCMA) scheme to jointly optimize the codebook (CB) and power allocation in the downlink of C-RANs, where the utilization of SCMA in C-RANs to improve the energy efficiency has not been investigated in detail in the literature. To solve this NP-hard joint optimization problem, we decompose the original problem into two sub-problems: codebook allocation and power allocation. Using the conflict graph, we propose the throughput aware SCMA CB selection (TASCBS) method, which generates a stable codebook allocation solution within a finite number of steps. For the power allocation solution, we propose the iterative level-based power allocation (ILPA) method, which incorporates different power allocation approaches (e.g., weighted and NOMA successive interference cancellation (SIC)) into different levels to satisfy the maximum power requirement. Simulation results show that the sum data rate and energy efficiency performances of SCMA supported C-RANs depend on the selected power allocation approach. In terms of energy efficiency, the performance significantly improves with the number of users when the NOMA-SIC aware geometric water-filling based power allocation method is used.
机译:云 - 无线电接入网络(C-RANs)被视为通过用于5G无线网络的基带单元的集中协调提供用户之间提供低成本服务的有希望的解决方案。协调的多点访问,可视化和云计算技术使C-RAN能够以集中协调的方式提供更高的容量和更宽的覆盖率,以及管理干扰和移动性。然而,由于巨大的连接和频谱稀缺,C-RAN面临着许多挑战。如果未正确处理,这些挑战可能会降低整体性能。最近,已经建议非正交多次访问(NOMA)方案作为支持多用户资源共享的有吸引力的解决方案,以便提高5G无线网络中的频谱和能量效率。在本文中,在各种NOMA方案中,我们考虑并实现稀疏代码多址(SCMA)方案,以共同优化C-RAN的下行链路中的码本(CB)和功率分配,其中C-RAN中的SCMA利用为了提高能源效率,文献尚未详细研究。要解决此NP-Hard联合优化问题,我们将原始问题分解为两个子问题:码本分配和功率分配。使用冲突图,我们提出了吞吐量意识到SCMA CB选择(TascB)方法,该方法在有限数量的步骤中生成稳定的码本分配解决方案。对于电力分配解决方案,我们提出了基于迭代级的功率分配(ILPA)方法,其包括不同的电力分配方法(例如,加权和NOMA连续的干扰消除(SIC))进入不同的电平,以满足最大功率要求。仿真结果表明,SCMA支持的C-RAN的总和数据速率和能效性能取决于所选电力分配方法。在能量效率方面,在使用NOMA-SIC意识的基于几何水填充的基于基于基于的基于电力分配方法时,性能显着提高了用户数量。

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