基于多用户noma网络的量子退火研究

Eldar Gabdulsattarov, Khaled Maaiuf Rabie, Xingwang Li, G. Nauryzbayev
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引用次数: 0

摘要

量子退火(QA)利用量子涨落比经典计算机更快地搜索优化型问题的全局最小值。为了满足未来互联网流量的需求并缓解频谱稀缺性,本工作提出了用于多用户非正交多址(NOMA)网络的qa辅助最大似然(ML)解码器,作为连续干扰消除(SIC)方法的替代方案。实际系统参数,如信道随机性和可能的发射功率电平都考虑到所有涉及用户的所有单个信号。在分析中以蛮力(BF)和SIC信号检测方法为基准。QA辅助ML解码器的误码率性能与BF方法相同,优于SIC技术,但QA的执行时间比BF和SIC技术要长。并行化技术可能有助于加快执行过程。这将为在NOMA系统中充分实现QA解码器的潜力铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards Quantum Annealing for Multi-user NOMA-based Networks
Quantum Annealing (QA) uses quantum fluctuations to search for a global minimum of an optimization-type problem faster than classical computer. To meet the demand for future internet traffic and mitigate the spectrum scarcity, this work presents the QA-aided maximum likelihood (ML) decoder for multi-user non-orthogonal multiple access (NOMA) networks as an alternative to the successive interference cancellation (SIC) method. The practical system parameters such as channel randomness and possible transmit power levels are taken into account for all individual signals of all involved users. The brute force (BF) and SIC signal detection methods are taken as benchmarks in the analysis. The QA-assisted ML decoder results in the same BER performance as the BF method outperforming the SIC technique, but the execution of QA takes more time than BF and SIC. The parallelization technique can be a potential aid to fasten the execution process. This will pave the way to fully realize the potential of QA decoders in NOMA systems.
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