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Evolutionary-Algorithm-Assisted Joint Channel Estimation and Turbo Multiuser Detection/Decoding for OFDM/SDMA

机译:OFDM / SDMA的进化算法辅助联合信道估计和Turbo多用户检测/解码

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摘要

The development of evolutionary algorithms (EAs), such as genetic algorithms (GAs), repeated weighted boosting search (RWBS), particle swarm optimization (PSO), and differential evolution algorithms (DEAs), have stimulated wide interests in the communication research community. However, the quantitative performance-versus-complexity comparison of GA, RWBS, PSO, and DEA techniques applied to the joint channel estimation (CE) and turbo multiuser detection (MUD)/decoding in the context of orthogonal frequency-division multiplexing/space-division multiple-access systems is a challenging problem, which has to consider both the CE problem formulated over a continuous search space and the MUD optimization problem defined over a discrete search space. We investigate the capability of the GA, RWBS, PSO, and DEA to achieve optimal solutions at an affordable complexity in this challenging application. Our study demonstrates that the EA-assisted joint CE and turbo MUD/decoder is capable of approaching both the Cramér–Rao lower bound of the optimal CE and the bit error ratio (BER) performance of the idealized optimal maximum-likelihood (ML) turbo MUD/decoder associated with perfect channel state information, respectively, despite imposing only a fraction of the idealized turbo ML-MUD/decoder's complexity.
机译:进化算法(EA)的发展,例如遗传算法(GA),重复加权增强搜索(RWBS),粒子群优化(PSO)和差分进化算法(DEA),引起了通信研究界的广泛兴趣。但是,GA,RWBS,PSO和DEA技术在正交频分复用/空域环境下联合通道估计(CE)和Turbo多用户检测(MUD)/解码的性能与复杂性的定量比较划分多址系统是一个具有挑战性的问题,必须同时考虑在连续搜索空间上制定的CE问题和在离散搜索空间上定义的MUD优化问题。我们研究了GA,RWBS,PSO和DEA在具有挑战性的应用程序中以负担得起的复杂性实现最佳解决方案的能力。我们的研究表明,EA辅助的CE和Turbo MUD /解码器可以同时达到最佳CE的Cramér-Rao下界和理想化的最佳最大似然(ML)Turbo的误码率(BER)性能。尽管仅增加了理想Turbo ML-MUD /解码器复杂度的一小部分,但MUD /解码器分别与完美的信道状态信息相关联。

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