基于遗传算法的相关MIMO衰落信道检测评价

K. Obaidullah, C. Siriteanu, S. Yoshizawa, Y. Miyanaga
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引用次数: 5

摘要

对于采用空间复用传输的多输入/多输出(MIMO)无线通信系统,我们评估了基于遗传算法(GA)的检测与最大似然(ML)方法的收敛性能。我们用拉普拉斯功率方位角谱来考虑传输相关的瑞利衰落和瑞利衰落。根据基于测量的WINNER II信道模型,选择了几种相关场景类型的方位角扩展(AS)和k因子。我们考虑了以下因素对遗传算法收敛速度和种群大小要求的影响:天线数量、调制星座大小、场景(即AS和K值)以及信道矩阵确定性分量的秩。我们发现,为了保持快速收敛,需要根据天线几何形状和调制星座仔细调整遗传算法的种群大小。另一方面,信道衰落类型和几何形状的变化似乎不会影响遗传算法的收敛性。遗传算法被证明可以实现类似于机器学习的性能,可能具有更低的复杂性,即更有效的硬件和功耗使用。
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Evaluation of genetic algorithm-based detection for correlated MIMO fading channels
For multiple-input/multiple-output (MIMO) wireless communications systems employing spatial multiplexing transmission we evaluate the convergence performance of genetic algorithm (GA)-based detection against the maximum-likelihood (ML) approach. We consider transmit-correlated Rayleigh and Rician fading with Laplacian power azimuth spectrum. The values of the azimuth spread (AS) and Rician K-factor are selected according to the measurement-based WINNER II channel models, for several relevant scenario types. We consider the effect on GA convergence speed and population size requirements of the following: number of antennas, modulation constellation size, scenario (i.e., AS and K values), and rank of the deterministic component of the channel matrix. We find that the GA population size needs to be carefully adjusted to the antenna geometry and modulation constellation in order to maintain fast convergence. On the other hand, changes in the channel fading type and geometry do not appear to affect GA convergence. GA is shown to achieve ML-like performance, possibly for lower complexity, i.e., more efficient hardware and power usage.
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