论文标题
基于协方差的大规模随机访问的相变分析与大量MIMO
Phase Transition Analysis for Covariance Based Massive Random Access with Massive MIMO
论文作者
论文摘要
本文考虑了一个巨大的随机访问问题,其中大量零星活跃的设备希望与配备大量多输入多输出(MIMO)天线的基站(BS)通信。每个设备都会签名一个唯一的签名序列,并且BS通过检测传输哪些序列来识别活动设备。该设备活动检测问题可以作为最大似然估计(MLE)问题提出,而接收信号的样品协方差矩阵是足够的统计数据。本文的目的是表征可行的问题参数集,在这些参数下,这种基于协方差的方法能够成功恢复大规模MIMO制度中的设备活动。通过通过其相关的Fisher信息矩阵对MLE的渐近行为进行分析,本文在Fisher Information矩阵上得出了必要且充分的条件,以确保基于天线的数量流向无限元的消失可能性,基于该天线的数量,基于该误差的数值转换分析。还从协方差匹配的角度研究了这种情况,该条件将相变分析与最近得出的扩展定律联系起来。此外,我们提供了MLE中估计误差分布的表征,基于可以准确预测设备活动检测中的误差概率。最后,本文研究了一种随机访问方案,该方案具有联合设备活动和数据检测,并以类似的方式分析了其性能。
This paper considers a massive random access problem in which a large number of sporadically active devices wish to communicate with a base station (BS) equipped with massive multiple-input multiple-output (MIMO) antennas. Each device is preassigned a unique signature sequence, and the BS identifies the active devices by detecting which sequences are transmitted. This device activity detection problem can be formulated as a maximum likelihood estimation (MLE) problem for which the sample covariance matrix of the received signal is a sufficient statistic. The goal of this paper is to characterize the feasible set of problem parameters under which this covariance based approach is able to successfully recover the device activities in the massive MIMO regime. Through an analysis of the asymptotic behaviors of MLE via its associated Fisher information matrix, this paper derives a necessary and sufficient condition on the Fisher information matrix to ensure a vanishing probability of detection error as the number of antennas goes to infinity, based on which a numerical phase transition analysis is obtained. This condition is also examined from a perspective of covariance matching, which relates the phase transition analysis to a recently derived scaling law. Further, we provide a characterization of the distribution of the estimation error in MLE, based on which the error probabilities in device activity detection can be accurately predicted. Finally, this paper studies a random access scheme with joint device activity and data detection and analyzes its performance in a similar way.