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MUSIC and maximum likelihood techniques on two-dimensional DOA estimation with uniform circular array

机译:均匀圆阵二维DOA估计的MUSIC和最大似然技术

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摘要

The authors describe the application of multiple signal classification (MUSIC) and maximum likelihood (ML) techniques to the joint azimuthal and elevational directions-of-arrival (AEDOA) estimation with a uniform circular array. Both deterministic and random source signal models are considered. The asymptotic statistical properties of MUSIC and ML estimation error vectors for AEDOA parameters are investigated. In particular, explicit analytical expressions are derived for asymptotic MUSIC and ML covariance matrices as well as Cramer-Rao lower bounds (CRLBs). These analytical formulae are employed in the theoretical performance study. Computer simulation results are presented to validate theoretical predictions and compare the performance of MUSIC and ML methods. It is shown that the performance of unconditional ML is superior to that of deterministic ML, which is, in turn, better than that of MUSIC.
机译:作者描述了多信号分类(MUSIC)和最大似然(ML)技术在具有统一圆形阵列的联合方位角和仰角到达方向(AEDOA)估计中的应用。确定性和随机源信号模型都被考虑。研究了AEDOA参数的MUSIC和ML估计误差向量的渐近统计性质。特别是,得出了渐近MUSIC和ML协方差矩阵以及Cramer-Rao下界(CRLB)的显式解析表达式。这些分析公式用于理论性能研究。给出了计算机仿真结果,以验证理论预测并比较MUSIC和ML方法的性能。结果表明,无条件ML的性能优于确定性ML,后者又比MUSIC更好。

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