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Reiterative median cascaded canceler for robust adaptive array processing

机译:迭代中值级联抵消器,用于鲁棒自适应阵列处理

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摘要

A new robust adaptive processor based on reiterative application of the median cascaded canceler (MCC) is presented and called the reiterative median cascaded canceler (RMCC). It is shown that the RMCC processor is a robust replacement for the sample matrix inversion (SMI) adaptive processor and for its equivalent implementations. The MCC, though a robust adaptive processor, has a convergence rate that is dependent on the rank of the input interference-plus-noise covariance matrix for a given number of adaptive degrees of freedom (DOF), N. In contrast, the RMCC, using identical training data as the MCC, exhibits the highly desirable combination of: 1) convergence-robustness to outliers/targets in adaptive weight training data, like the MCC, and 2) fast convergence performance that is independent of the input interference-plus-noise covariance matrix, unlike the MCC. For a number of representative examples, the RMCC is shown to converge using ~ 2.8N samples for any interference rank value as compared with ~ 2N samples for the SMI algorithm. However, the SMI algorithm requires considerably more samples to converge in the presence of outliers/targets, whereas the RMCC does not. Both simulated data as well as measured airborne radar data from the multichannel airborne radar measurements (MCARM) space-time adaptive processing (STAP) database are used to illustrate performance improvements over SMI methods.
机译:提出了一种基于中位级联抵消器(MCC)的迭代应用的新型鲁棒自适应处理器,称为迭代中位级联抵消器(RMCC)。可以看出,RMCC处理器是样本矩阵求逆(SMI)自适应处理器及其等效实现的强大替代品。 MCC虽然是一个强大的自适应处理器,但对于给定数量的自适应自由度(DOF)N,其收敛速度取决于输入干扰加噪声协方差矩阵的等级。相反,RMCC使用与MCC相同的训练数据,将显示出非常理想的组合:1)对自适应权重训练数据(如MCC)中的异常值/目标进行收敛的鲁棒性;以及2)与输入干扰加噪声协方差矩阵,与MCC不同。对于许多代表性示例,与用于SMI算法的〜2N个样本相比,对于任何干扰秩值,RMCC都使用约2.8N个样本进行收敛。但是,在存在异常值/目标的情况下,SMI算法需要大量样本才能收敛,而RMCC则不需要。来自多通道机载雷达测量(MCARM)时空自适应处理(STAP)数据库的仿真数据以及测得的机载雷达数据均用于说明与SMI方法相比的性能改进。

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