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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Airborne/spacebased radar STAP using a structured covariance matrix
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Airborne/spacebased radar STAP using a structured covariance matrix

机译:使用结构化协方差矩阵的空中/超基雷达Stap

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It is shown that partial information about the airborne/spacebased (A/S) clutter covariance matrix (CCM) can be used effectively to significantly enhance the convergence performance of a block-processed space/time adaptive processor (STAP) in a clutter and jamming environment. The partial knowledge of the CCM is based upon the simplified general clutter model (GCM) which has been developed by the airborne radar community. A priori knowledge of parameters which should be readily measurable (but not necessarily accurate) by the radar platform associated with this model is assumed. The GCM generates an assumed CCM. The assumed CCM along with exact knowledge of the thermal noise covariance matrix is used to form a maximum likelihood estimate (MLE) of the unknown interference covariance matrix which is used by the STAP. The new algorithm that employs the a priori clutter and thermal noise covariance information is evaluated using two clutter models: 1) a mismatched GCM, and 2) the high-fidelity Research Laboratory STAP clutter model. For both clutter models, the new algorithm performed significantly better (i.e., converged faster) than the sample matrix inversion (SMI) and fast maximum likelihood (FML) STAP algorithms, the latter of which uses only information about the thermal noise covariance matrix.
机译:结果表明,关于空中/超基于(A / S)杂波协方差矩阵(CCM)的部分信息可以有效地使用,以显着提高杂波和干扰中的块处理空间/时间自适应处理器(Stap)的收敛性能环境。 CCM的部分知识基于由机载雷达群落开发的简化的一般杂波模型(GCM)。假设由与该模型相关联的雷达平台容易地测量(但不一定准确)的参数的先验知识。 GCM生成假设的CCM。假设的CCM以及热噪声协方差矩阵的确切知识用于形成由STAP使用的未知干扰协方差矩阵的最大似然估计(MLE)。采用先验杂波和热噪声协方差信息的新算法使用两个杂波模型进行评估:1)不匹配的GCM,2)高保真研究实验室Stap杂波模型。对于两个杂波模型,新算法比样本矩阵反转(SMI)和快速最大似然(FML)STAP算法更好地执行(即,融合更快),其仅使用关于热噪声协方差矩阵的信息。

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