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A CFAR Adaptive Subspace Detector for First-Order or Second-Order Gaussian Signals Based on a Single Observation

机译:基于一次观测的一阶或二阶高斯信号CFAR自适应子空间检测器

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In this paper, we consider the problem of detecting a signal in Gaussian noise with unknown covariance matrix, in partially homogeneous environments where the test and training data samples share the same noise covariance matrix up to an unknown scaling factor. One solution to this problem is the adaptive subspace detector (ASD) with a single or multiple observations. However, the probabilities of false alarm and detection of this ASD have not been obtained yet. In this paper, these expressions are derived on the basis of a single observation, which are confirmed with Monte Carlo simulations. It is shown that the ASD has a constant false alarm rate property with respect to both the shared noise covariance matrix structure and the independent scaling of the noise in the test data. In addition, we prove that for the First-Order model where the signal of interest is assumed to be a deterministic but unknown vector, the ASD derived with the generalized likelihood ratio test is consistent with that derived with an ad hoc two-step design procedure.
机译:在本文中,我们考虑在部分均质的环境中检测具有未知协方差矩阵的高斯噪声中的信号的问题,其中测试和训练数据样本共享相同的噪声协方差矩阵,直到未知比例因子。解决此问题的一种方法是使用单个或多个观测值的自适应子空间检测器(ASD)。但是,尚未获得错误警报和检测此ASD的可能性。在本文中,这些表达式是在单次观测的基础上得出的,这些观测结果已通过蒙特卡罗模拟得到了证实。结果表明,相对于共享噪声协方差矩阵结构和测试数据中噪声的独立缩放,ASD具有恒定的误报率属性。此外,我们证明对于假定感兴趣信号为确定性但未知矢量的一阶模型,使用广义似然比检验得出的ASD与采用特设两步设计程序得出的ASD一致。

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