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Fractional QCQP With Applications in ML Steering Direction Estimation for Radar Detection

机译:分数QCQP及其在ML方向估计中的应用。

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摘要

This paper deals with the problem of estimating the steering direction of a signal, embedded in Gaussian disturbance, under a general quadratic inequality constraint, representing the uncertainty region of the steering. We resort to the maximum likelihood (ML) criterion and focus on two scenarios. The former assumes that the complex amplitude of the useful signal component fluctuates from snapshot to snapshot. The latter supposes that the useful signal keeps a constant amplitude within all the snapshots. We prove that the ML criterion leads in both cases to a fractional quadratically constrained quadratic problem (QCQP). In order to solve it, we first relax the problem into a constrained fractional semidefinite programming (SDP) problem which is shown equivalent, via the Charnes-Cooper transformation, to an SDP problem. Then, exploiting a suitable rank-one decomposition, we show that the SDP relaxation is tight and give a procedure to construct (in polynomial time) an optimal solution of the original problem from an optimal solution of the fractional SDP. We also assess the quality of the derived estimator through a comparison between its performance and the constrained Cramer Rao lower Bound (CRB). Finally, we give two applications of the proposed theoretical framework in the context of radar detection.
机译:本文讨论了在一般的二次不等式约束下,估计高斯扰动中嵌入信号的转向方向的问题,该约束代表了转向的不确定区域。我们求助于最大似然(ML)准则,并专注于两种情况。前者假设有用信号分量的复振幅在快照之间波动。后者假设有用信号在所有快照中保持恒定的幅度。我们证明ML准则在两种情况下均导致分数二次约束二次问题(QCQP)。为了解决该问题,我们首先将该问题放宽为约束分数半定规划(SDP)问题,该问题通过Charnes-Cooper变换等效于SDP问题。然后,利用合适的秩一分解,我们证明SDP松弛是紧的,并给出了从分数SDP的最优解构造(在多项式时间内)原始问题的最优解的过程。我们还通过比较性能和受约束的Cramer Rao下界(CRB)之间的比较来评估派生估计量的质量。最后,我们在雷达检测的背景下给出了所提出的理论框架的两个应用。

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