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False alarms in radar detection within sparse-signal processing

机译:稀疏信号处理中雷达检测中的虚警

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摘要

Radar-detection metrics are assessed in outcomes of sparse-signal processing (SSP) with test statistics based on the subgradient and the dual feasibility in the SSP optimization via an approach separating false alarms (FAs) from targets. In radar, SSP is aimed for estimating a sparse solution whose FAs are fixed and whose detection of targets is optimal as in traditional detection. Existing detection schemes employing thresholds are based on the theory for a single target and ideal sensing coherence. SSP facilitates development of generic radar-detection metrics by including sensing coherence and multiple targets. We focus on assessing FAs in detection within SSP at different values of sensing coherence, signal-to-noise ratio and a number of targets, and also as compared with the existing detection. The theoretical analysis of detection within SSP is validated with numerical results from range processing.
机译:基于次梯度和SSP优化中的双重可行性,通过将虚假警报(FA)与目标分开的方法,可对稀疏信号处理(SSP)的结果和测试统计数据中的雷达检测指标进行评估。在雷达中,SSP的目的是估计稀疏解决方案,该解决方案的FA是固定的,并且其目标检测与传统检测一样是最佳的。现有的采用阈值的检测方案是基于针对单个目标和理想感测相干性的理论。 SSP通过包括感测相干性和多个目标,促进了通用雷达探测指标的开发。我们专注于评估SSP内检测相干性,信噪比和多个目标的不同值时的FA,并与现有检测进行比较。 SSP内检测的理论分析已得到范围处理的数值结果的验证。

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