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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >CFAR integration processors in randomly arriving impulse interference
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CFAR integration processors in randomly arriving impulse interference

机译:随机到达脉冲干扰中的CFAR集成处理器

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摘要

Time diversity transmission is often used to circumvent the high probability of a deep fade on a single transmission which may result in loss of the signal. One way to combat deep fades is to postdetection integrate the received observations from each range resolution cell. The false alarm rate of the postdetection integrator (PI) is extremely sensitive to randomly arriving impulse interference. Such interfering pulses may be unintentionally generated by nearby radars or intentionally generated by pulse jammers seeking to destroy the visibility of the radar. The binary integrator (PI) which uses an M-out-of-L decision rule is insensitive to at most M-1 interfering pulses. We consider the adaptive implementation of the PI and BI detectors for constant false alarm rate (CFAR) operation. We show that the CFAR BI detector when the "AND" (L-out-of-L) decision rule is used exhibits more robust false alarm control properties in the presence of impulse interference at the expense of severe detection loss when no interference is present. The CFAR adaptive PI (API) detector is proposed to alleviate this problem. The CFAR API detector implements an adaptive censoring algorithm which determines and censors with high probability the interference samples thereby achieving robust false alarm control in the presence of interference and optimum detection performance in the absence of interference.
机译:通常使用时间分集传输来避免单次传输中出现深度衰落的高可能性,这可能会导致信号丢失。防止深层淡入淡出的一种方法是将每个测距分辨率单元接收到的观测值整合到后期检测中。检测后积分器(PI)的误报率对随机到达的脉冲干扰极为敏感。此类干扰脉冲可能是附近的雷达无意中产生的,也可能是试图破坏雷达可见度的脉冲干扰器有意产生的。使用L-of-of-L决策规则的二进制积分器(PI)最多对M-1个干扰脉冲不敏感。我们考虑PI和BI检测器的自适应实现,以实现恒定的误报率(CFAR)操作。我们显示,当使用“ AND”(L-out-of-L)决策规则时,CFAR BI检测器在存在脉冲干扰的情况下表现出更鲁棒的错误警报控制属性,但当不存在干扰时以严重的检测损失为代价。提出了CFAR自适应PI(API)检测器来缓解此问题。 CFAR API检测器实现了自适应检查算法,该算法以高概率确定和检查干扰样本,从而在存在干扰的情况下实现鲁棒的虚假警报控制,在没有干扰的情况下实现最佳检测性能。

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