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Infrared detection of low-contrast sea-skimming cruise missiles

机译:低对比度掠海巡航导弹的红外探测

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Abstract: This paper describes the algorithms Arete is developing for shipboard infrared search and track (SIRST) detection of low-observable targets, such as subsonic, sea-skimming cruise missiles. The key algorithm is Arete's Bayesian (probability) field tracker, which is a track-before-detect algorithm. The basic concept of this tracker is to update in successive time steps the probability of all possible target positions and velocities before thresholding. Sample results are presented for simulated low (approximately 6 dB) signal-to-noise ratio (SNR) targets injected into both simulated and real ocean horizon scenes. More conventional detection algorithms require greater SNR for each temporal update. Since the cruise missile signature decreases with increasing range between the sensor and the cruise missile, our Bayesian tracker can detect subsonic, low-observable cruise missiles at greater ranges. To mitigate false alarms the measurement likelihood is modified to account for non-Gaussian noise/clutter statistics (large intensity outliers). False alarm mitigation is demonstrated for injected signatures into real data. !4
机译:摘要:本文描述了Arete正在开发的用于舰船红外搜索和跟踪(SIRST)检测低可观察目标(例如亚音速,掠海巡航导弹)的算法。关键算法是Arete的贝叶斯(概率)场跟踪器,它是一种先检测后跟踪的算法。该跟踪器的基本概念是在连续的时间步长内更新阈值之前所有可能的目标位置和速度的概率。给出了针对注入到模拟和真实海洋地平线场景中的模拟低(约6 dB)目标信噪比(SNR)目标的样本结果。对于每个时间更新,更常规的检测算法都需要更高的SNR。由于巡航导弹的信号随着传感器和巡航导弹之间射程的增加而减小,因此我们的贝叶斯跟踪器可以在更大的射程中检测到亚音速,低可见度的巡航导弹。为了减轻错误警报,修改了测量可能性,以解决非高斯噪声/杂波统计(大强度异常值)的问题。演示了将虚假警报注入真实数据中的错误警报缓解措施。 !4

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