Monopulse secondary surveillance radar azimuth error distribution analysis

H. Crane, R. Eftekari
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引用次数: 1

Abstract

Radar data collected from three different monopulse secondary surveillance radar (MSSR) types are analyzed to assess azimuth measurement error characteristics. Aircraft radar position reports are compared with Global Positioning System (GPS) position reports delivered by Automatic Dependent Surveillance-Broadcast (ADS-B) for aircraft targets of opportunity. ADS-B positions are regarded as truth for error determination. The analysis procedure applies techniques developed to minimize timing discrepancy between ADS and radar position measurement systems to achieve best time registration and to minimize azimuth measurement bias for separate aircraft tracks in the population. Azimuth error probability distribution models that best fit the data are determined by a procedure that tests values for distribution parameters and maximizes the fit quality for Gaussian, double Gaussian, and Gauss-Laplace error distributions. The analysis found that azimuth errors for the general population of aircraft best fit a double Gaussian error distribution model. An analysis technique that removed the residual azimuth bias for individual aircraft tracks produced a result where the azimuth errors best fit a Gauss-Laplace error model. The double Gaussian result is representative of a surveillance system that applies techniques to generally remove azimuth and time bias. The Gauss-Laplace models a surveillance system that dynamically aligns and removes bias for individual aircraft.
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单脉冲二次监视雷达方位误差分布分析
对三种不同类型的单脉冲二次监视雷达(MSSR)采集的雷达数据进行了分析,评估了方位测量误差特性。将飞机雷达位置报告与自动相关监视广播(ADS-B)提供的全球定位系统(GPS)位置报告进行比较。ADS-B位置作为真值用于误差判定。分析程序应用开发的技术,以最大限度地减少ADS和雷达位置测量系统之间的时间差异,以实现最佳时间注册,并最大限度地减少人群中单独飞机轨迹的方位测量偏差。最适合数据的方位角误差概率分布模型由一个过程确定,该过程测试分布参数的值,并最大化高斯、双高斯和高斯-拉普拉斯误差分布的拟合质量。分析发现,飞机总体的方位角误差最符合双高斯误差分布模型。一种分析技术消除了单个飞机轨迹的残留方位角偏差,产生了方位角误差最适合高斯-拉普拉斯误差模型的结果。双高斯结果代表了一个监视系统,该系统应用技术来消除方位角和时间偏差。高斯-拉普拉斯模型的监视系统,动态对准和消除偏差的个别飞机。
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