论文标题

将属性的应用与监视雷达测量的相关性

Application of Attributables to the Correlation of Surveillance Radar Measurements

论文作者

Reihs, Benedikt, Vananti, Alessandro, Schildknecht, Thomas, Siminski, Jan, Flohrer, Tim

论文摘要

雷达的空间监视特别用于低地球轨道,以维持轨道上对象的数据库(也称为目录)。除其他外,经常使用不断扫描的天空区域的监视雷达用于此目的。无法分配给已经知道的目录对象的这种雷达的检测可能不包含足够的信息来获得可靠的初始轨道,以从单个测量通道(也称为Tracklet)中获得新的目录条目。取而代之的是,可以组合两个轨道,以提高初始轨道的质量,从而导致相关问题。这意味着必须测试是否两个轨道属于同一对象,并且必须通过组合轨迹来得出初始轨道。凝结曲目中信息的一种常见方法是将它们与所谓的属性物品拟合。由于雷达观察结果包括不同类型的可观察结果,因此必须将这些属性的拟合视为整个相关过程的重要组成部分。考虑到达到的准确性和对轨道相关的影响,本文分析了可归因拟合的效果。引入了一个新的无奇异坐标系,从而改善了拟合和相关性的结果。最后,对模拟调查场景进行的测试引入了两个额外的过滤器,以删除假阳性相关性。结果表明,基于属性的方法可以成功地应用于具有不同检测频率的长达三分钟长的轨道。

Space surveillance by radar is especially used for the low Earth orbit to maintain a database, also called catalogue, of objects on orbit. Among others, surveillance radars which are constantly scanning a region of interest in the sky are used for this purpose. The detections from such a radar which cannot be assigned to an already known catalogue object might not contain enough information to obtain a reliable initial orbit for a new catalogue entry from a single measured pass, also called tracklet. Instead, two tracklets can be combined to improve the quality of the initial orbit which leads to the correlation problem. This means that it has to be tested whether two tracklets belong to the same object and an initial orbit has to be derived by combining the tracklets. A common approach to condense the information in the tracklet is fitting them with so-called attributables. Because radar observations include different types of observables, the fitting of these attributables has to be considered as an important part of the entire correlation process. This paper analyses the effect of the attributable fitting considering the achieved accuracy and influence on the tracklet correlation. A new singularity-free coordinate system is introduced, which improves the results of the fitting and correlation. Finally, a test on a simulated survey scenario introduces two additional filters to remove false positive correlations. It is shown that the attributable-based approach can be applied successfully to tracklets of up to three minutes length with different detection frequencies.

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