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On hypothesis testing in RAIM algorithms: generalized likelihood ratio test, solution separation test and a possible alternative

机译:关于RAIM算法的假设检测:广义似然比测试,解决方案分离测试和可能的替代方案

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摘要

Integrity for GNSS-based navigation can be monitored at user level by means of RAIM (receiver autonomous integrity monitoring) algorithms. Most of these algorithms are based on statistical tests that are able to detect and identify outliers or other anomalies in the measurements, and then either exclude suspected measurements from the position solution or forward a warning to the user. In this paper the two statistical tests most commonly used in RAIM algorithms, the generalized likelihood ratio (GLR) test and the solution separation (SS) test, are compared. The main differences between the two tests are pointed out, in general statistical terms and in view of their use in integrity monitoring. As both tests are found not optimal for integrity monitoring, a new test is proposed that targets only the faults that represent a threat to the integrity. Simulation results are shown to substantiate the theoretical findings, and confirm the effectiveness of the new testing procedure.
机译:可以通过RAIM(接收方自主完整性监控)算法在用户级别监视基于GNSS的导航的完整性。 这些算法中的大多数是基于能够检测和识别测量中的异常值或其他异常的统计测试,然后从位置解决方案中排除可疑测量或向用户转发警告。 在本文中,比较了RAIM算法中最常用的两个统计测试,比较了广义似然比(GLR)测试和溶液分离(SS)测试。 两种测试之间的主要差异在一般统计条款中指出,并考虑到他们在完整性监测中使用。 由于发现这两个测试都不是完整性监测的最佳选择,提出了一种新测试,仅针对代表完整性威胁的故障。 模拟结果显示为理论发现,确认新测试程序的有效性。

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