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RAIM with Optimal Integrity and Continuity Allocations Under Multiple Failures

机译:多次故障下具有最佳完整性和连续性分配的RAIM

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摘要

Among the receiver autonomous integrity monitoring (RAIM) algorithms treating multiple failures, multiple hypothesis solution separation algorithms (MHSS)—a type of solution separation algorithm—offer several advantages: First, the link between threat model, upper bound on the position error—the protection level and probability of hazardously misleading information is an easy and straightforward one; second, the calculation of the protection level does not involve complex steps. One of the critical steps in this algorithm is the allocation of the integrity and continuity budgets among the failure modes, as it determines the overall performance of the algorithm. After describing the baseline MHSS approach, we present an algorithm that simultaneously allocates the integrity and continuity budget among the failure modes to obtain the minimum protection level per satellite geometry. Then, we show how slope-based RAIM and solution separation RAIM are related through a little-known formula, which both unifies and highlights the differences between the two approaches. Finally, we apply the algorithm to evaluate the performance of RAIM for vertical guidance for a dual constellation, and find that even with a very large prior probability of satellite failure, vertical guidance can be achieved worldwide with high availability.
机译:在处理多个故障的接收机自主完整性监控(RAIM)算法中,多种假设解决方案分离算法(MHSS)(一种解决方案分离算法)具有以下优点:首先,威胁模型之间的联系,位置误差的上限-保护级别和危险误导性信息的可能性是简单而直接的;第二,保护级别的计算不涉及复杂的步骤。该算法中的关键步骤之一是在故障模式之间分配完整性和连续性预算,因为它决定了算法的整体性能。在描述了基线MHSS方法之后,我们提出了一种算法,该算法同时在故障模式之间分配完整性和连续性预算,以获​​得每个卫星几何形状的最低保护级别。然后,我们通过一个鲜为人知的公式,展示了基于坡度的RAIM与溶液分离RAIM的关系,该公式统一并突出了这两种方法之间的差异。最后,我们将算法应用于评估双星座垂直导航的RAIM性能,发现即使具有很高的先验卫星故障概率,垂直导航也可以在全球范围内以高可用性实现。

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