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Earth Observing System Covariance Realism

机译:地球观测系统协方差现实主义

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The purpose of covariance realism is to properly size a primary object's covariance in order to add validity to the calculation of the probability of collision. The covariance realism technique in this paper consists of three parts: collection/calculation of definitive state estimates through orbit determination, calculation of covariance realism test statistics at each covariance propagation point, and proper assessment of those test statistics. An empirical cumulative distribution function (ECDF) Goodness-of-Fit (COF) method is employed to determine if a covariance is properly sized by comparing the empirical distribution of Mahalanobis distance calculations to the hypothesized parent 3 Degrees of Freedom (DoF) chi-squared distribution. To realistically size a covariance for collision probability calculations, this study uses a state noise compensation algorithm that adds process noise to the definitive epoch covariance to account for uncertainty in the force model. Process noise is added until the GOF tests pass a group significance level threshold. The results of this study indicate that when outliers attributed to persistently high or extreme levels of solar activity are removed, the aforementioned covariance realism compensation method produces a tuned covariance with up to 80 to 90% of the covariance propagation timespan passing (against a 60% minimum passing threshold) the GOF tests-a quite satisfactory and useful result.
机译:协方差现实主义的目的是适当地确定主要对象的协方差的大小,以增加碰撞概率的计算的有效性。本文中的协方差现实主义技术包括三个部分:通过轨道确定来收集/计算确定的状态估计值,在每个协方差传播点计算协方差现实主义检验统计量以及对这些检验统计量的正确评估。通过将Mahalanobis距离计算的经验分布与假设的父级3自由度(DoF)卡方进行比较,采用经验累积分布函数(ECDF)拟合优度(COF)方法确定协方差的大小是否合适分配。为了实际确定碰撞概率计算的协方差,本研究使用状态噪声补偿算法,该算法将过程噪声添加到确定的时期协方差中,以解决力模型中的不确定性。添加过程噪声,直到GOF测试通过组显着性水平阈值。这项研究的结果表明,当归因于太阳活动的持续高水平或极端水平的异常值被消除时,上述协方差现实主义补偿方法产生的协方差高达80%到90%的协方差传播时间跨度(超过60%)最低通过阈值)的GOF测试-相当令人满意且有用的结果。

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