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Multivariate Probabilistic Collocation Method for effective uncertainty evaluation with application to air traffic management

机译:有效不确定性评估的多元概率搭配方法在空中交通管理中的应用

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Modern large-scale infrastructure systems are typically complicated in nature and require extensive simulations to evaluate their performance. The Probabilistic Collocation Method (PCM) is developed to effectively simulate system performance under uncertainty. In this paper, we extend the formal analysis of the single-variable PCM to the multivariate case, where the parameters may or may not be independent. Specifically, we provide conditions that permit the multivariate PCM to precisely predict the mean of the original system output. We also explore additional capabilities of the multivariate PCM, in terms of cross-statistics prediction, relation to the minimum mean-square estimator, and computational feasibility for large dimensional data. At the end of the paper, we demonstrate the application of the multivariate PCM in air traffic management.
机译:现代大型基础设施系统通常本质上是复杂的,需要大量的仿真来评估其性能。开发概率配置方法(PCM)可以有效地模拟不确定性下的系统性能。在本文中,我们将单变量PCM的形式分析扩展到多变量情况,其中参数可能独立也可能独立。具体而言,我们提供了允许多元PCM准确预测原始系统输出平均值的条件。我们还根据交叉统计预测,与最小均方估计量的关系以及大数据的计算可行性,探索了多元PCM的其他功能。在本文的最后,我们演示了多元PCM在空中交通管理中的应用。

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