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Automated Estimation of Extreme Steady-State Quantiles via the Maximum Transformation

机译:通过最大变换自动估计极端稳态分位数

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We present Sequem, a sequential procedure that delivers point and confidence-interval (CI) estimators for extreme steady-state quantiles of a simulation-generated process. Because it is specified completely, Sequem can be implemented directly and applied automatically. The method is an extension of the Sequest procedure developed by Alexopoulos et al. in 2014 to estimate nonextreme steady-state quantiles. Sequem exploits a combination of batching, sectioning, and the maximum transformation technique to achieve the following: (ⅰ) reduction in point-estimator bias arising from the simulation's initial condition or from inadequate simulation run length; and (ⅱ) adjustment of the CI half-length to compensate for the effects of skewness or autocorrelation on intermediate quantile point estimators computed from nonoverlapping batches of observations. Sequem's CIs are designed to satisfy user-specified requirements concerning coverage probability and absolute or relative precision. In an experimental evaluation based on seven processes selected to stress-test the procedure, Sequem exhibited uniformly good performance.
机译:我们介绍了Sequem,这是一种顺序过程,可为模拟生成的过程的极端稳态分位数提供点和置信区间(CI)估计器。由于已完全指定,因此Sequem可以直接实现并自动应用。该方法是Alexopoulos等人开发的Sequest程序的扩展。在2014年估计非极端稳态分位数。 Sequem利用批处理,分段和最大转换技术的组合来实现以下目的:(ⅰ)减少了由于模拟的初始条件或模拟运行时间不足而导致的点估计器偏差; (ⅱ)调整CI的半长,以补偿偏度或自相关对从不重叠的观察批中计算出的中间分位数估计量的影响。 Sequem的CI旨在满足用户指定的有关覆盖概率和绝对或相对精度的要求。在基于选择用来对程序进行压力测试的七个过程的实验评估中,Sequem表现出一致的良好性能。

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