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Bayes Linear Calibrated Prediction for Complex Systems

机译:复杂系统的贝叶斯线性校正预测

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摘要

A calibration-based approach is developed for predicting the behavior of a physical system that is modeled by a computer simulator. The approach is based on Bayes linear adjustment using both system observations and evaluations of the simulator at parameterizations that appear to give good matches to those observations. This approach can be applied to complex high-dimensional systems with expensive simulators, where a fully Bayesian approach would be impractical. It is illustrated with an example concerning the collapse of the thermohaline circulation (THC) in the Atlantic Ocean.
机译:开发了一种基于校准的方法,用于预测由计算机模拟器建模的物理系统的行为。该方法基于贝叶斯线性调整,使用系统观测值和仿真器在参数化时的评估,这些参数似乎可以很好地匹配这些观测值。这种方法可以应用于带有昂贵模拟器的复杂高维系统,而采用完全贝叶斯方法则是不切实际的。举例说明了大西洋中热盐循环(THC)崩溃的情况。

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