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Efficient space-filling and non-collapsing sequential design strategies for simulation-based modeling

机译:基于仿真的高效空间填充和非折叠顺序设计策略

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摘要

Simulated computer experiments have become a viable cost-effective alternative for controlled real-life experiments. However, the simulation of complex systems with multiple input and output parameters can be a very time-consuming process. Many of these high-fidelity simulators need minutes, hours or even days to perform one simulation. The goal of global surrogate modeling is to create an approximation model that mimics the original simulator, based on a limited number of expensive simulations, but can be evaluated much faster. The set of simulations performed to create this model is called the experimental design. Traditionally, one-shot designs such as the Latin hypercube and factorial design are used, and all simulations are performed before the first model is built. In order to reduce the number of simulations needed to achieve the desired accuracy, sequential design methods can be employed. These methods generate the samples for the experimental design one by one, without knowing the total number of samples in advance. In this paper, the authors perform an extensive study of new and state-of-the-art space-filling sequential design methods. It is shown that the new sequential methods proposed in this paper produce results comparable to the best one-shot experimental designs available right now.
机译:模拟计算机实验已成为受控的现实生活实验的可行的成本有效的替代方法。但是,具有多个输入和输出参数的复杂系统的仿真可能是非常耗时的过程。这些高保真仿真器中的许多仿真器需要几分钟,几小时甚至几天来执行一次仿真。全局代理建模的目的是基于有限数量的昂贵仿真,创建一个模仿原始仿真器的近似模型,但可以更快地对其进行评估。为创建此模型而执行的一组模拟称为实验设计。传统上,使用一次性设计,例如Latin hypercube和阶乘设计,并且所有模拟都是在构建第一个模型之前执行的。为了减少实现所需精度所需的仿真次数,可以采用顺序设计方法。这些方法在不事先知道样本总数的情况下,一个接一个地生成用于实验设计的样本。在本文中,作者对新的和最新的空间填充顺序设计方法进行了广泛的研究。结果表明,本文提出的新的顺序方法所产生的结果可与目前可用的最佳单次实验设计相媲美。

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