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Monte Carlo based Designs for Constrained Domains

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arxiv 1512.07328 v2 pith:SJM6DTVM submitted 2015-12-23 stat.ME

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keywords spacecarloconstraineddesignmontealgorithmconstructiondesigns
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Space filling designs are central to studying complex systems in various areas of science. They are used for obtaining an overall understanding of the behaviour of the response over the input space, model construction and uncertainty quantification. In many applications a set of constraints are imposed over the inputs that result in a non-rectangular and sometimes non-convex input space. Many of the existing design construction techniques in the literature rely on a set of candidate points on the target space. Generating a sample on highly constrained regions can be a challenging task. We propose a sampling algorithm based on sequential Monte Carlo that is specifically designed to sample uniformly over constrained regions. In addition, a review of Monte Carlo based design algorithms is provided and the performance of the sampling algorithm as well as selected design methodology is illustrated via examples.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A Cloud-based Real-time Probabilistic Remaining Useful Life (RUL) Estimation using the Sequential Monte Carlo (SMC) Method

    cs.CE 2024-11 conditional novelty 3.0 of 10

    Cloud-based parallel SMC sampling estimates probabilistic remaining useful life in adhesive joints with accuracy similar to MCMC but roughly 36 times faster.

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