AIAA AVIATION 2022 Forum 2022
DOI: 10.2514/6.2022-4037
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A mixed-categorical data-driven approach for prediction and optimization of hybrid discontinuous composites performance

Abstract: Surrogate models are an essential engineering tool and their popularity has increased recently due to the high computational cost of evaluating real-world simulations. However, most of these functions are described by mixed variables (continuous and categorical), which makes it harder to create accurate interpolation functions. This work builds a surrogate model from a given mixed data set, in order to quickly and accurately calculate the mechanical performance of hybrid discontinuous composites. Then, in orde… Show more

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Cited by 2 publications
(4 citation statements)
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“…The Gower distance based kernel dedicates one hyperparameter per categorical input variable [95,199]. Namely, for two given inputs c r ∈ F l and c s ∈ F l , the Hamming distance, or score, s between the i th component of c r and c s is defined as:…”
Section: Gower Distance Based Kernelmentioning
confidence: 99%
See 3 more Smart Citations
“…The Gower distance based kernel dedicates one hyperparameter per categorical input variable [95,199]. Namely, for two given inputs c r ∈ F l and c s ∈ F l , the Hamming distance, or score, s between the i th component of c r and c s is defined as:…”
Section: Gower Distance Based Kernelmentioning
confidence: 99%
“…SMT 2.0 introduces other enhancements, such as additional sampling procedures, new surrogate models, new Kriging kernels (and their derivatives), Kriging variance derivatives, and an adaptive criterion for high-dimensional problems. SMT 2.0 adds applications of Bayesian optimization (BO) with hierarchical and mixed variables or noisy co-Kriging that have been successfully applied to aircraft design [209], data fusion [51], and structural design [199]. The SMT 2.0 interface is more user-friendly and offers an improved and more detailed documentation for users and developers 1 .…”
Section: Motivation and Significancementioning
confidence: 99%
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