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Predicting wind pressures around circular cylinders using machine learning techniques

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arxiv 1901.06752 v1 pith:GBEVY3SA submitted 2019-01-21 cs.LG physics.flu-dynstat.ML

classification cs.LGphysics.flu-dynstat.ML
keywords windpressuresaroundcircularcylindersmodelsgbrtlearning
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Numerous studies have been carried out to measure wind pressures around circular cylinders since the early 20th century due to its engineering significance. Consequently, a large amount of wind pressure data sets have accumulated, which presents an excellent opportunity for using machine learning (ML) techniques to train models to predict wind pressures around circular cylinders. Wind pressures around smooth circular cylinders are a function of mainly the Reynolds number (Re), turbulence intensity (Ti) of the incident wind, and circumferential angle of the cylinder. Considering these three parameters as the inputs, this study trained two ML models to predict mean and fluctuating pressures respectively. Three machine learning algorithms including decision tree regressor, random forest, and gradient boosting regression trees (GBRT) were tested. The GBRT models exhibited the best performance for predicting both mean and fluctuating pressures, and they are capable of making accurate predictions for Re ranging from 10^4 to 10^6 and Ti ranging from 0% to 15%. It is believed that the GBRT models provide very efficient and economical alternative to traditional wind tunnel tests and computational fluid dynamic simulations for determining wind pressures around smooth circular cylinders within the studied Re and Ti range.

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    cs.LG 2019-08 conditional novelty 6.0 of 10

    A GAN trained on 30% of the TPU interference database predicts mean and fluctuating pressure coefficients on a tall building for unseen neighboring-building positions and wind angles.

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