Machine Learning for Simulation of Urban Heat Island Dynamics Based on Large-Scale Meteorological Conditions
Mikhail Varentsov,
Mikhail Krinitskiy,
Victor Stepanenko
Abstract:This study considers the problem of approximating the temporal dynamics of the urban-rural temperature difference (ΔT) in Moscow megacity using machine learning (ML) models and predictors characterizing large-scale weather conditions. We compare several ML models, including random forests, gradient boosting, support vectors, and multi-layer perceptrons. These models, trained on a 21-year (2001–2021) dataset, successfully capture the diurnal, synoptic-scale, and seasonal variations of the observed ΔT based on p… Show more
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