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- W4280599789 abstract "Rainstorm prediction is of considerable importance for a wide range of applications, such as weather forecasting, disaster management, and flood monitoring. Predicting rare and extreme rainstorm events is challenging because only sparse historical samples are available for training. Additionally, rainstorm events are caused by many complex meteorological factors, involving heterogeneous meteorological observations. The interactions between these factors are also difficult to handle when making predictions. To address these challenges, we propose an integrated deep learning-driven prediction method based on adaptive attributed spatio-temporal affinities between spatio-temporal nodes, including spatio-temporal proximity and multi-dimensional meteorological attribute similarity using graph embedding. Based on the learned spatio-temporal affinity matrices, we apply graph convolutional networks to implement non-linear predictions. In particular, we develop an integrated loss function to address the class imbalance caused by rare rainstorm events. Our empirical evaluation results show that the proposed prediction method outperforms several competing state-of-the-art methods on two rainstorm datasets. We attribute the performance improvements of the proposed method to its ability to capture complex rainstorm development patterns using limited historical rainstorm samples and using heterogeneous spatio-temporal information." @default.
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- W4280599789 date "2022-06-12" @default.
- W4280599789 modified "2023-10-16" @default.
- W4280599789 title "Rainstorm prediction via a deep spatio-temporal-attributed affinity network" @default.
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- W4280599789 doi "https://doi.org/10.1080/10106049.2022.2076914" @default.
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