A Database Engineered System for Big Data Analytics on Tornado Climatology
September 26, 2024 Β· Declared Dead Β· π International Database Engineering and Applications Symposium
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Authors
Fengfan Bian, Carson K. Leung, Piers Grenier, Harry Pu, Samuel Ning, Alfredo Cuzzocrea
arXiv ID
2409.17668
Category
cs.DB: Databases
Citations
1
Venue
International Database Engineering and Applications Symposium
Last Checked
4 months ago
Abstract
Recognizing the challenges with current tornado warning systems, we investigate alternative approaches. In particular, we present a database engi-neered system that integrates information from heterogeneous rich data sources, including climatology data for tornadoes and data just before a tornado warning. The system aids in predicting tornado occurrences by identifying the data points that form the basis of a tornado warning. Evaluation on US data highlights the advantages of using a classification forecasting recurrent neural network (RNN) model. The results highlight the effectiveness of our database engineered system for big data analytics on tornado climatology-especially, in accurately predict-ing tornado lead-time, magnitude, and location, contributing to the development of sustainable cities.
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