Revealing the dynamics and multidimensional resilience of rainstorm-flood cascade disasters in mountain valley cities: An interpretable machine learning case study from Southwestern China
Key Points
Resilience is critical to managing flood disasters effectively in mountain valley cities, as revealed by the analysis.
The study identifies machine learning as a key tool for interpreting complex disaster dynamics across various locations.
Assessment used interpretable machine learning algorithms to predict and analyze flood risks in specific flood-prone areas.
Understanding these dynamics may enable better preparedness measures and response strategies for future floods.
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Revealing the dynamics and multidimensional resilience of rainstorm-flood cascade disasters in mountain valley cities: An interpretable machine learning case study from Southwestern China | Synapse