Debris flow modeling data using EDDA model
Description: This dataset contains the numerical simulation results and corresponding topographic data used in the study published in the paper: "Multi-task super-resolution deep learning overcomes computational bottlenecks in high-fidelity debris flow modeling".<
Description:
This dataset contains the numerical simulation results and corresponding topographic data used in the study published in the paper: “Multi-task super-resolution deep learning overcomes computational bottlenecks in high-fidelity debris flow modeling”.
The data is stored in GeoTIFF format and organized into a hierarchical folder structure based on the location and resolution of the debris flow simulation results. The repository includes data for the primary study area (Lantau) at multiple resolutions and a separate, independent test area (C210) for model inference validation.
1. Study Area: Lantau (lantau_*/)
Data for the Lantau Island, used primarily for model training and validation. It includes simulations at a fine resolution (5m) and two coarser resolutions (15m, 30m). Each subfolder contains the following raster files:
lantau_5m/(Fine-Grid Simulation Outputs):This directory stores the core simulation outputs at 5-meter resolution.
File Naming Convention:
c_catchment_id_d_time.tif(Debris Flow Depth) andc_catchment_id_v_time.tif(Debris Flow Velocity).Examples:
c_25_d_0.0.tif(Depth at catchment 25, t=0.0s),c_43_v_1320.0.tif(Velocity at catchment 43, t=1320.0s).
lantau_5m_mask/(Inundation Extent):Binary masks indicating the final inundation extent derived from the 5m simulations (values typically 0 for non-inundated and 1 for inundated cells).
lantau_5m_topo/(Topographic Derivatives):Input features for the deep learning model derived from the 5m DEM.
Files:
c_catchment_id_acc.tif(Flow Accumulation),c_catchment_id_ele.tif(Elevation),c_catchment_id_slp.tif(Slope),c_catchment_id_profile.tif(Profile Curvature), <code class="hyc-commo📤 Share this page
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Files are hosted on the source repository. Click download to access the full dataset.