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SlideDetect: Spatio-temporal landslide detection using a three-dimensional convolutional neural network

August 25, 2026

Landslides pose a serious and ongoing threat to both human lives and infrastructure worldwide; therefore, it is of interest to predict where and when landslides are likely to occur. Advances in machine learning techniques have spurred numerous studies aimed at estimating relative landslide propensity, but are limited to spatial (as opposed to temporal) prediction due to the sparsity of landslide timing data. We address this data gap by training SlideDetect, a 3-dimensional convolutional neural network (3D CNN), to identify landslides based on their spatial and temporal occurrence within multitemporal image stacks. We use an inventory of landsides triggered by the 2018 Hokkaido earthquake and two years of monthly composite optical imagery spanning this event. The model can identify not only landslide location but also landslide date with an area under the precision-recall curve (PR-AUC) of 0.84. We further present a new standard for presenting PR curve results that explicitly compares model performance at different confidence thresholds, allowing for clearer model evaluation and comparison. Our new approach to constraining landslide timing paired with this more consistent and objective method for evaluating model performance shows considerable promise, and with further application and testing, SlideDetect could enhance the data availability and tools needed to advance landslide hazard and risk assessments.

Publication Year 2026
Title SlideDetect: Spatio-temporal landslide detection using a three-dimensional convolutional neural network
DOI 10.1029/2025JH001091
Authors Max Sutton, Benjamin B. Mirus, George Hilley
Publication Type Article
Publication Subtype Journal Article
Series Title JGR Machine Learning and Computation
Index ID 70279348
Record Source USGS Publications Warehouse
USGS Organization Geologic Hazards Science Center - Landslides / Earthquake Geology
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