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FOCUS on Contamination: Hydrology-Informed Noise-Aware Learning for Geospatial PFAS Mapping

About

Per- and polyfluoroalkyl substances (PFAS) are persistent environmental contaminants with significant public health impacts, yet large-scale monitoring remains severely limited due to the high cost and logistical challenges of field sampling. The lack of samples leads to difficulty simulating their spread with physical models and limited scientific understanding of PFAS transport in surface waters. Yet, rich geospatial and satellite-derived data describing land cover, hydrology, and industrial activity are widely available. We introduce FOCUS, a geospatial deep learning framework for PFAS contamination mapping that integrates sparse PFAS observations with large-scale environmental context, including priors derived from hydrological connectivity, land cover, source proximity, and sampling distance. These priors are integrated into a principled, noise-aware loss, yielding a robust training objective under sparse labels. Across extensive ablations, robustness analyses, and real-world validation, FOCUS consistently outperforms baselines including sparse segmentation, Kriging, and pollutant transport simulations, while preserving spatial coherence and scalability over large regions. Our results demonstrate how AI can support environmental science by providing screening-level risk maps that prioritize follow-up sampling and help connect potential sources to surface-water contamination patterns in the absence of complete physical models.

Jowaria Khan, Alexa Friedman, Sydney Evans, Rachel Klein, Runzi Wang, Katherine E. Manz, Kaley Beins, David Q. Andrews, Elizabeth Bondi-Kelly• 2025

Related benchmarks

TaskDatasetResultRank
Computational EfficiencyPFAS Contamination 1 km² area (test)
Feature Extraction Time4.7
2
Computational EfficiencyPFAS Contamination Northern Michigan (NM) (test)
Feature Extraction Time3.2
2
PFAS contamination predictionMPART fish dataset 2019 (independent val)
Accuracy85
1
Ternary ClassificationFish Tissue Samples 2008
Accuracy55
1
Ternary ClassificationFish Tissue Samples 2019
Accuracy72
1
Ternary ClassificationFish Tissue Samples 2022
Accuracy65
1
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