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Collaborative Research: III: Small: An Information-Theoretic Framework for Explainable and Explanation-Assisted Graph Learning

US NSF grant open #nsf-2529284

Summary

Graphs are powerful tools for representing relationships in complex systems, from social networks to weather monitoring stations. Graph Neural Networks (GNNs) have emerged as effective methods for analyzing these interconnected systems, but their "black box" nature poses significant challenges in critical applications such as environmental monitoring, healthcare, and finance. This project develops a comprehensive framework for making GNN predictions explainable and trustworthy. The research addresses the urgent need for artificial intelligence systems that can not only make accurate prediction

Collaborative Research: III: Small: An Inf…
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