14 citations · 30 across the 3 of their papers we have counts for
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cs.LG2021★ 14 cited
GCExplainer: Human-in-the-Loop Concept-based Explanations for Graph Neural Networks
Lucie Charlotte Magister, Dmitry Kazhdan, Vikash Singh +1
While graph neural networks (GNNs) have been shown to perform well on graph-based data from a variety of fields, they suffer from a lack of transparency and accountability, which h…
cs.LG2019★ 13 cited
Towards Probabilistic Generative Models Harnessing Graph Neural Networks for Disease-Gene Prediction
Vikash Singh, Pietro Lio'
Disease-gene prediction (DGP) refers to the computational challenge of predicting associations between genes and diseases. Effective solutions to the DGP problem have the potential…