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Abdullah Shaik

1 paper indexed

arxivcs.LG2026-07-03

Graph Classification via Network Usable Information: From Representation Evaluation to Structure Selection

Abdullah Shaik, Anwar Said

We propose NetinfoGC, a framework for graph classification that extends the Network Usable Information (NUI) paradigm to graph-level learning. Unlike conventional graph neural network approaches that rely on end-to-end training of black-box embeddings, NetinfoGC constructs a fami…

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