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Introducing Graph Learning over Polytopic Uncertain Graph

2024-04-12 · Masako Kishida, Shunsuke Ono

This extended abstract introduces a class of graph learning applicable to cases where the underlying graph has polytopic uncertainty, i.e., the graph is not exactly known, but its parameters or properties vary within a known range. By incorporating this assumption that the graph lies in a polytopic set into two established graph learning frameworks, we find that our approach yields better results with less computation.

📄 PDF Abstract BibTeX arXiv:2404.08176

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Graph Learning

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SET Dynamic Sparse Training method where weight mask is updated randomly periodically

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