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Integrity report for HyperGCN: A New Method of Training Graph Convolutional Networks on Hypergraphs

A machine-verified record of the checks Pith has run against this paper: detector runs, findings, signed bundle events, and canonical identifiers.

arXiv:1809.02589 · pith:2018:SIM73HZZUR2BXRYJVXXJ6SPT3E

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Paper page arXiv integrity.json bundle.json

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Findings

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Signed record

The machine-readable record for this paper lives at /pith/SIM73HZZ/integrity.json. Pith Number bundles also include signed pith.integrity.v1 events where a Pith Number exists.