Papers with graph dual-masked module

1 papers
Graph Representation Learning in Hyperbolic Space via Dual-Masked (2025.coling-main)

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Challenge: Existing MR-based methods do not fully consider deep node and structural information.
Approach: They propose a graph dual-masked self-supervised graph representation learning framework in hyperbolic space that masks nodes and edges and performs node aggregation.
Outcome: The proposed method is superior in downstream tasks such as node classification and link prediction.

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