Cross-view self-supervised heterogeneous graph representation learning.

Danfeng Zhao1, Yanhao Chen1, Wei Song1

  • 1College of Information Technology, Shanghai Ocean University, Shanghai, PR China.

Summary

This study introduces an enhanced graph-level cross-attention mechanism for heterogeneous graph neural networks (HGNNs) to improve multi-view integration. The novel approach boosts performance in node classification and clustering tasks.

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