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Yulian Yang

1 accepted papers

2026

Invariant Graph Representations for Continuous-Time Dynamic Graphs Under Distribution Shifts

IJCAI 2026

Continuous-Time Dynamic Graphs (CTDGs) enable fine-grained modeling of evolving relational systems. However, most existing CTDG representation learning methods are tailored to in-distribution settings and exhibit limited robustness under out-of-distribution (OOD) shifts. Although recent causal appro

Cited by 0Scholar