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GRACE: Gated Refinement for Accurate Causal Edge Discovery in High-Dimensional Time Series
arXiv:2606.23880v1 Announce Type: new Abstract: From climate teleconnections to gene regulation, modern time-series datasets encompass tens or hundreds of interacting variables, making causal discovery increasingly challenging. Constraint-based methods offer statistical rigor but their nonlinear CI tests are infeasible at scale, while score-based alternatives avoid CI testing but require arbitrary thresholds to binarize continuous edge scores. We propose GRACE ($\textbf{G}$ated $\textbf{R}$efine...
arXiv cs.LG
·Mohammad Fesanghary, Abhinav Havaldar
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