Test Time Training for Supervised Causal Learning 事件

PRODUCT_LAUNCH2026-05-29影响: MEDIUM

Test Time Training for Supervised Causal Learning arXiv:2605.30015v1 Announce Type: cross Abstract: Supervised Causal Learning (SCL) has shown promise in causal discovery by framing it as a supervised learning problem. However, it suffers from significant out-of-distribution generalization challenges. We reveal three limitations of previous SCL practices: a significant performance gap between synthetic benchmarks and real-world data, fragility to distribution shifts, and failure in compositiona

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