Graph-Conditioned Mixture of Graph Neural Network Experts for Traffic Forecasting 事件
PRODUCT_LAUNCH2026-06-01影响: MEDIUM
Graph-Conditioned Mixture of Graph Neural Network Experts for Traffic Forecasting arXiv:2605.30486v1 Announce Type: cross Abstract: Spatio-temporal forecasting on sensor graphs is commonly tackled with a single backbone architecture applied uniformly across all nodes, although graph regions can exhibit different dynamics. Road segments differ in functional class, structure, and traffic behavior, suggesting that node-wise expert specialization can be useful. We propose GC-MoE, a graph-conditione
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Graph-Conditioned Mixture of Graph Neural Network Experts for Traffic Forecasting
ArXiv CS.AI2026-06-01