A Prompt Tuning Approach Based on Pre-trained Cross-City Graph Neural Networks for Zero-Shot Flow Generation
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We introduce a generalizable flow generation modeling approach that leverages an efficient pre-trained mobility model to learn generic mobility prior knowledge across different source cities and a light-weight graph prompt learning scheme to fine tune the pre-trained model for flow generation. We provide an implementation using the U.S. COVID-19 mobility flow dataset as an example.
创建时间:
2026-03-03



