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Adaptive Graph Learning with Transformer for Multi-Reservoir Inflow Prediction

  • Pengfei Hu
  • , Ming Fan
  • , Xiaoxue Han
  • , Chang Lu
  • , Wei Zhang
  • , Hyun Kang
  • , Yue Ning
  • , Dan Lu
  • Stevens Institute of Technology
  • Oak Ridge National Laboratory

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Reservoir inflow prediction is crucial for water resource management, yet existing approaches mainly focus on single-reservoir models that ignore spatial dependencies among interconnected reservoirs. We introduce AdaTrip as an adaptive, time-varying graph learning framework for multi-reservoir inflow forecasting. AdaTrip constructs dynamic graphs where reservoirs are nodes with directed edges reflecting hydrological connections, employing attention mechanisms to automatically identify crucial spatial and temporal dependencies. Evaluation on thirty reservoirs in the Upper Colorado River Basin demonstrates superiority over existing baselines, with improved performance for reservoirs with limited records through parameter sharing. Additionally, AdaTrip provides interpretable attention maps at edge and time-step levels, offering insights into hydrological controls to support operational decision-making. Our code is available at https://github.com/humphreyhuu/AdaTrip.

Original languageEnglish
Title of host publicationProceedings - 25th IEEE International Conference on Data Mining Workshops, ICDMW 2025
Pages827-835
Number of pages9
ISBN (Electronic)9798331581329
DOIs
StatePublished - 2025
Event25th IEEE International Conference on Data Mining Workshops, ICDMW 2025 - Washington, United States
Duration: 12 Nov 202515 Nov 2025

Publication series

NameIEEE International Conference on Data Mining Workshops, ICDMW
ISSN (Print)2375-9232
ISSN (Electronic)2375-9259

Conference

Conference25th IEEE International Conference on Data Mining Workshops, ICDMW 2025
Country/TerritoryUnited States
CityWashington
Period12/11/2515/11/25

Keywords

  • Adaptive Graph
  • Explainable Machine Learning
  • Graph Neural Network
  • Hydrology
  • Reservoir Inflow

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