Using Graph-Enhanced Deep Reinforcement Learning for Distribution Network Fault Recovery
Fault recovery in distribution networks is a complex, high-dimensional decision-making task characterized by partial observability, dynamic topology, and strong interdependencies among components. To address these challenges, this paper proposes a graph-based multi-agent deep reinforcement learning...
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| Hoofdauteurs: | , , |
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| Formaat: | Artikel |
| Taal: | Engels |
| Gepubliceerd in: |
MDPI AG
2025-06-01
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| Reeks: | Machines |
| Onderwerpen: | |
| Online toegang: | https://www.mdpi.com/2075-1702/13/7/543 |
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