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Simon Ståhlberg

3 accepted papers

2025

Learning More Expressive General Policies for Classical Planning Domains

AAAI 2025technical

GNN-based approaches for learning general policies across planning domains are limited by the expressive power of C2, namely; first-order logic with two variables and counting. This limitation can be overcomed by transitioning to k-GNNs, for k=3, wherein object embeddings are substituted with triple…

Cited by 0SourcePDFScholar
2021

Learning Generalized Unsolvability Heuristics for Classical Planning

IJCAI 2021poster

Recent work in classical planning has introduced dedicated techniques for detecting unsolvable states, i.e., states from which no goal state can be reached. We approach the problem from a generalized planning perspective and learn first-order-like formulas that characterize unsolvability for entire…

Cited by 24SourcePDFScholar