On the Complexity of Inductively Learning Guarded Rules
Draghici, Andrei, Gottlob, Georg, Lanzinger, Matthias
–arXiv.org Artificial Intelligence
We investigate the computational complexity of mining guarded clauses from clausal datasets through the framework of inductive logic programming (ILP). We show that learning guarded clauses is NP-complete and thus one step below the $\sigma^P_2$-complete task of learning Horn clauses on the polynomial hierarchy. Motivated by practical applications on large datasets we identify a natural tractable fragment of the problem. Finally, we also generalise all of our results to $k$-guarded clauses for constant $k$.
arXiv.org Artificial Intelligence
Oct-7-2021
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- Europe > United Kingdom
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- North America > United States (0.46)
- Europe > United Kingdom
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- Research Report (0.84)
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