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  Learning Linear Temporal Properties

Neider, D., & Gavran, I. (2018). Learning Linear Temporal Properties. Retrieved from http://arxiv.org/abs/1806.03953.

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arXiv:1806.03953.pdf (Preprint), 252KB
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 Urheber:
Neider, Daniel1, Autor           
Gavran, Ivan1, Autor           
Affiliations:
1Group R. Majumdar, Max Planck Institute for Software Systems, Max Planck Society, ou_2105292              

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Schlagwörter: Computer Science, Logic in Computer Science, cs.LO,Computer Science, Learning, cs.LG
 Zusammenfassung: We present two novel algorithms for learning formulas in Linear Temporal
Logic (LTL) from examples. The first learning algorithm reduces the learning
task to a series of satisfiability problems in propositional Boolean logic and
produces a smallest LTL formula (in terms of the number of subformulas) that is
consistent with the given data. Our second learning algorithm, on the other
hand, combines the SAT-based learning algorithm with classical algorithms for
learning decision trees. The result is a learning algorithm that scales to
real-world scenarios with hundreds of examples, but can no longer guarantee to
produce minimal consistent LTL formulas. We compare both learning algorithms
and demonstrate their performance on a wide range of synthetic benchmarks.
Additionally, we illustrate their usefulness on the task of understanding
executions of a leader election protocol.

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Sprache(n): eng - English
 Datum: 2018-06-112018-09-202018
 Publikationsstatus: Online veröffentlicht
 Seiten: 10 p.
 Ort, Verlag, Ausgabe: -
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 Art der Begutachtung: -
 Identifikatoren: arXiv: 1806.03953
URI: http://arxiv.org/abs/1806.03953
BibTex Citekey: Neider_arXiv1806.03953
 Art des Abschluß: -

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