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Boosting the Discovery of Interval Patterns Using SAT

  • Research Center
  • Université d'Artois

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

Abstract

Declarative pattern mining has seen significant advancements in recent years, particularly through the application of symbolic AI techniques on various data types, including binary, numerical, and graph data, etc. The core idea behind these approaches is to reformulate the task of pattern mining as a model enumeration problem in classical logic. These methods have been developed for their flexibility, allowing for easier incorporation of additional user constraints during the mining process. In this paper, we first present a symbolic approach for enumerating closed interval patterns using the propositional satisfiability problem (SAT). Then, by extending the SAT-based encoding of classical patterns with additional constraints to eliminate redundancy, our method proves to be highly efficient. Finally, experimental evaluations on various datasets demonstrate that our SAT-based framework is highly competitive with state-of-the-art approaches, even on large numerical databases.

Original languageEnglish
Title of host publicationManagement of Digital EcoSystems - 16th International Conference, MEDES 2024, Proceedings
EditorsRichard Chbeir, Ernesto Damiani, Schahram Dustdar, Yannis Manolopoulos, Elio Masciari, Evaggelia Pitoura, Antonio Rinaldi
PublisherSpringer Science and Business Media Deutschland GmbH
Pages267-281
Number of pages15
ISBN (Print)9783031935978
DOIs
Publication statusPublished - 1 Jan 2026
Event16th International Conference on Management of Digital EcoSystems, MEDES 2024 - Naples, Italy
Duration: 18 Nov 202420 Nov 2024

Publication series

NameCommunications in Computer and Information Science
Volume2518 CCIS
ISSN (Print)1865-0929
ISSN (Electronic)1865-0937

Conference

Conference16th International Conference on Management of Digital EcoSystems, MEDES 2024
Country/TerritoryItaly
CityNaples
Period18/11/2420/11/24

Keywords

  • Data mining
  • Interval pattern
  • Propositional satisfiability

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