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CG2A: Conceptual Graphs Generation Algorithm

Abstract : Conceptual Graphs (CGs) are a formalism to represent knowledge. However producing a CG database is complex. To the best of our knowledge, existing methods do not fully use the expressivity of CGs. It is particularly troublesome as it is necessary to have CG databases to test and validate algorithms running on CGs. This paper proposes CG2A, an algorithm to build synthetic CGs exploiting most of their expressivity. CG2A takes as input constraints that constitute ontological knowledge including a vocabulary and a set of CGs with some label variables, called γ-CGs, as components of the generated CGs. Extensions also enable the automatic generation of the set of γ-CGs and vocabulary to ease the database generation and increase variability.
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https://hal-lirmm.ccsd.cnrs.fr/lirmm-03400751
Contributor : Adam Faci Connect in order to contact the contributor
Submitted on : Tuesday, October 26, 2021 - 4:45:38 PM
Last modification on : Tuesday, November 16, 2021 - 4:03:19 AM

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Adam Faci, Marie-Jeanne Lesot, Claire Laudy. CG2A: Conceptual Graphs Generation Algorithm. Joint Proceedings of the 19th World Congress of the International Fuzzy Systems Association (IFSA), the 12th Conference of the European Society for Fuzzy Logic and Technology (EUSFLAT), and the 11th International Summer School on Aggregation Operators (AGOP), Sep 2021, Bratislava, Slovakia. pp.63-70, ⟨10.2991/asum.k.210827.009⟩. ⟨lirmm-03400751⟩

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