Instantiations and Computational Aspects of Non-Flat Assumption-based Argumentation

Tuomo Lehtonen, Anna Rapberger, Francesca Toni, Markus Ulbricht, Johannes P. Wallner

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

4 Citations (Scopus)

Abstract

Most existing computational tools for assumption-based argumentation (ABA) focus on so-called flat frameworks, disregarding the more general case. In this paper, we study an instantiation-based approach for reasoning in possibly non-flat ABA. We make use of a semantics-preserving translation between ABA and bipolar argumentation frameworks (BAFs). By utilizing compilability theory, we establish that the constructed BAFs will in general be of exponential size. To keep the number of arguments and computational cost low, we present three ways of identifying redundant arguments. Moreover, we identify fragments of ABA which admit a poly-sized instantiation. We propose two algorithmic approaches for reasoning in non-flat ABA; the first utilizes the BAF instantiation while the second works directly without constructing arguments. An empirical evaluation shows that the former outperforms the latter on many instances, reflecting the lower complexity of BAF reasoning. This result is in contrast to flat ABA, where direct approaches dominate instantiation-based solvers.
Original languageEnglish
Title of host publicationProceedings of the 33rd International Joint Conference on Artificial Intelligence, IJCAI 2024
EditorsKate Larson
PublisherIJCAI
Pages3457-3465
Number of pages9
ISBN (Electronic)978-1-956792-04-1
DOIs
Publication statusPublished - 2024
MoE publication typeA4 Conference publication
EventInternational Joint Conference on Artificial Intelligence - Jeju, Korea, Republic of
Duration: 3 Aug 20249 Aug 2024
Conference number: 33

Conference

ConferenceInternational Joint Conference on Artificial Intelligence
Abbreviated titleIJCAI
Country/TerritoryKorea, Republic of
CityJeju
Period03/08/202409/08/2024

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