Querying and Repairing Inconsistent Prioritized Knowledge Bases: Complexity Analysis and Links with Abstract Argumentation

Author:

Bienvenu Meghyn1,Bourgaux Camille2

Affiliation:

1. CNRS & University of Bordeaux, France

2. DI ENS, CNRS, ENS, PSL University, & Inria, Paris, France

Abstract

In this paper, we explore the issue of inconsistency handling over prioritized knowledge bases (KBs), which consist of an ontology, a set of facts, and a priority relation between conflicting facts. In the database setting, a closely related scenario has been studied and led to the definition of three different notions of optimal repairs (global, Pareto, and completion) of a prioritized inconsistent database. After transferring the notions of globally-, Pareto- and completion-optimal repairs to our setting, we study the data complexity of the core reasoning tasks: query entailment under inconsistency-tolerant semantics based upon optimal repairs, existence of a unique optimal repair, and enumeration of all optimal repairs. Our results provide a nearly complete picture of the data complexity of these tasks for ontologies formulated in common DL-Lite dialects. The second contribution of our work is to clarify the relationship between optimal repairs and different notions of extensions for (set-based) argumentation frameworks. Among our results, we show that Pareto-optimal repairs correspond precisely to stable extensions (and often also to preferred extensions), and we propose a novel semantics for prioritized KBs which is inspired by grounded extensions and enjoys favourable computational properties. Our study also yields some results of independent interest concerning preference-based argumentation frameworks.

Publisher

International Joint Conferences on Artificial Intelligence Organization

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Computing Repairs Under Functional and Inclusion Dependencies via Argumentation;Lecture Notes in Computer Science;2024

2. Selecting accepted assertions in partially ordered inconsistent DL-Lite knowledge bases;Journal of Applied Non-Classical Logics;2023-08-11

3. Tractable Closure-Based Possibilistic Repair for Partially Ordered DL-Lite Ontologies;Logics in Artificial Intelligence;2023

4. Characterizing the Possibilistic Repair for Inconsistent Partially Ordered Assertions;Information Processing and Management of Uncertainty in Knowledge-Based Systems;2022

5. Representing Vietnamese Traditional Dances and Handling Inconsistent Information;Information Processing and Management of Uncertainty in Knowledge-Based Systems;2022

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