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  1. Law Smells.Corinna Coupette, Dirk Hartung, Janis Beckedorf, Maximilian Böther & Daniel Martin Katz - 2023 - Artificial Intelligence and Law 31 (2):335-368.
    Building on the computer science concept of _code smells_, we initiate the study of _law smells_, i.e., patterns in legal texts that pose threats to the comprehensibility and maintainability of the law. With five intuitive law smells as running examples—namely, duplicated phrase, long element, large reference tree, ambiguous syntax, and natural language obsession—, we develop a comprehensive law smell taxonomy. This taxonomy classifies law smells by when they can be detected, which aspects of law they relate to, and how they (...)
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  • Patterns for legal compliance checking in a decidable framework of linked open data.Enrico Francesconi & Guido Governatori - 2022 - Artificial Intelligence and Law 31 (3):445-464.
    This paper presents an approach for legal compliance checking in the Semantic Web which can be effectively applied for applications in the Linked Open Data environment. It is based on modeling deontic norms in terms of ontology classes and ontology property restrictions. It is also shown how this approach can handle norm defeasibility. Such methodology is implemented by decidable fragments of OWL 2, while legal reasoning is carried out by available decidable reasoners. The approach is generalised by presenting patterns for (...)
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