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  1. Modeling artificial agents’ actions in context – a deontic cognitive event ontology.Miroslav Vacura - 2020 - Applied ontology 15 (4):493-527.
    Although there have been efforts to integrate Semantic Web technologies and artificial agents related AI research approaches, they remain relatively isolated from each other. Herein, we introduce a new ontology framework designed to support the knowledge representation of artificial agents’ actions within the context of the actions of other autonomous agents and inspired by standard cognitive architectures. The framework consists of four parts: 1) an event ontology for information pertaining to actions and events; 2) an epistemic ontology containing facts about (...)
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  • Populating legal ontologies using semantic role labeling.Llio Humphreys, Guido Boella, Leendert van der Torre, Livio Robaldo, Luigi Di Caro, Sepideh Ghanavati & Robert Muthuri - 2020 - Artificial Intelligence and Law 29 (2):171-211.
    This article seeks to address the problem of the ‘resource consumption bottleneck’ of creating legal semantic technologies manually. It describes a semantic role labeling based information extraction system to extract definitions and norms from legislation and represent them as structured norms in legal ontologies. The output is intended to help make laws more accessible, understandable, and searchable in a legal document management system.
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  • Thirty years of Artificial Intelligence and Law: Editor’s Introduction.Trevor Bench-Capon - 2022 - Artificial Intelligence and Law 30 (4):475-479.
    The first issue of _Artificial Intelligence and Law_ journal was published in 1992. This special issue marks the 30th anniversary of the journal by reviewing the progress of the field through thirty commentaries on landmark papers and groups of papers from that journal.
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  • Unsupervised and supervised text similarity systems for automated identification of national implementing measures of European directives.Rohan Nanda, Giovanni Siragusa, Luigi Di Caro, Guido Boella, Lorenzo Grossio, Marco Gerbaudo & Francesco Costamagna - 2019 - Artificial Intelligence and Law 27 (2):199-225.
    The automated identification of national implementations of European directives by text similarity techniques has shown promising preliminary results. Previous works have proposed and utilized unsupervised lexical and semantic similarity techniques based on vector space models, latent semantic analysis and topic models. However, these techniques were evaluated on a small multilingual corpus of directives and NIMs. In this paper, we utilize word and paragraph embedding models learned by shallow neural networks from a multilingual legal corpus of European directives and national legislation (...)
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  • Thirty years of artificial intelligence and law: the third decade.Serena Villata, Michal Araszkiewicz, Kevin Ashley, Trevor Bench-Capon, L. Karl Branting, Jack G. Conrad & Adam Wyner - 2022 - Artificial Intelligence and Law 30 (4):561-591.
    The first issue of Artificial Intelligence and Law journal was published in 1992. This paper offers some commentaries on papers drawn from the Journal’s third decade. They indicate a major shift within Artificial Intelligence, both generally and in AI and Law: away from symbolic techniques to those based on Machine Learning approaches, especially those based on Natural Language texts rather than feature sets. Eight papers are discussed: two concern the management and use of documents available on the World Wide Web, (...)
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  • On the concept of relevance in legal information retrieval.Marc van Opijnen & Cristiana Santos - 2017 - Artificial Intelligence and Law 25 (1):65-87.
    The concept of ‘relevance’ is crucial to legal information retrieval, but because of its intuitive understanding it goes undefined too easily and unexplored too often. We discuss a conceptual framework on relevance within legal information retrieval, based on a typology of relevance dimensions used within general information retrieval science, but tailored to the specific features of legal information. This framework can be used for the development and improvement of legal information retrieval systems.
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  • The European Legal Taxonomy Syllabus: A multi-lingual, multi-level ontology framework to untangle the web of European legal terminology.Gianmaria Ajani, Guido Boella, Luigi di Caro, Livio Robaldo, Llio Humphreys, Sabrina Praduroux, Piercarlo Rossi & Andrea Violato - 2016 - Applied ontology 11 (4):325-375.
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  • Ontology-based information extraction for juridical events with case studies in Brazilian legal realm.Denis Andrei de Araujo, Sandro José Rigo & Jorge Luis Victória Barbosa - 2017 - Artificial Intelligence and Law 25 (4):379-396.
    The number of available legal documents has presented an enormous growth in recent years, and the digital processing of such materials is prompting the necessity of systems that support the automatic relevant information extraction. This work presents a system for ontology-based information extraction from natural language texts, able to identify a set of legal events. The system is based on an innovative methodology based on domain ontology of legal events and a set of linguistic rules, integrated through inference mechanism, resulting (...)
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  • Formalizing GDPR Provisions in Reified I/O Logic: The DAPRECO Knowledge Base.Livio Robaldo, Cesare Bartolini, Monica Palmirani, Arianna Rossi, Michele Martoni & Gabriele Lenzini - 2020 - Journal of Logic, Language and Information 29 (4):401-449.
    The DAPRECO knowledge base is the main outcome of the interdisciplinary project bearing the same name. It is a repository of rules written in LegalRuleML, an XML formalism designed to be a standard for representing the semantic and logical content of legal documents. The rules represent the provisions of the General Data Protection Regulation, the new Regulation that is significantly affecting the digital market in the European Union and beyond. The DAPRECO knowledge base builds upon the Privacy Ontology, which provides (...)
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