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Explainable Reasoning with Legal Big Data: A Layered Framework
Livio Robaldo ,
Grigoris Antoniou,
Katie Atkinson,
George Baryannis,
Sotiris Batsakis,
Luigi Di Caro,
Guido Governatori,
Giovanni Siragusa
Journal of Applied Logics - IfCoLog Journal, Volume: 9, Issue: 4
Swansea University Author: Livio Robaldo
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Abstract
Knowledge representation and reasoning in the legal domain has primarily focused on case studies where knowledge and data can fit in main memory. However, this assumption no longer applies in the era of big data, where large amounts of data are generated daily. This paper discusses new opportunities...
Published in: | Journal of Applied Logics - IfCoLog Journal |
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ISSN: | 2631-9810 2631-9829 |
Published: |
College Publication
2022
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Online Access: |
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URI: | https://cronfa.swan.ac.uk/Record/cronfa60445 |
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Abstract: |
Knowledge representation and reasoning in the legal domain has primarily focused on case studies where knowledge and data can fit in main memory. However, this assumption no longer applies in the era of big data, where large amounts of data are generated daily. This paper discusses new opportunities and challenges that emerge in relation to reasoning with legal big data and the concepts of volume, velocity, variety and veracity. A four-layer legal big data framework is proposed to manage the complete lifecycle of legal big data from sourcing, processing and storage, to reasoning, analysis and consumption. Within each layer, a number of relevant future research directions are also identified, which can facilitate the realisation of knowledge-rich legal big datasolutions. |
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Item Description: |
https://www.collegepublications.co.uk/ifcolog/?00056 |
College: |
Faculty of Humanities and Social Sciences |
Issue: |
4 |