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Deep learning for detecting and explaining unfairness in consumer contracts

Contributo in Atti di convegno
Data di Pubblicazione:
2019
Citazione:
Deep learning for detecting and explaining unfairness in consumer contracts / Lagioia, F., Ruggeri, F., Drazewski, K., Lippi, M., Micklitz, H.-W., Torroni, P., Sartor, G.. - 322:(2019), pp. 43-52. (32nd International Conference on Legal Knowledge and Information Systems, JURIX 2019 Artificial Intelligence Department of the Technical University of Madrid, esp 2019) [10.3233/FAIA190305].
Abstract:
Consumer contracts often contain unfair clauses, in apparent violation of the relevant legislation. In this paper we present a new methodology for evaluating such clauses in online Terms of Services. We expand a set of tagged documents (terms of service), with a structured corpus where unfair clauses are liked to a knowledge base of rationales for unfairness, and experiment with machine learning methods on this expanded training set. Our experimental study is based on deep neural networks that aim to combine learning and reasoning tasks, one major example being Memory Networks. Preliminary results show that this approach may not only provide reasons and explanations to the user, but also enhance the automated detection of unfair clauses.
Tipologia CRIS:
Relazione in Atti di Convegno
Keywords:
Deep learning; Memory networks; Unfair clause detection
Elenco autori:
Lagioia, F.; Ruggeri, F.; Drazewski, K.; Lippi, M.; Micklitz, H. -W.; Torroni, P.; Sartor, G.
Link alla scheda completa:
https://iris.unimore.it/handle/11380/1215130
Link al Full Text:
https://iris.unimore.it//retrieve/handle/11380/1215130/288473/Jurix2019.pdf
Titolo del libro:
LEGAL KNOWLEDGE AND INFORMATION SYSTEMS (JURIX 2019)
Pubblicato in:
FRONTIERS IN ARTIFICIAL INTELLIGENCE AND APPLICATIONS
Journal
FRONTIERS IN ARTIFICIAL INTELLIGENCE AND APPLICATIONS
Series
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