Abstract
This study aims at predicting the outcomes of legal cases based on the textual content of judicial decisions. We present a new corpus of Italian documents, consisting of 226 annotated decisions on Value Added Tax by Regional Tax law commissions. We address the task of predicting whether a request is upheld or rejected in the final decision. We employ traditional classifiers and NLP methods to assess which parts of the decision are more informative for the task.
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Galli, F., Grundler, G., Fidelangeli, A., Galassi, A., Lagioia, F., Palmieri, E., … Torroni, P. (2022). Predicting Outcomes of Italian VAT Decisions. In Frontiers in Artificial Intelligence and Applications (Vol. 362, pp. 188–193). IOS Press BV. https://doi.org/10.3233/FAIA220465
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