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Legal judgment prediction via multi-perspective bi-feedback network
Yang, Wenmian1,2; Jia, Weijia1,2; Zhou, Xiaojie1; Luo, Yutao1
2019
Conference Name28th International Joint Conference on Artificial Intelligence
Source PublicationIJCAI International Joint Conference on Artificial Intelligence
Volume2019-August
Pages4085-4091
Conference DateAUG 10-16, 2019
Conference PlaceMacao, PEOPLES R CHINA
Abstract

The Legal Judgment Prediction (LJP) is to determine judgment results based on the fact descriptions of the cases. LJP usually consists of multiple subtasks, such as applicable law articles prediction, charges prediction, and the term of the penalty prediction. These multiple subtasks have topological dependencies, the results of which affect and verify each other. However, existing methods use dependencies of results among multiple subtasks inefficiently. Moreover, for cases with similar descriptions but different penalties, current methods cannot predict accurately because the word collocation information is ignored. In this paper, we propose a Multi-Perspective Bi-Feedback Network with the Word Collocation Attention mechanism based on the topology structure among subtasks. Specifically, we design a multi-perspective forward prediction and backward verification framework to utilize result dependencies among multiple subtasks effectively. To distinguish cases with similar descriptions but different penalties, we integrate word collocations features of fact descriptions into the network via an attention mechanism. The experimental results show our model achieves significant improvements over baselines on all prediction tasks.

DOI10.24963/ijcai.2019/567
URLView the original
Indexed ByCPCI-S
Language英語English
WOS Research AreaComputer Science
WOS SubjectComputer Science, Artificial Intelligence ; Computer Science, Interdisciplinary Applications ; Computer Science, Theory & Methods
WOS IDWOS:000761735104033
Scopus ID2-s2.0-85074928626
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Cited Times [WOS]:78   [WOS Record]     [Related Records in WOS]
Document TypeConference paper
CollectionFaculty of Science and Technology
Corresponding AuthorJia, Weijia
Affiliation1.Department of Computer Science and Engineering, Shanghai Jiao Tong University, China
2.State Key Lab of IoT for Smart City, CIS, University of Macau, Macao
First Author AffilicationUniversity of Macau
Corresponding Author AffilicationUniversity of Macau
Recommended Citation
GB/T 7714
Yang, Wenmian,Jia, Weijia,Zhou, Xiaojie,et al. Legal judgment prediction via multi-perspective bi-feedback network[C], 2019, 4085-4091.
APA Yang, Wenmian., Jia, Weijia., Zhou, Xiaojie., & Luo, Yutao (2019). Legal judgment prediction via multi-perspective bi-feedback network. IJCAI International Joint Conference on Artificial Intelligence, 2019-August, 4085-4091.
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