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Prison Term Prediction on Criminal Case Description with Deep Learning 被引量:3
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作者 Shang Li Hongli Zhang +4 位作者 Lin Ye Shen Su Xiaoding Guo Haining Yu Binxing Fang 《Computers, Materials & Continua》 SCIE EI 2020年第3期1217-1231,共15页
The task of prison term prediction is to predict the term of penalty based on textual fact description for a certain type of criminal case.Recent advances in deep learning frameworks inspire us to propose a two-step m... The task of prison term prediction is to predict the term of penalty based on textual fact description for a certain type of criminal case.Recent advances in deep learning frameworks inspire us to propose a two-step method to address this problem.To obtain a better understanding and more specific representation of the legal texts,we summarize a judgment model according to relevant law articles and then apply it in the extraction of case feature from judgment documents.By formalizing prison term prediction as a regression problem,we adopt the linear regression model and the neural network model to train the prison term predictor.In experiments,we construct a real-world dataset of theft case judgment documents.Experimental results demonstrate that our method can effectively extract judgment-specific case features from textual fact descriptions.The best performance of the proposed predictor is obtained with a mean absolute error of 3.2087 months,and the accuracy of 72.54%and 90.01%at the error upper bounds of three and six months,respectively. 展开更多
关键词 Neural networks prison term prediction criminal case text comprehension
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