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A Chinese legal intelligent auxiliary discretionary adviser based on GA-BP NNs

机译:基于GA-BP NN的中国法律智能辅助全权顾问

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Purpose - This paper aims to build a legal intelligent auxiliary discretionary system for predicting the penalty and damage compensation values. After extensively considering current the characteristics of the current Chinese legal system, a practical legal intelligent auxiliary discretionary system based on genetic algorithm-backpropagation (GA-BP) neural network (NN) is proposed herein. Design/methodology/approach - An experiment is designed to analyze cases involving mental anguish compensation in medical disputes, and a Chinese legal intelligent auxiliary discretionary adviser system is built based on a GA-BP NN. Because BP neural networks perform well for nonlinear problems and GAs can improve their ability to find optimal values, and accelerate their convergence, a combined GA-BP algorithm is used. In addition, an ontology is used to reduce the semantic ambiguities and extract the implied semantic information. Findings - We confirm that a case-based legal intelligent auxiliary discretionary adviser system based on a GA-BP NN and ontology techniques has good performance in prediction. By predicting the mental anguish compensation values, the legal intelligent auxiliary discretionary adviser system can help judges to handle cases more quickly and ordinary people to discover the suggested compensation or penalty. In contrast to BP NN or SVM, the result seems more close to the actual compensation rate. Practical implications - Recently, smart court has been developed in China; the purpose of which is to build the legal advice system for improving judicial justice and reducing differences in sentencing. A practical legal advice system is an urgent requirement for the judiciary. Originality/value - This paper presents a study of a case-based legal intelligent auxiliary discretionary adviser system based on a GA-BP NN and ontology techniques. The findings offer advice to optimize legal intelligent auxiliary discretionary adviser systems for mental anguish compensation in medical disputes.
机译:目的-本文旨在建立一个法律智能辅助酌处系统,以预测罚金和损害赔偿额。在广泛考虑当前中国法律制度的特点之后,本文提出了一种基于遗传算法-反向传播(GA-BP)神经网络(NN)的实用法律智能辅助酌处系统。设计/方法/方法-设计一项实验以分析医疗纠纷中涉及精神痛苦赔偿的案件,并基于GA-BP NN构建了中国法律智能辅助酌处顾问系统。由于BP神经网络在解决非线性问题方面表现良好,并且GA可以提高其找到最佳值的能力并加速其收敛,因此使用了组合的GA-BP算法。另外,本体被用于减少语义歧义并提取隐含的语义信息。调查结果-我们确认,基于GA-BP神经网络和本体技术的基于案例的法律智能辅助酌处顾问系统在预测方面具有良好的表现。法律智能辅助酌处顾问系统通过预测精神痛苦补偿的价值,可以帮助法官更快地处理案件,并帮助普通人发现建议的补偿或罚款。与BP NN或SVM相比,结果似乎更接近实际补偿率。实际意义-最近,中国发展了智能法庭;其目的是建立法律咨询系统,以改善司法公正和减少量刑上的差异。切实可行的法律咨询系统是司法机关的迫切要求。原创性/价值-本文提出了基于GA-BP神经网络和本体技术的基于案例的法律智能辅助酌处顾问系统的研究。研究结果为优化法律智能辅助酌处顾问系统以解决医疗纠纷中的精神痛苦提供了建议。

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