A New Prediction System Based on Self-Growth Belief Rule Base with Interpretability Constraints

被引:1
|
作者
Li, Yingmei [1 ]
Han, Peng [1 ]
He, Wei [1 ]
Zhang, Guangling [1 ]
Wei, Hongwei [1 ]
Zhao, Boying [1 ]
机构
[1] Harbin Normal Univ, Sch Comp Sci & Informat Engn, Harbin 150025, Peoples R China
来源
CMC-COMPUTERS MATERIALS & CONTINUA | 2023年 / 75卷 / 02期
基金
黑龙江省自然科学基金;
关键词
Belief rule base; evidence reasoning; interpretability optimization; prediction system; INFERENCE; KNOWLEDGE;
D O I
10.32604/cmc.2023.037686
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Prediction systems are an important aspect of intelligent decisions. In engineering practice, the complex system structure and the external environment cause many uncertain factors in the model, which influence the modeling accuracy of the model. The belief rule base (BRB) can implement nonlinear modeling and express a variety of uncertain information, including fuzziness, ignorance, randomness, etc. However, the BRB system also has two main problems: Firstly, modeling methods based on expert knowledge make it difficult to guarantee the model's accuracy. Secondly, interpretability is not considered in the optimization process of current research, resulting in the destruction of the interpretability of BRB. To balance the accuracy and interpretability of the model, a self-growth belief rule base with interpretability constraints (SBRB-I) is proposed. The reasoning process of the SBRB-I model is based on the evidence reasoning (ER) approach. Moreover, the self-growth learning strategy ensures effective cooperation between the datadriven model and the expert system. A case study showed that the accuracy and interpretability of the model could be guaranteed. The SBRB-I model has good application prospects in prediction systems.
引用
收藏
页码:3761 / 3780
页数:20
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