JOURNAL ARTICLE

Upper‐Lower Bounds Candidate Sets Searching Algorithm for Bayesian Network Structure Learning

Guangyi LiuOu LiDalong ZhangTao Song

Year: 2014 Journal:   Mathematical Problems in Engineering Vol: 2014 (1)   Publisher: Hindawi Publishing Corporation

Abstract

Bayesian network is an important theoretical model in artificial intelligence field and also a powerful tool for processing uncertainty issues. Considering the slow convergence speed of current Bayesian network structure learning algorithms, a fast hybrid learning method is proposed in this paper. We start with further analysis of information provided by low‐order conditional independence testing, and then two methods are given for constructing graph model of network, which is theoretically proved to be upper and lower bounds of the structure space of target network, so that candidate sets are given as a result; after that a search and scoring algorithm is operated based on the candidate sets to find the final structure of the network. Simulation results show that the algorithm proposed in this paper is more efficient than similar algorithms with the same learning precision.

Keywords:
Bayesian network Algorithm Computer science Bayesian probability Artificial intelligence Machine learning Mathematics

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Topics

Bayesian Modeling and Causal Inference
Physical Sciences →  Computer Science →  Artificial Intelligence
Data Mining Algorithms and Applications
Physical Sciences →  Computer Science →  Information Systems
Data Management and Algorithms
Physical Sciences →  Computer Science →  Signal Processing

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