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引用本文:���,��ƽ��,����,�����.��˹ͼģ�͵Ļ����������Ľ���IPSP�㷨[J].应用概率统计,2018,34(3):319-330.
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An Improved IPSP Procedure Using Junction Tree for Gaussian Graphical Models
SUN Jubo,XU Pingfeng,SHAN Na,TANG Manlai.An Improved IPSP Procedure Using Junction Tree for Gaussian Graphical Models[J].Chinese Journal of Applied Probability and Statisties,2018,34(3):319-330.
Authors:SUN Jubo  XU Pingfeng  SHAN Na  TANG Manlai
Institution:School of Applied Sciences, Jilin Engineering Normal University, Changchun, 130052, China; Department of Statistics, Changchun University of Technology, Changchun, 130012, China; School of Psychology, Northeast Normal University, Changchun, 130024, China; Department of Mathematics and Statistics, Hang; Seng Management College, Hong Kong
Abstract:The IPSP algorithm is an efficient algorithm for computing maximum likelihood estimation of Gaussian graphical models. It first divides clique marginals of graphical models into several groups, and then it adjusts clique marginals in each group locally. This paper uses the IIPS algorithm on junction tree to replace local adjustment on each group in the IPSP algorithm and propose a resulting algorithm called IPSP-JT to reduce the complexity of the IPSP algorithm. Moreover, we give a graph with minimum edges used by IIPS to adjust locally, and we prove its existence and uniqueness and construct a local junction tree. Numerical experiments show that the IPSP-JT algorithm runs faster than the IPSP algorithm for large Gaussian graphical models.
Keywords:iterative proportional scaling procedure  Markov property  triangulation  running intersection property  junction tree  
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