DocumentCode :
3423789
Title :
On designing approximate inference algorithms for multiply sectioned Bayesian networks
Author :
Jin, Karen H. ; Wu, Dan ; Wu, Libing
Author_Institution :
Sch. of Comput. Sci., Univ. of Windsor, Windsor, ON, Canada
fYear :
2009
fDate :
17-19 Aug. 2009
Firstpage :
294
Lastpage :
299
Abstract :
An increasing number of applications require cooperative agents to reason about the state of an distributed uncertainty domain. However, inference process of such system could become overly slow for practical applications, and there has been significant interest in developing faster approximation techniques. In this paper, we focus on the existing MSBN models for cooperative reasoning in multi-agent environments. We show that, while the MSBNs provide a framework for exact inference, existing algorithms are usually not feasible in larger problem domains. Therefore, we investigate the issues related to the design of efficient inference algorithm for the MSBN model. We then propose a suite of algorithms for approximate multi-agent probabilistic reasoning in MSBNs. Our approach includes an MSBN subnet calibration process and distributed stochastic sampling on MSBN LJFs.
Keywords :
belief networks; inference mechanisms; multi-agent systems; uncertainty handling; approximate inference algorithm; approximate multiagent probabilistic reasoning; approximation techniques; cooperative agents; cooperative reasoning; distributed stochastic sampling; distributed uncertainty domain; multiply sectioned Bayesian networks; subnet calibration process; Algorithm design and analysis; Bayesian methods; Calibration; Clustering algorithms; Distributed computing; Inference algorithms; Probability distribution; Sampling methods; Stochastic processes; Tree graphs; MSBN; Multi-agent probability reasoning; stochastic sampling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Granular Computing, 2009, GRC '09. IEEE International Conference on
Conference_Location :
Nanchang
Print_ISBN :
978-1-4244-4830-2
Type :
conf
DOI :
10.1109/GRC.2009.5255111
Filename :
5255111
Link To Document :
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