Volume 5 Number 4 (Apr. 2010)
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JCP 2010 Vol.5(4): 654-661 ISSN: 1796-203X
doi: 10.4304/jcp.5.4.654-661

Classifying Documents with Maximum Likelihood Approximation of the Dirichlet Multinomial Gibbs Model

Shibin Zhou, Zhao Cao, and Yushu Liu
School of Computer Science and Technology Beijing Institute of Technology Beijing, 100081, P.R. China

Abstract—In the text analysis, the Dirichlet compound multinomial (DCM)distribution has recently been shown to be a good model for documents because it captures the phenomenon of word burstiness, unlike the standard multinomial distribution. The burstiness phenomenon describes the behavior of a rare word appearing many times in a single document. In this paper, for the sake of improving performance of modeling documents, we propose a variant of DCM and Gibbs distribution called Dirichlet multinomial Gibbs (DMG) model by introducing Gibbs parameters to DCM distribution. We demonstrate the maximum likelihood procedure of the DMG model with these Gibbs parameters. By our experiments, the DMG approach inherit the merits of methods of Gibbs distribution approximation and DCM estimation. More specifically, as revealed by our experimental results on various real-world text datasets, we show that maximum likelihood approximation of the DMG model is more desirable than some current state-of-the-art methods.

Index Terms—Document classification, Dirichlet compound multinomial model, Gibbs distribution

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Cite: Shibin Zhou, Zhao Cao, and Yushu Liu, " Classifying Documents with Maximum Likelihood Approximation of the Dirichlet Multinomial Gibbs Model," Journal of Computers vol. 5, no. 4, pp. 654-661, 2010.

General Information

ISSN: 1796-203X
Abbreviated Title: J.Comput.
Frequency: Bimonthly
Editor-in-Chief: Prof. Liansheng Tan
Executive Editor: Ms. Nina Lee
Abstracting/ Indexing: DBLP, EBSCO,  ProQuest, INSPEC, ULRICH's Periodicals Directory, WorldCat,etc
E-mail: jcp@iap.org
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