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:: Volume 27, Issue 2 (3-2023) ::
Andishe 2023, 27(2): 23-32 Back to browse issues page
Correcting Boosted Mixture Learning method using Vuong's test and its application in the Gamma Mixture Model‎
Sedigheh Zamani Mehreyan *
Department of Statistics‎, ‎Imam Khomeini International University‎, ‎Qazvin‎, ‎Iran
Abstract:   (541 Views)

‎The boosted mixture learning method‎, ‎BML‎, ‎is an incremental method to learn mixture models for the classification problem‎. ‎In each step of the boosted mixture learning method‎, ‎a new component is added to the mixture model according to an objective function to ensure that the objective function is maximized‎. ‎Sometimes the likelihood function or equivalently information criteria are defined as the objective function of BML‎. ‎The mixture model is updated whenever a new component is added to the mixture model based on the maximum likelihood function and information criteria‎.

‎Since the information criteria does not have the ability to identify equivalent models‎, ‎therefore‎, ‎it is possible that the new mixture model and the current mixture model are equivalent‎.

‎In this paper‎, ‎the boosted mixture learning method has been corrected using Vuong's model selection test‎, ‎which has the ability to identify equivalent models‎. ‎The performance of two learning methods is evaluated over simulation data and over the U.S‎. ‎imports of goods by customs basis.‎

Keywords: Boosted algorithm, ‎M‎odel selection, ‎M‎aximum likelihood estimator, Mixture ‎m‎odel‎‎, ‎M‎achine learning
Full-Text [PDF 263 kb]   (347 Downloads)    
Type of Study: Research | Subject: Special
Received: 2022/11/3 | Accepted: 2023/05/19 | Published: 2023/05/19
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Zamani Mehreyan S. Correcting Boosted Mixture Learning method using Vuong's test and its application in the Gamma Mixture Model‎. Andishe 2023; 27 (2) :23-32
URL: http://andisheyeamari.irstat.ir/article-1-903-en.html


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Volume 27, Issue 2 (3-2023) Back to browse issues page
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