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Estimation for the number of components in a mixture model using stepwise split-and-merge EM algorithm

机译:使用逐步拆分和合并EM算法估计混合模型中的组分数

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摘要

The main difficulty with EM algorithm for mixture model concerns the number of components, say g. This is the question of model selection, and the EM algorithm itself could not estimate g. On the contrary, the algorithm requires g to be specified before the remaining parameters can be estimated. To solve this problem, a new algorithm, which is called stepwise split-and-merge EM (SSMEM) algorithm, is proposed. The SSMEM algorithm alternately splits and merges components, estimating g and other parameters of components simultaneously. Also, two novel criteria are introduced to efficiently select the components for split or merge. Experimental results on simulated and real data demonstrate the effectivity of the proposed algorithm.
机译:混合模型的EM算法的主要困难在于组分的数量,例如g。这是模型选择的问题,并且EM算法本身无法估计g。相反,该算法要求先指定g,然后才能估计其余参数。为了解决这个问题,提出了一种新的算法,称为逐步拆分与合并EM(SSMEM)算法。 SSMEM算法交替分割和合并分量,同时估计分量的g和其他参数。此外,引入了两个新颖的标准来有效地选择要拆分或合并的组件。仿真和真实数据的实验结果证明了该算法的有效性。

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