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Asymptotically efficient estimation of prior probabilities in multiclass finite mixtures

机译:多类有限混合中先验概率的渐近有效估计

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摘要

A prior probability estimator, a candidate for asymptotic efficiency, from within the class of recursive estimators proposed by the authors (1990) is synthesized. The authors prove asymptotic efficiency and convergence with probability one by involving a stochastic approximation theorem. The estimator can be implemented in practice for continuous, discrete, and mixed class conditional density functions, although continuous and mixed densities generally require repeated evaluation of expectations of certain functions through numerical techniques. Results of a simulation. experiment with discrete densities are included. Variations of the estimator, for computational simplicity, are discussed.
机译:从作者(1990)提出的递归估计量中,合成了一个先验概率估计量,它是渐近效率的候选者。作者通过涉及一个随机逼近定理证明了渐近效率和收敛性为1。估计器可以在实践中用于连续,离散和混合类条件密度函数,尽管连续和混合密度通常需要通过数值技术对某些函数的期望值进行重复评估。模拟结果。包含离散密度的实验。为了简化计算,讨论了估计器的变体。

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