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关于拟似然估计效率的研究

On the Efficiency of Quasi-Likelihood Estimation

Biometrika · 1987
被引 4
ABS 4

中文导读

研究了Wedderburn提出的拟似然方法在回归模型参数估计中的效率,计算了特定分布下的渐近效率,并探讨了通过近似小偏离来改进的可能性。

Abstract

A quasi-likelihood method has been proposed by Wedderburn (1974) for the estimation of parameters in regression models when there is some assumed relationship between the mean and variance of each observation but not necessarily a fully specified likelihood. If the underlying distribution comes from a natural exponential family the quasi-likelihood estimates maximize the likelihood and so have full asymptotic efficiency; under more general distributions there is some loss of efficiency, which is investigated here. Three types of model are discussed in detail: models with constant variance, models with constant coefficient of variation and models with overdispersion relative to some exponential family. The asymptotic efficiency of quasi-likelihood estimation is calculated under some particular distributions, and then more generally via an approximation for ‘small departures’ from the corresponding natural exponential family. The possibility of refinement of the quasi-likelihood approach, to incorporate additional information about the underlying distribution, is considered.

计量经济学统计学回归模型参数估计