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Boosting local quasi-likelihood estimators
Authors:Masao Ueki  Kaoru Fueda
Institution:1.Graduate School of Environmental Science,Okayama University,Tsushima, Okayama,Japan
Abstract:For likelihood-based regression contexts, including generalized linear models, this paper presents a boosting algorithm for local constant quasi-likelihood estimators. Its advantages are the following: (a) the one-boosted estimator reduces bias in local constant quasi-likelihood estimators without increasing the order of the variance, (b) the boosting algorithm requires only one-dimensional maximization at each boosting step and (c) the resulting estimators can be written explicitly and simply in some practical cases.
Keywords:
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