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Stochastic Search for Semiparametric Linear Regression Models

Published 17 Jun 2011 in stat.ME, math.ST, and stat.TH | (1106.3520v2)

Abstract: This paper introduces and analyzes a stochastic search method for parameter estimation in linear regression models in the spirit of Beran and Millar (1987). The idea is to generate a random finite subset of a parameter space which will automatically contain points which are very close to an unknown true parameter. The motivation for this procedure comes from recent work of Duembgen, Samworth and Schuhmacher (2011) on regression models with log-concave error distributions.

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