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Maximum likelihood estimation in the presence of outiliers
Authors:U. Gather  B.K. Kale
Affiliation:1. DeparTment Of Statistics , University of Dortmund , Westgermany;2. Department of Statistics , University of Poona , Poona, India
Abstract:This paper deals with the maximum likelihood estimation of parameters when the sample (x1…xn ) may heve k spuriously generated observations from another distribution, say G≠F, where F is the distribution of the target population. If G is stochastically larger than F, then these k observations may give rise to k extreme observations or ‘outliers’. This situation is often described by a so-called ‘k-outlier model’ in which in addition to the parameters involved in F and G, the set ν={ν1,…,νk} of indices, for which xνj , j=1,…,k, come from G, is also unknow.
Keywords:outlier-generating model  contaminatinon  estimation of parameters in exponential families under contamination
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