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Ranked set sampling allocation models for multiple skewed variables: an application to agricultural data
Authors:Chiara Bocci  Alessandra Petrucci  Emilia Rocco
Affiliation:1. Department of Statistics “G. Parenti”, University of Florence, Florence, 50134, Italy
Abstract:The mean of a balanced ranked set sample is more efficient than the mean of a simple random sample of equal size and the precision of ranked set sampling may be increased by using an unbalanced allocation when the population distribution is highly skewed. The aim of this paper is to show the practical benefits of the unequal allocation in estimating simultaneously the means of more skewed variables through real data. In particular, the allocation rule suggested in the literature for a single skewed distribution may be easily applied when more than one skewed variable are of interest and an auxiliary variable correlated with them is available. This method can lead to substantial gains in precision for all the study variables with respect to the simple random sampling, and to the balanced ranked set sampling too.
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