Verena Puchner Puchner Evaluation of Statistical Matching and Selected SAE Methods

Evaluation of Statistical Matching and Selected SAE Methods

von Verena Puchner

Using Micro Census and EU-SILC Data

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Beschreibung

Verena Puchner evaluates and compares statistical matching and selected SAE methods. Due to the fact that poverty estimation at regional level based on EU-SILC samples is not of adequate accuracy, the quality of the estimations should be improved by additionally incorporating micro census data. The aim is to find the best method for the estimation of poverty in terms of small bias and small variance with the aid of a simulated artificial "close-to-reality" population. Variables of interest are imputed into the micro census data sets with the help of the EU-SILC samples through regression models including selected unit-level small area methods and statistical matching methods. Poverty indicators are then estimated. The author evaluates and compares the bias and variance for the direct estimator and the various methods. The variance is desired to be reduced by the larger sample size of the micro census.

 Contents

Target Groups

 The Author

Verena Puchner obtained her master’s degree at Technical University of Vienna under the supervision of Priv.-Doz. Dipl.-Ing. Dr. techn. Matthias Templ. At present, she works as a data miner and consultant.


Verena Puchner evaluates and compares statistical matching and selected SAE methods. Due to the fact that poverty estimation at regional level based on EU-SILC samples is not of adequate accuracy, the quality of the estimations should be improved by additionally incorporating micro census data. The aim is to find the best method for the estimation of poverty in terms of small bias and small variance with the aid of a simulated artificial "close-to-reality" population. Variables of interest are imputed into the micro census data sets with the help of the EU-SILC samples through regression models including selected unit-level small area methods and statistical matching methods. Poverty indicators are then estimated. The author evaluates and compares the bias and variance for the direct estimator and the various methods. The variance is desired to be reduced by the larger sample size of the micro census.
Study in the field of technical sciences Includes supplementary material: sn.pub/extras

Autor*in

Verena Puchner

Themen in »Evaluation of Statistical Matching and Selected SAE Methods«

EU-SILC Samples Micro Census Poverty Estimation Regression Models Statistical Matching

Stimmen zu »Evaluation of Statistical Matching and Selected SAE Methods«

Details

ISBN: 9783658082239
Verlag: Springer Fachmedien Wiesbaden GmbH
Erscheinung: 10.12.2014

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