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A Study on Sample Allocation for Stratified Sampling

Authors
Lee, InguePark, Mingue
Issue Date
Dec-2015
Publisher
KOREAN STATISTICAL SOC
Keywords
stratified sampling; sample allocation; Neyman allocation; non-response
Citation
KOREAN JOURNAL OF APPLIED STATISTICS, v.28, no.6, pp.1047 - 1061
Indexed
KCI
Journal Title
KOREAN JOURNAL OF APPLIED STATISTICS
Volume
28
Number
6
Start Page
1047
End Page
1061
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/91773
DOI
10.5351/KJAS.2015.28.6.1047
ISSN
1225-066X
Abstract
Stratified random sampling is a powerful sampling strategy to reduce variance of the estimators by incorporating useful auxiliary information to stratify the population. Sample allocation is the one of the important decisions in selecting a stratified random sample. There are two common methods, the proportional allocation and Neyman allocation if we could assume data collection cost for different observation units equal. Theoretically, Neyman allocation considering the size and standard deviation of each stratum, is known to be more effective than proportional allocation which incorporates only stratum size information. However, if the information on the standard deviation is inaccurate, the performance of Neyman allocation is in doubt. It has been pointed out that Neyman allocation is not suitable for multi-purpose sample survey that requires the estimation of several characteristics. In addition to sampling error, non-response error is another factor to evaluate sampling strategy that affects the statistical precision of the estimator. We propose new sample allocation methods using the available information about stratum response rates at the designing stage to improve stratified random sampling. The proposed methods are efficient when response rates differ considerably among strata. In particular, the method using population sizes and response rates improves the Neyman allocation in multi-purpose sample survey.
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