CRAN/E | stratifyR

stratifyR

Optimal Stratification of Univariate Populations

Installation

About

The stratification of univariate populations under stratified sampling designs is implemented according to Khan et al. (2002) doi:10.1177/0008068320020518 and Khan et al. (2015) doi:10.1080/02664763.2015.1018674 in this library. It determines the Optimum Strata Boundaries (OSB) and Optimum Sample Sizes (OSS) for the study variable, y, using the best-fit frequency distribution of a survey variable (if data is available) or a hypothetical distribution (if data is not available). The method formulates the problem of determining the OSB as mathematical programming problem which is solved by using a dynamic programming technique. If a dataset of the population is available to the surveyor, the method estimates its best-fit distribution and determines the OSB and OSS under Neyman allocation directly. When the dataset is not available, stratification is made based on the assumption that the values of the study variable, y, are available as hypothetical realizations of proxy values of y from recent surveys. Thus, it requires certain distributional assumptions about the study variable. At present, it handles stratification for the populations where the study variable follows a continuous distribution, namely, Pareto, Triangular, Right-triangular, Weibull, Gamma, Exponential, Uniform, Normal, Log-normal and Cauchy distributions.

Key Metrics

Version 1.0-3
R ≥ 3.4.0
Published 2021-12-07 864 days ago
Needs compilation? yes
License GPL-2
CRAN checks stratifyR results

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Maintainer

Maintainer

Karuna G. Reddy

karuna.reddy@usp.ac.fj

Authors

Karuna G. Reddy

aut / cre

M. G. M. Khan

aut

Material

README
NEWS
Reference manual
Package source

Vignettes

R Package 'stratifyR'

macOS

r-release

arm64

r-oldrel

arm64

r-release

x86_64

r-oldrel

x86_64

Windows

r-devel

x86_64

r-release

x86_64

r-oldrel

x86_64

Old Sources

stratifyR archive

Depends

R ≥ 3.4.0
fitdistrplus
zipfR
stats
actuar
triangle
mc2d

Suggests

knitr
rmarkdown