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Muestreo Estratificado Disproporcional×Muestreo por conglomerados×
CampoMetodología de encuestasMetodología de encuestas
FamiliaProcess / pipelineProcess / pipeline
Año de origen1934Early-to-mid 20th century; canonical treatment 1953/1977
Autor originalJerzy NeymanFormalized by William G. Cochran; roots in early 20th-century U.S. Census Bureau survey practice
TipoProbability sampling designProbability sampling design
Fuente seminalCochran, W. G. (1977). Sampling Techniques (3rd ed.). John Wiley & Sons. ISBN: 978-0471162407Cochran, W. G. (1977). Sampling Techniques (3rd ed.). Wiley. ISBN: 978-0471162407
Aliasdisproportionate stratified sampling, unequal-probability stratified sampling, oversampling stratified design, non-proportional stratified samplingcluster random sampling, area sampling, one-stage cluster sampling
Relacionados65
ResumenDisproportional stratified sampling divides the population into mutually exclusive strata and deliberately draws different proportions from each stratum — oversampling small or analytically important subgroups and undersampling large ones. Post-hoc weighting restores population-level representativeness when overall estimates are needed. First formalised by Jerzy Neyman in 1934, it is the standard approach when subgroup-level precision matters as much as total-population estimates.Cluster sampling is a probability sampling technique in which the population is divided into naturally occurring groups (clusters), a random sample of clusters is selected, and all — or a random subset of — members within each selected cluster are studied. It is especially practical when a complete population list is unavailable or when units are geographically dispersed, making individual random selection prohibitively expensive. One-stage cluster sampling surveys every member of selected clusters; two-stage designs add a second random draw within clusters.
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ScholarGateComparar métodos: Disproportional Stratified Sampling · Cluster Sampling. Recuperado el 2026-06-18 de https://scholargate.app/es/compare