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Prilagodljivo klasterizirano uzorkovanje×Uzorak temeljen na ispitanicima×
PodručjeMetodologija anketaMetodologija anketa
ObiteljProcess / pipelineProcess / pipeline
Godina nastanka19901997
TvoracSteven ThompsonDouglas Heckathorn
VrstaProbability-based adaptive designProbabilistic chain-referral sampling design
Temeljni izvorThompson, S. K. (1990). Adaptive cluster sampling. Journal of the American Statistical Association, 85(412), 1050–1059. DOI ↗Heckathorn, D. D. (1997). Respondent-driven sampling: A new approach to the study of hidden populations. Social Problems, 44(2), 174–199. DOI ↗
Drugi naziviAdaptive Cluster Sampling, Sequential Adaptive Sampling, Network Sampling, Adaptif Küme ÖrneklemesiChain-Referral Sampling, Peer-Referral Sampling, Network-Based Sampling, Katılımcı Güdümlü Örnekleme
Srodne33
SažetakAdaptive Cluster Sampling (ACS) is a probability-based survey design introduced by Steven K. Thompson in 1990 for estimating the abundance or total of rare, clustered populations. Starting from an initial random sample, the design adaptively adds neighboring units whenever a sampled unit satisfies a predefined condition—such as exceeding a count threshold—thereby concentrating sampling effort exactly where the population of interest occurs. It is most appropriate for ecologists, epidemiologists, and social scientists studying geographically or socially clustered rare phenomena.Respondent-Driven Sampling (RDS) is a probabilistic chain-referral method designed to reach hidden or hard-to-reach populations that lack a sampling frame. Introduced by sociologist Douglas Heckathorn in 1997, RDS combines snowball recruitment with mathematical weighting based on participants' personal network sizes, allowing researchers to generate population-level estimates even when no complete membership list exists.
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ScholarGateUsporedite metode: Adaptive Sampling · Respondent-Driven Sampling. Preuzeto 2026-06-15 s https://scholargate.app/hr/compare