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方法族Process / pipelineProcess / pipeline
起源年份1990s (formal development from Thompson 1990 onward)1990
提出者Steven K. Thompson (adaptive sampling); allocation adaptations by Salehi, Seber, and othersSteven K. Thompson
类型Probability-based adaptive sampling designProbability-based adaptive sampling design
开创性文献Thompson, S. K. (1990). Adaptive cluster sampling. Journal of the American Statistical Association, 85(412), 1050–1059. DOI ↗Thompson, S. K. (1990). Adaptive cluster sampling. Journal of the American Statistical Association, 85(412), 1050–1059. DOI ↗
别名ASS, adaptive stratified design, stratified adaptive sampling, adaptive allocation stratified samplingACS, adaptive network sampling, sequential cluster sampling, neighborhood adaptive sampling
相关66
摘要Adaptive stratified sampling divides the population into strata and then applies an adaptive rule within each stratum: whenever an initially selected unit satisfies a pre-specified condition (e.g., a rare species is found, a variable exceeds a threshold), neighboring or related units are added to the sample. This combines the variance-reduction power of stratification with the ability to concentrate sampling effort where the phenomenon of interest is actually present.Adaptive cluster sampling (ACS) is a probability-based design in which an initial random sample of units triggers the inclusion of neighboring units whenever a predefined condition — typically a threshold count of a rare attribute — is satisfied. Developed by Steven K. Thompson in 1990, ACS is especially powerful for estimating the abundance or distribution of rare, spatially clustered populations such as endangered species, disease hotspots, or hard-to-reach social groups.
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ScholarGate方法对比: Adaptive Stratified Sampling · Adaptive Cluster Sampling. 于 2026-06-17 检索自 https://scholargate.app/zh/compare