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분야조사방법론조사방법론조사방법론
계열Process / pipelineProcess / pipelineProcess / pipeline
기원 연도19611985 (Lincoln & Guba); elaborated 1990–2002 (Patton)Formalized ~1980–1990
창시자Leo A. GoodmanLincoln & Guba; systematised by Michael Quinn PattonMichael Quinn Patton (systematic articulation); roots in early qualitative inquiry
유형Non-probability sampling techniquePurposive qualitative sampling strategyNon-probability sampling strategy
원전Goodman, L. A. (1961). Snowball sampling. Annals of Mathematical Statistics, 32(1), 148–170. DOI ↗Patton, M. Q. (2002). Qualitative Research and Evaluation Methods (3rd ed.). Sage. Chapter 5: Purposeful Sampling. ISBN: 978-0761919711Patton, M. Q. (1990). Qualitative Evaluation and Research Methods (2nd ed.). Sage. ISBN: 978-0803937796
별칭chain-referral sampling, network sampling, respondent-driven sampling, referral samplingmaximum variation sampling, maximum diversity sampling, MVS, heterogeneous samplingjudgmental sampling, selective sampling, criterion-based sampling, purposeful sampling
관련354
요약Snowball sampling is a non-probability recruitment technique in which initial participants (seeds) refer the researcher to others who meet the study criteria, and those referrals in turn refer further participants. The sample grows incrementally — like a rolling snowball — until the required size or theoretical saturation is reached. It is the method of choice when a target population has no accessible sampling frame, such as undocumented migrants, illicit drug users, survivors of stigmatised experiences, or members of closed professional networks.Maximum variation sampling is a purposive qualitative sampling strategy in which the researcher deliberately selects cases that span the widest possible range of variation on dimensions central to the study. The goal is not statistical representation but the identification of common patterns that cut across diverse cases as well as the documentation of the unique ways each context shapes the phenomenon under investigation.Purposive sampling is a non-probability strategy in which the researcher deliberately selects participants, documents, or cases that are information-rich with respect to the research question. Rather than drawing units at random, the researcher applies explicit criteria aligned with the study's purpose, maximising the depth and relevance of the data collected. It is the default sampling logic in most qualitative research designs and is also used in mixed-methods and applied evaluative work.
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ScholarGate방법 비교: Snowball Sampling · Maximum Variation Sampling · Purposive sampling. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare