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dc.contributor.authorvan de Schoot, Rens
dc.contributor.authorMiocević, Milica
dc.date.accessioned2021-02-10T13:43:29Z
dc.date.available2021-02-10T13:43:29Z
dc.date.issued2020
dc.date.submitted2020-03-03 12:23:38
dc.date.submitted2020-04-01T06:49:48Z
dc.identifier1007799
dc.identifier1007799
dc.identifierOCN: 1142226472
dc.identifierhttp://library.oapen.org/handle/20.500.12657/22385
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/30625
dc.description.abstractResearchers often have difficulties collecting enough data to test their hypotheses, either because target groups are small or hard to access, or because data collection entails prohibitive costs. Such obstacles may result in data sets that are too small for the complexity of the statistical model needed to answer the research question. This unique book provides guidelines and tools for implementing solutions to issues that arise in small sample research. Each chapter illustrates statistical methods that allow researchers to apply the optimal statistical model for their research question when the sample is too small. This essential book will enable social and behavioral science researchers to test their hypotheses even when the statistical model required for answering their research question is too complex for the sample sizes they can collect. The statistical models in the book range from the estimation of a population mean to models with latent variables and nested observations, and solutions include both classical and Bayesian methods. All proposed solutions are described in steps researchers can implement with their own data and are accompanied with annotated syntax in R. The methods described in this book will be useful for researchers across the social and behavioral sciences, ranging from medical sciences and epidemiology to psychology, marketing, and economics.
dc.languageEnglish
dc.rightsopen access
dc.subject.classificationthema EDItEUR::J Society and Social Sciences::JM Psychology::JMB Psychological methodologyen_US
dc.subject.otherstatistical methods
dc.subject.otherresearchers
dc.subject.otherstatistical model
dc.subject.otherresearch
dc.subject.othersmall sample
dc.subject.otherestimation
dc.subject.otherpopulation
dc.subject.othervariables
dc.subject.otherobservations
dc.subject.othersocial sciences
dc.subject.otherbehavioral sciences
dc.subject.othermedical sciences
dc.subject.otherepidemiology
dc.subject.otherpsychology
dc.subject.othermarketing
dc.subject.othereconomics
dc.subject.otheranalysis
dc.subject.otherthema EDItEUR::J Society and Social Sciences::JM Psychology::JMB Psychological methodology
dc.titleSmall Sample Size Solutions
dc.title.alternativeA Guide for Applied Researchers and Practitioners
dc.typebook
oapen.identifier.doi10.4324/9780429273872
oapen.relation.isPublishedByfa69b019-f4ee-4979-8d42-c6b6c476b5f0
oapen.relation.isbn9780367222222; 9780429273872
oapen.collectionDutch Research Council (NWO)
oapen.pages284
oapen.review.commentsTaylor & Francis open access titles are reviewed as a minimum at proposal stage by at least two external peer reviewers and an internal editor (additional reviews may be sought and additional content reviewed as required).
peerreview.review.typeProposal
peerreview.anonymitySingle-anonymised
peerreview.reviewer.typeInternal editor
peerreview.reviewer.typeExternal peer reviewer
peerreview.review.stagePre-publication
peerreview.open.reviewNo
peerreview.publish.responsibilityPublisher
peerreview.idbc80075c-96cc-4740-a9f3-a234bc2598f1
dc.relationisFundedByNederlandse Organisatie voor Wetenschappelijk Onderzoek
dc.notes2020-03-03 12:15:54, Funder name: Utrecht University
peerreview.titleProposal review
dc.anonymitySingle-anonymised
dc.peerreviewidbc80075c-96cc-4740-a9f3-a234bc2598f1
dc.peerreviewtitleProposal review
dc.openreviewNo
dc.responsibilityPublisher
dc.stagePre-publication
dc.reviewtypeProposal
dc.reviewertypeInternal editor
dc.reviewertypeExternal peer reviewer


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