Results 241 to 250 of about 1,555,303 (287)
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Comparing Inference Methods for Non‐probability Samples
International Statistical Review, 2018SummarySocial and economic scientists are tempted to use emerging data sources like big data to compile information about finite populations as an alternative for traditional survey samples. These data sources generally cover an unknown part of the population of interest.
Bart Buelens +2 more
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Model-assisted SCAD calibration for non-probability samples
Brazilian Journal of Probability and Statistics, 2021zbMATH Open Web Interface contents unavailable due to conflicting licenses.
Liu, Zhan, Tu, Chaofeng, Pan, Yingli
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Non-probability Survey Samples
2020We provide an overview of the emerging topic of non-probability survey samples which has drawn increased attention in the fields of survey methodology and official statistics. We highlight some of the issues in analyzing non-probability survey samples and present some of the methodological advances that have appeared in recent years.
Changbao Wu, Mary E. Thompson
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Tracing Selection Effects in Three Non-Probability Samples
European Addiction Research, 2005Snowball sampling and targeted sampling are widely applied techniques to recruit samples from hidden populations, such as problematic drug users. The disadvantage is that they yield non-probability samples which cannot be generalised to the population. Despite thorough preparatory mapping procedures, selection effects continue to occur.
Cas, Barendregt +2 more
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Sampling: bridging probability and non-probability designs
International Journal of Social Research Methodology, 2013This article reconceptualizes sampling in social research. It is argued that three inter-related a priori assumptions limit on the possibility of sample design, namely: (a) the ontology of the case, (b) the epistemological assumptions underpinning what properties are necessary to know the case and (c) the logistics involved in the process of ‘casing ...
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Uncertainty in Sampling Designs for Non-probability Samples
Non-probability samples involve some form of arbitrary selection of units into the sample, and, as a matter of fact, inclusion probabilities are unknown. Hence, it is not possible to apply probability randomization theory to make inference about the finite population parameters.Pier Luigi Conti, Daniela Marella
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Integrative oncology: Addressing the global challenges of cancer prevention and treatment
Ca-A Cancer Journal for Clinicians, 2022Jun J Mao,, Msce +2 more
exaly
Population Sampling: Probability and Non-Probability Techniques
Prehospital and Disaster Medicine, 2023openaire +2 more sources

