Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
9458137 | Applied Geochemistry | 2005 | 18 Pages |
Abstract
None of the 27 chemical elements could pass the test for either normal or lognormal distribution on the declustered data set. Part of the reasons relate to the presence of mixtures of subpopulations and outliers. Random samples of the data set with successively smaller numbers of data points showed that few elements passed standard statistical tests for normality or log-normality until sample size decreased to a few hundred data points. Large sample size enhances the power of statistical tests, and leads to rejection of most statistical hypotheses for real data sets. For large sample sizes (e.g., n > 1000), graphical methods such as histogram, stem-and-leaf, and probability plots are recommended for rough judgement of probability distribution if needed.
Related Topics
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Authors
Chaosheng Zhang, Frank T. Manheim, John Hinde, Jeffrey N. Grossman,