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Objective Criteria for Partitioning Gaussian-distributed Reference Values into Subgroups

131

Citations

30

References

2002

Year

Abstract

New percentage and distance criteria, to be used for partitioning gaussian-distributed data, have been developed. The distance criteria, applied separately to both reference limit pairs of the subgroup distributions, seemed more reliable and correlated more accurately with the critical percentages than the distance criteria of the Harris-Boyd model. As opposed to the Harris-Boyd model, the new model is easily adjustable to new critical values of the percentages, should they need to be changed in the future.

References

YearCitations

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