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      No Adjustments Are Needed for Multiple Comparisons :

      Epidemiology
      Ovid Technologies (Wolters Kluwer Health)

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          Abstract

          Adjustments for making multiple comparisons in large bodies of data are recommended to avoid rejecting the null hypothesis too readily. Unfortunately, reducing the type I error for null associations increases the type II error for those associations that are not null. The theoretical basis for advocating a routine adjustment for multiple comparisons is the "universal null hypothesis" that "chance" serves as the first-order explanation for observed phenomena. This hypothesis undermines the basic premises of empirical research, which holds that nature follows regular laws that may be studied through observations. A policy of not making adjustments for multiple comparisons is preferable because it will lead to fewer errors of interpretation when the data under evaluation are not random numbers but actual observations on nature. Furthermore, scientists should not be so reluctant to explore leads that may turn out to be wrong that they penalize themselves by missing possibly important findings.

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          Author and article information

          Journal
          Epidemiology
          Epidemiology
          Ovid Technologies (Wolters Kluwer Health)
          1044-3983
          1990
          January 1990
          : 1
          : 1
          : 43-46
          Article
          10.1097/00001648-199001000-00010
          2081237
          3f4a4a54-e581-411a-90ad-7995636d7205
          © 1990
          History

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