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An application of mutual information in mathematical statistics education

  • Journal of the Korean Data and Information Science Society
  • The Korean Data and Information Science Society (KDISS)
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Abstract

In mathematical statistics education, we can use mutual information as a tool for evaluating the degree of dependency between two random variables. The ordinary correlation coefficient provides information only on linear dependency, not on nonlinear relationship between two random variables if any. In this paper as a measure of the degree of dependency between random variables, we suggest the use of symmetric uncertainty and <TEX>${\lambda}$</TEX> which are defined in terms of mutual information. They can be also considered as generalized correlation coefficients for both linear and non-linear dependence of random variables.

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DOI
10.7465/jkdi.2015.26.4.1017
OpenAlex
W2278041451
Document type
article
Language
EN
Source
Journal of the Korean Data and Information Science Society
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