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Article

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Title

Can Confirmation Measures Reflect Statistically Sound Dependencies in Data? The Concordance-based Assessment

Authors

[ 1 ] Wydział Informatyki, Politechnika Poznańska | [ P ] employee

Scientific discipline (Law 2.0)

[2.3] Information and communication technology

Year of publication

2018

Published in

Foundations of Computing and Decision Sciences

Journal year: 2018 | Journal volume: vol. 43 | Journal number: no. 1

Article type

scientific article

Publication language

english

Keywords
EN
  • interestingness measures
  • confirmation measures
  • statistical dependency
  • concordance
Abstract

EN The paper considers particular interestingness measures, called confirmation measures (also known as Bayesian confirmation measures), used for the evaluation of “if evidence, then hypothesis” rules. The agreement of such measures with a statistically sound (significant) dependency between the evidence and the hypothesis in data is thoroughly investigated. The popular confirmation measures were not defined to possess such form of agreement. However, in error-prone environments, potential lack of agreement may lead to undesired effects, e.g. when a measure indicates either strong confirmation or strong disconfirmation, while in fact there is only weak dependency between the evidence and the hypothesis. In order to detect and prevent such situations, the paper employs a coefficient allowing to assess the level of dependency between the evidence and the hypothesis in data, and introduces a method of quantifying the level of agreement (referred to as a concordance) between this coefficient and the measure being analysed. The concordance is characterized and visualised using specialized histograms, scatter-plots, etc. Moreover, risk-related interpretations of the concordance are introduced. Using a set of 12 confirmation measures, the paper presents experiments designed to establish the actual concordance as well as other useful characteristics of the measures.

Pages (from - to)

41 - 66

DOI

10.1515/fcds-2018-0004

URL

https://content.sciendo.com/view/journals/fcds/43/1/article-p41.xml

License type

CC BY-NC-ND (attribution - noncommercial - no derivatives)

Open Access Mode

publisher's website

Open Access Text Version

final published version

Full text of article

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Access level to full text

public

Ministry points / journal

15

Ministry points / journal in years 2017-2021

15

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