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Outlier Detection in Single Universal Set using Intuitionistic Fuzzy Proximity Relation based on A Rough Entropy-Based Weighted Density Method

    Authors

    • Geetha Mary A
    • Sangeetha T

    School of Computer Science and Engineering & Vellore Institute of Technology, Vellore, India

,

Document Type : Research Article

10.47392/irjash.2023.S067
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Abstract

Data mining is a technique for analyzing larger datasets to identify patterns, information, and relationships that may be used to solve challenging problems. Identifying outliers has attracted the focus of researchers working on a variety of areas. Outliers are things that behave differently from other objects. With real-world data, rough set theory can cope with ambiguity and uncertainty. So far, the study has solely focused on spotting outliers using the membership function. Outliers may be recognized using membership and non-membership values, however, utilizing the principle of intuitionistic fuzzy proximity rela- tion. At this step, the indiscernibility of objects is discovered, and the quanti- tative data is then converted to qualitative data. This article proposes outlier detection in single universal sets using an intuitionistic fuzzy proximity relation with a rough set based on complement entropy and weighted density approach. The empirical study has been considered for ranking the colleges based on the parameters evaluated.

Keywords

  • Outliers
  • Intuitionistic Fuzzy Proxim- ity Relation
  • Membership Relation
  • Non-Membership Relation
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International Research Journal on Advanced Science Hub
Volume 5, Issue 05S - Issue Serial Number 5
May 2023
Page 501-506
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History
  • Receive Date: 26 February 2023
  • Revise Date: 12 March 2023
  • Accept Date: 21 March 2023
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  • Article View: 131
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APA

A, G. M. and T, S. (2023). Outlier Detection in Single Universal Set using Intuitionistic Fuzzy Proximity Relation based on A Rough Entropy-Based Weighted Density Method. International Research Journal on Advanced Science Hub, 5(Issue 05S), 501-506. doi: 10.47392/irjash.2023.S067

MLA

A, G. M. , and T, S. . "Outlier Detection in Single Universal Set using Intuitionistic Fuzzy Proximity Relation based on A Rough Entropy-Based Weighted Density Method", International Research Journal on Advanced Science Hub, 5, Issue 05S, 2023, 501-506. doi: 10.47392/irjash.2023.S067

HARVARD

A, G. M., T, S. (2023). 'Outlier Detection in Single Universal Set using Intuitionistic Fuzzy Proximity Relation based on A Rough Entropy-Based Weighted Density Method', International Research Journal on Advanced Science Hub, 5(Issue 05S), pp. 501-506. doi: 10.47392/irjash.2023.S067

CHICAGO

G. M. A and S. T, "Outlier Detection in Single Universal Set using Intuitionistic Fuzzy Proximity Relation based on A Rough Entropy-Based Weighted Density Method," International Research Journal on Advanced Science Hub, 5 Issue 05S (2023): 501-506, doi: 10.47392/irjash.2023.S067

VANCOUVER

A, G. M., T, S. Outlier Detection in Single Universal Set using Intuitionistic Fuzzy Proximity Relation based on A Rough Entropy-Based Weighted Density Method. International Research Journal on Advanced Science Hub, 2023; 5(Issue 05S): 501-506. doi: 10.47392/irjash.2023.S067

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