Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi

Neutrosophic set is the extension of the fuzzy set which cannot represent uncertainty data. Neutrosophic set can relate it as being able to characterize the attributes in membership-values of truth, falsity and indeterminacy. Many real life problems involves uncertainty and inconsistent information....

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Main Authors: Yusaffandy, Mohamad Amirul Fahmi, Wan Nor Azmi, Wan Abdullah Azim
Format: Student Project
Language:English
Published: 2022
Subjects:
Online Access:https://ir.uitm.edu.my/id/eprint/72444/1/72444.pdf
https://ir.uitm.edu.my/id/eprint/72444/
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spelling my.uitm.ir.724442023-03-22T09:04:48Z https://ir.uitm.edu.my/id/eprint/72444/ Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi Yusaffandy, Mohamad Amirul Fahmi Wan Nor Azmi, Wan Abdullah Azim Fuzzy arithmetic Data processing Analytical methods used in the solution of physical problems Neutrosophic set is the extension of the fuzzy set which cannot represent uncertainty data. Neutrosophic set can relate it as being able to characterize the attributes in membership-values of truth, falsity and indeterminacy. Many real life problems involves uncertainty and inconsistent information. One of them is the medical diagnosis which contains a lot of attributes that is inconsistent, uncertain and imprecise. As this information is very vital to the doctor to make a decision-making such as early diagnosis, hence, this study aims to formulate distance based measure of neutrosophic set in order to solve decision making problem related with medical diagnosis. In this project, distance-based similarity measure has been formulate from the existing measures which are Euclidean distance and cosine similarity measures. The distance based similarity measure is applied into two data. The first data are consist of four patients with five symptoms and five diseases while the second data are consist of one woman with eight symptoms and six diagnoses. Each patients then diagnose with the disease based on the similarity measures. The highest value of similarity measure show that the patient is suffering with that recognized disease. 2022 Student Project NonPeerReviewed text en https://ir.uitm.edu.my/id/eprint/72444/1/72444.pdf Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi. (2022) [Student Project] <http://terminalib.uitm.edu.my/72444.pdf> (Submitted)
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Fuzzy arithmetic
Data processing
Analytical methods used in the solution of physical problems
spellingShingle Fuzzy arithmetic
Data processing
Analytical methods used in the solution of physical problems
Yusaffandy, Mohamad Amirul Fahmi
Wan Nor Azmi, Wan Abdullah Azim
Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi
description Neutrosophic set is the extension of the fuzzy set which cannot represent uncertainty data. Neutrosophic set can relate it as being able to characterize the attributes in membership-values of truth, falsity and indeterminacy. Many real life problems involves uncertainty and inconsistent information. One of them is the medical diagnosis which contains a lot of attributes that is inconsistent, uncertain and imprecise. As this information is very vital to the doctor to make a decision-making such as early diagnosis, hence, this study aims to formulate distance based measure of neutrosophic set in order to solve decision making problem related with medical diagnosis. In this project, distance-based similarity measure has been formulate from the existing measures which are Euclidean distance and cosine similarity measures. The distance based similarity measure is applied into two data. The first data are consist of four patients with five symptoms and five diseases while the second data are consist of one woman with eight symptoms and six diagnoses. Each patients then diagnose with the disease based on the similarity measures. The highest value of similarity measure show that the patient is suffering with that recognized disease.
format Student Project
author Yusaffandy, Mohamad Amirul Fahmi
Wan Nor Azmi, Wan Abdullah Azim
author_facet Yusaffandy, Mohamad Amirul Fahmi
Wan Nor Azmi, Wan Abdullah Azim
author_sort Yusaffandy, Mohamad Amirul Fahmi
title Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi
title_short Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi
title_full Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi
title_fullStr Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi
title_full_unstemmed Distance-based similarity measure for single-valued Neutrosophic sets and its application in medical diagnosis / Mohamad Amirul Fahmi Yusaffandy and Wan Abdullah Azim Wan Nor Azmi
title_sort distance-based similarity measure for single-valued neutrosophic sets and its application in medical diagnosis / mohamad amirul fahmi yusaffandy and wan abdullah azim wan nor azmi
publishDate 2022
url https://ir.uitm.edu.my/id/eprint/72444/1/72444.pdf
https://ir.uitm.edu.my/id/eprint/72444/
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score 13.18916