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A variable neighborhood search algorithm for solving fuzzy number linear programming problems using modified Kerre’s method

نویسنده:
رضا قنبری
,
Khatere Ghorbani-Moghadam
,
Nezam Mahdavi-Amiri
,
Reza Ghanbari
,
Khatere Ghorbani-Moghadam
,
Nezam Mahdavi-Amiri
سال
: 2018
چکیده: To solve a fuzzy linear program, we need to compare fuzzy numbers. Here, we make use of our recently proposed modified Kerre\\\\\\'s method for comparison of LR fuzzy numbers. We give some new results on LR fuzzy numbers and show that to compare two LR fuzzy numbers, we do not need to compute the fuzzy maximum of two numbers directly. Using the modified Kerre\\\\\\'s method, we propose a new variable neighborhood search -VNS- algorithm for solving fuzzy number linear programming problems. In our algorithm, the local search is defined based on descent directions, which are found by solving four crisp mathematical programming problems. In several methods, a fuzzy optimization problem is converted to a crisp problem but in our proposed method, using our modified Kerre\\\\\\'s method, the fuzzy optimization problem is solved directly, without changing it to a crisp program. We give some examples to compare the performance of our proposed algorithm with some available methods. We show the effectiveness of our proposed algorithm by using the non-parametric statistical sign test.
یو آر آی: http://libsearch.um.ac.ir:80/fum/handle/fum/3367010
کلیدواژه(گان): Fuzzy linear programming problem,Modified Kerre’s method,Ranking function,VNS algorithm
کالکشن :
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    A variable neighborhood search algorithm for solving fuzzy number linear programming problems using modified Kerre’s method

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contributor authorرضا قنبریen
contributor authorKhatere Ghorbani-Moghadamen
contributor authorNezam Mahdavi-Amirien
contributor authorReza Ghanbarifa
contributor authorKhatere Ghorbani-Moghadamfa
contributor authorNezam Mahdavi-Amirifa
date accessioned2020-06-06T13:44:12Z
date available2020-06-06T13:44:12Z
date issued2018
identifier urihttp://libsearch.um.ac.ir:80/fum/handle/fum/3367010
description abstractTo solve a fuzzy linear program, we need to compare fuzzy numbers. Here, we make use of our recently proposed modified Kerre\\\\\\'s method for comparison of LR fuzzy numbers. We give some new results on LR fuzzy numbers and show that to compare two LR fuzzy numbers, we do not need to compute the fuzzy maximum of two numbers directly. Using the modified Kerre\\\\\\'s method, we propose a new variable neighborhood search -VNS- algorithm for solving fuzzy number linear programming problems. In our algorithm, the local search is defined based on descent directions, which are found by solving four crisp mathematical programming problems. In several methods, a fuzzy optimization problem is converted to a crisp problem but in our proposed method, using our modified Kerre\\\\\\'s method, the fuzzy optimization problem is solved directly, without changing it to a crisp program. We give some examples to compare the performance of our proposed algorithm with some available methods. We show the effectiveness of our proposed algorithm by using the non-parametric statistical sign test.en
languageEnglish
titleA variable neighborhood search algorithm for solving fuzzy number linear programming problems using modified Kerre’s methoden
typeJournal Paper
contenttypeExternal Fulltext
subject keywordsFuzzy linear programming problemen
subject keywordsModified Kerre’s methoden
subject keywordsRanking functionen
subject keywordsVNS algorithmen
journal titleIEEE Trans. Fuzzy Syst.fa
pages0-0
journal issue0
identifier linkhttps://profdoc.um.ac.ir/paper-abstract-1073023.html
identifier articleid1073023
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