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(PDF) A Review towards Evolutionary Multiobjective optimization Algorithms | sunny sharma - Academia.edu

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Various metaheuristic techniques such as differential evolution (DE), genetic algorithm (GA), gravitational search algorithm (GSA), and" /> <title>(PDF) A Review towards Evolutionary Multiobjective optimization Algorithms | sunny sharma - Academia.edu</title> <link rel="canonical" href="https://www.academia.edu/74133370/A_Review_towards_Evolutionary_Multiobjective_optimization_Algorithms" /> <script async src="https://www.googletagmanager.com/gtag/js?id=G-5VKX33P2DS"></script> <script> window.dataLayer = window.dataLayer || []; function gtag(){dataLayer.push(arguments);} gtag('js', new Date()); gtag('config', 'G-5VKX33P2DS', { cookie_domain: 'academia.edu', send_page_view: false, }); gtag('event', 'page_view', { 'controller': "single_work", 'action': "show", 'controller_action': 'single_work#show', 'logged_in': 'false', 'edge': 'unknown', // Send nil if there is no A/B test bucket, in case some records get logged // with missing data - that way we can distinguish between the two cases. // ab_test_bucket should be of the form <ab_test_name>:<bucket> 'ab_test_bucket': null, }) </script> <script> var $controller_name = 'single_work'; var $action_name = "show"; var $rails_env = 'production'; var $app_rev = 'c7c923e13c2d00b99cbe85c9159af2026a636b1c'; var $domain = 'academia.edu'; var $app_host = "academia.edu"; var $asset_host = "academia-assets.com"; var $start_time = new Date().getTime(); var $recaptcha_key = "6LdxlRMTAAAAADnu_zyLhLg0YF9uACwz78shpjJB"; var $recaptcha_invisible_key = "6Lf3KHUUAAAAACggoMpmGJdQDtiyrjVlvGJ6BbAj"; var $disableClientRecordHit = false; </script> <script> window.require = { config: function() { return function() {} } } </script> <script> window.Aedu = window.Aedu || {}; window.Aedu.hit_data = null; window.Aedu.serverRenderTime = new Date(1732709902000); window.Aedu.timeDifference = new Date().getTime() - 1732709902000; </script> <script type="application/ld+json">{"@context":"https://schema.org","@type":"ScholarlyArticle","abstract":"Multi objective optimization is a promising field which is increasingly being encountered in many areas worldwide. Various metaheuristic techniques such as differential evolution (DE), genetic algorithm (GA), gravitational search algorithm (GSA), and particle swarm optimization (PSO) have been used to solve Multi objective problems. Various multiobjective evolutionary algorithms have been developed. Their principal reason for development is their ability to find multiple Pareto optimal solution in single run. Their Basic motive of evolutionary multiobjective optimization in contrast to singleobjective optimization was optimality, decision making algorithm design (fitness, diversity, and elitism), constraints, and preference. The goal of this paper is to trace the genealogy \u0026amp;amp; review the state of the art of evolutionary multiobjective optimization algorithms.","author":[{"@context":"https://schema.org","@type":"Person","name":"sunny sharma"}],"contributor":[],"dateCreated":"2022-03-20","dateModified":"2022-03-20","datePublished":"2014-01-01","headline":"A Review towards Evolutionary Multiobjective optimization Algorithms","inLanguage":"en","keywords":[],"locationCreated":null,"publication":null,"publisher":{"@context":"https://schema.org","@type":"Organization","name":null},"image":null,"thumbnailUrl":null,"url":"https://www.academia.edu/74133370/A_Review_towards_Evolutionary_Multiobjective_optimization_Algorithms","sourceOrganization":[{"@context":"https://schema.org","@type":"EducationalOrganization","name":null}]}</script><link rel="stylesheet" media="all" href="//a.academia-assets.com/assets/single_work_page/loswp-102fa537001ba4d8dcd921ad9bd56c474abc201906ea4843e7e7efe9dfbf561d.css" /><link 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Various metaheuristic techniques such as differential evolution (DE), genetic algorithm (GA), gravitational search algorithm (GSA), and particle swarm optimization (PSO) have been used to solve Multi objective problems. Various multiobjective evolutionary algorithms have been developed. Their principal reason for development is their ability to find multiple Pareto optimal solution in single run. Their Basic motive of evolutionary multiobjective optimization in contrast to singleobjective optimization was optimality, decision making algorithm design (fitness, diversity, and elitism), constraints, and preference. The goal of this paper is to trace the genealogy \u0026 review the state of the art of evolutionary multiobjective optimization algorithms.","publication_date":"2014,,"},"document_type":"paper","pre_hit_view_count_baseline":null,"quality":"high","language":"en","title":"A Review towards Evolutionary Multiobjective optimization Algorithms","broadcastable":true,"draft":null,"has_indexable_attachment":true,"indexable":true}}["work"]; window.loswp.workCoauthors = [148870971]; window.loswp.locale = "en"; window.loswp.countryCode = "SG"; window.loswp.cwvAbTestBucket = ""; window.loswp.designVariant = "ds_vanilla"; window.loswp.fullPageMobileSutdModalVariant = "control"; window.loswp.useOptimizedScribd4genScript = false; window.loswp.appleClientId = 'edu.academia.applesignon';</script><script defer="" src="https://accounts.google.com/gsi/client"></script><div class="ds-loswp-container"><div class="ds-work-card--grid-container"><div class="ds-work-card--container js-loswp-work-card"><div class="ds-work-card--cover"><div class="ds-work-cover--wrapper"><div class="ds-work-cover--container"><button class="ds-work-cover--clickable js-swp-download-button" data-signup-modal="{&quot;location&quot;:&quot;swp-splash-paper-cover&quot;,&quot;attachmentId&quot;:82394377,&quot;attachmentType&quot;:&quot;pdf&quot;}"><img alt="First page of “A Review towards Evolutionary Multiobjective optimization Algorithms”" class="ds-work-cover--cover-thumbnail" src="https://0.academia-photos.com/attachment_thumbnails/82394377/mini_magick20220320-19193-16dbp5q.png?1647783672" /><img alt="PDF Icon" class="ds-work-cover--file-icon" src="//a.academia-assets.com/assets/single_work_splash/adobe.icon-574afd46eb6b03a77a153a647fb47e30546f9215c0ee6a25df597a779717f9ef.svg" /><div class="ds-work-cover--hover-container"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span><p>Download Free PDF</p></div><div class="ds-work-cover--ribbon-container">Download Free PDF</div><div class="ds-work-cover--ribbon-triangle"></div></button></div></div></div><div class="ds-work-card--work-information"><h1 class="ds-work-card--work-title">A Review towards Evolutionary Multiobjective optimization Algorithms</h1><div class="ds-work-card--work-authors ds-work-card--detail"><a class="ds-work-card--author js-wsj-grid-card-author ds2-5-body-md ds2-5-body-link" data-author-id="148870971" href="https://independent.academia.edu/sunnysharma186"><img alt="Profile image of sunny sharma" class="ds-work-card--author-avatar" src="https://0.academia-photos.com/148870971/141119895/130610869/s65_sunny.sharma.png" />sunny sharma</a></div><div class="ds-work-card--detail"><p class="ds-work-card--detail ds2-5-body-sm">2014</p></div><p class="ds-work-card--work-abstract ds-work-card--detail ds2-5-body-md">Multi objective optimization is a promising field which is increasingly being encountered in many areas worldwide. Various metaheuristic techniques such as differential evolution (DE), genetic algorithm (GA), gravitational search algorithm (GSA), and particle swarm optimization (PSO) have been used to solve Multi objective problems. Various multiobjective evolutionary algorithms have been developed. Their principal reason for development is their ability to find multiple Pareto optimal solution in single run. Their Basic motive of evolutionary multiobjective optimization in contrast to singleobjective optimization was optimality, decision making algorithm design (fitness, diversity, and elitism), constraints, and preference. The goal of this paper is to trace the genealogy &amp; review the state of the art of evolutionary multiobjective optimization algorithms.</p><div class="ds-work-card--button-container"><button class="ds2-5-button js-swp-download-button" data-signup-modal="{&quot;location&quot;:&quot;continue-reading-button--work-card&quot;,&quot;attachmentId&quot;:82394377,&quot;attachmentType&quot;:&quot;pdf&quot;,&quot;workUrl&quot;:&quot;https://www.academia.edu/74133370/A_Review_towards_Evolutionary_Multiobjective_optimization_Algorithms&quot;}">See full PDF</button><button class="ds2-5-button ds2-5-button--secondary js-swp-download-button" data-signup-modal="{&quot;location&quot;:&quot;download-pdf-button--work-card&quot;,&quot;attachmentId&quot;:82394377,&quot;attachmentType&quot;:&quot;pdf&quot;,&quot;workUrl&quot;:&quot;https://www.academia.edu/74133370/A_Review_towards_Evolutionary_Multiobjective_optimization_Algorithms&quot;}"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span>Download PDF</button></div></div></div></div><div data-auto_select="false" data-client_id="331998490334-rsn3chp12mbkiqhl6e7lu2q0mlbu0f1b" data-doc_id="82394377" data-landing_url="https://www.academia.edu/74133370/A_Review_towards_Evolutionary_Multiobjective_optimization_Algorithms" data-login_uri="https://www.academia.edu/registrations/google_one_tap" data-moment_callback="onGoogleOneTapEvent" id="g_id_onload"></div><div class="ds-top-related-works--grid-container"><div class="ds-related-content--container ds-top-related-works--container"><h2 class="ds-related-content--heading">Related papers</h2><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="0" data-entity-id="82274583" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/82274583/EVOLUTIONARY_ALGORITHMS_FOR_MULTIOBJECTIVE_OPTIMIZATION">EVOLUTIONARY ALGORITHMS FOR MULTIOBJECTIVE OPTIMIZATION</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="219058816" href="https://independent.academia.edu/ademusmeal">adem usmeal</a></div><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{&quot;location&quot;:&quot;wsj-grid-card-download-pdf-modal&quot;,&quot;work_title&quot;:&quot;EVOLUTIONARY ALGORITHMS FOR MULTIOBJECTIVE OPTIMIZATION&quot;,&quot;attachmentId&quot;:88034823,&quot;attachmentType&quot;:&quot;pdf&quot;,&quot;work_url&quot;:&quot;https://www.academia.edu/82274583/EVOLUTIONARY_ALGORITHMS_FOR_MULTIOBJECTIVE_OPTIMIZATION&quot;,&quot;alternativeTracking&quot;:true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/82274583/EVOLUTIONARY_ALGORITHMS_FOR_MULTIOBJECTIVE_OPTIMIZATION"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="1" data-entity-id="65439984" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/65439984/Multiobjective_Optimization_Using_Genetic_Algorithm">Multiobjective Optimization Using Genetic Algorithm</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="40450542" href="https://independent.academia.edu/SadatHasnayen">Sadat Hasnayen</a></div><p class="ds-related-work--metadata ds2-5-body-xs">2012</p><p class="ds-related-work--abstract ds2-5-body-sm">In case of Multi-objective optimization problems (MOP), objective vector can be scalarized into a single objective and the yielded objective is highly sensitive to the objective weight vectors and it asks the user to have knowledge about the underlying problems. 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