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    Concurrent Optimization of Computationally Learned Stylistic Form and Functional Goals

    Source: Journal of Mechanical Design:;2012:;volume( 134 ):;issue: 011::page 111006
    Author:
    Ian Tseng
    ,
    Kenneth Kotovsky
    ,
    Jonathan Cagan
    DOI: 10.1115/1.4007304
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Great design often results from intelligently balancing tradeoffs and leveraging of synergies between multiple product goals. While the engineering design community has numerous tools for managing the interface between functional goals in products, there are currently no formalized methods to concurrently optimize stylistic form and functional requirements. This research develops a method to coordinate seemingly disparate but highly related goals of stylistic form and functional constraints in computational design. An artificial neural network (ANN) based machine learning system was developed to model surveyed consumer judgments of stylistic form quantitatively. Coupling this quantitative model of stylistic form with a genetic algorithm (GA) enables computers to concurrently account for multiple objectives in the domains of stylistic form and more traditional functional performance evaluation within the same quantitative framework. This coupling then opens the door for computers to automatically generate products that not only work well but also convey desired styles to consumers.
    keyword(s): Design , Vehicles , Artificial neural networks , Automotive design , Computers AND Optimization ,
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      Concurrent Optimization of Computationally Learned Stylistic Form and Functional Goals

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    contributor authorIan Tseng
    contributor authorKenneth Kotovsky
    contributor authorJonathan Cagan
    date accessioned2017-05-09T00:52:59Z
    date available2017-05-09T00:52:59Z
    date copyrightNovember, 2012
    date issued2012
    identifier issn1050-0472
    identifier otherJMDEDB-926070#111006_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/149705
    description abstractGreat design often results from intelligently balancing tradeoffs and leveraging of synergies between multiple product goals. While the engineering design community has numerous tools for managing the interface between functional goals in products, there are currently no formalized methods to concurrently optimize stylistic form and functional requirements. This research develops a method to coordinate seemingly disparate but highly related goals of stylistic form and functional constraints in computational design. An artificial neural network (ANN) based machine learning system was developed to model surveyed consumer judgments of stylistic form quantitatively. Coupling this quantitative model of stylistic form with a genetic algorithm (GA) enables computers to concurrently account for multiple objectives in the domains of stylistic form and more traditional functional performance evaluation within the same quantitative framework. This coupling then opens the door for computers to automatically generate products that not only work well but also convey desired styles to consumers.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleConcurrent Optimization of Computationally Learned Stylistic Form and Functional Goals
    typeJournal Paper
    journal volume134
    journal issue11
    journal titleJournal of Mechanical Design
    identifier doi10.1115/1.4007304
    journal fristpage111006
    identifier eissn1528-9001
    keywordsDesign
    keywordsVehicles
    keywordsArtificial neural networks
    keywordsAutomotive design
    keywordsComputers AND Optimization
    treeJournal of Mechanical Design:;2012:;volume( 134 ):;issue: 011
    contenttypeFulltext
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