data mining neural networks with genetic algorithms

data mining neural networks with genetic algorithms

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时间:2018-07-26

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1、DataminingneuralnetworkswithgeneticalgorithmsAjitNarayanan,EdwardKeedwellandDraganSavicSchoolofEngineeringandComputerScienceUniversityofExeterExeterEX44PTUnitedKingdomajit@dcs.ex.ac.uktel:(+)1392264064AbstractItisanopenquestionastowhatisthebestwaytoextractsymbolicrulesfromtrainedneuralnetwork

2、sindomainsinvolvingclassification.Previousapproachesbasedonanexhaustiveanalysisofnetworkconnectionandoutputvalueshavealreadybeendemonstratedtobeintractableinthatthescale-upfactorincreasesexponentiallywiththenumberofnodesandconnectionsinthenetwork.Anovelapproachusinggeneticalgorithmstosearchfo

3、rsymbolicrulesinatrainedneuralnetworkisdemonstratedinthispaper.Preliminaryexperimentsinvolvingclassificationarereportedhere,withtheresultsindicatingthatourproposedapproachissuccessfulinextractingrules.Whileitisacceptedthatfurtherworkisrequiredtoconvincinglydemonstratethesuperiorityofourapproa

4、choverothers,thereisneverthelesssufficientnoveltyintheseresultstojustifyearlydissemination.(Ifthepaperisaccepted,thelatestresultswillbereported,togetherwithsufficientinformationtoaidreplicabilityandverification.)IntroductionArtificialneuralnetworks(ANNs)areincreasinglyusedinproblemdomainsinvo

5、lvingclassification.Theyareadeptatfindingcommonalitiesinasetofseeminglyunrelateddataandforthisreasonareusedinagrowingnumberofclassificationtasks.Unfortunately,acommonlyperceivedproblemwithANNswhenusedforclassificationisthat,whileatrainedANNcanindeedclassifythedata,sometimeswithmoreaccuracytha

6、natraditional,symbolicmachinelearningapproach,thereasonsfortheirclassificationcannotbefoundeasily.TrainedANNsarecommonlyperceivedtobe‘blackboxes’whichmapinputdataontoaclassthroughanumberofmathematicallyweightedconnectionsbetweenlayersofneurons.WhiletheideaofANNsasblackboxesmaynotbeaproblemina

7、pplicationswherethereislittleinterestinthereasonsbehindclassification,thiscanbeamajorobstacleinapplicationswhereitisimportanttohavesymbolicrulesorotherformsofknowledgestructure,suchasidentificationordecisiontrees,whichareeasilyinterpretableby

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