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ID:38267558
大小:602.59 KB
页数:4页
时间:2019-05-27
《AUTOMATIC FACIAL EXPRESSION RECOGNITION USING FACIAL ANIMATION PARAMETERS AND MULTI-STREAM》由会员上传分享,免费在线阅读,更多相关内容在行业资料-天天文库。
1、AUTOMATICFACIALEXPRESSIONRECOGNITIONUSINGFACIALANIMATIONPARAMETERSANDMULTI-STREAMHMMSPetarS.AleksicandAggelosK.KatsaggelosDepartmentofElectricalandComputerEngineeringNorthwesternUniversity2145NorthSheridanRoad,Evanston,IL60208Email:{apetar,aggk}@ece.north
2、western.eduABSTRACTchangesoffacialfeatures.Sequencesoffacialimagesprovidesignificantinformationaboutthedynamicsoffacialexpressions.InthispaperwepresentanautomaticfacialexpressionFacialfeaturesusedforautomaticfacialexpressionrecognitionsystemthatutilizesmu
3、lti-streamHiddenMarkovanalysiscanbeobtainedusingtwoapproaches.Intheimage-Models(HMMs).TheproposedsystemusesFacialAnimationbasedapproach,thewholefaceimage,orimagesofpartsoftheParameters(FAPs),supportedbytheMPEG-4standard,asface,areprocessedinordertoobtainv
4、isualfeatures.Inthefeaturesdescribingfacialexpressions.Inparticular,theFAPsmodel-basedapproach,facemodelsareusedtodescribecontrollingthemovementoftheouter-lipsandeyebrowsaremovementofthevisualfeatures.Onlythemodelparametersthatusedasvisualfeaturesforclass
5、ification.Experimentswerechangeduringfacialexpressionsareusedforexpressionperformedunderseveraldifferentscenariosutilizingouter-liprecognition.PrincipalComponentAnalysis(PCA),LinearandeyebrowFAPsindividuallyandjointly.AnewapproachisDiscriminantAnalysis(LD
6、A),DiscreteCosineTransformproposedforintroducingfacialexpressionandFAPgroup(DCT),etc.,aremethodscommonlyusedtodecorrelatefacialdependentstreamweights.Theweightswerechosenbasedonfeaturesanddecreasetheirdimensionality.Suchfacialfeaturesthefacialexpressionre
7、cognitionresultsobtainedwhenFAPprovidemorereliabletrainingofclassificationsystemsandgroupstreamsareutilizedindividually.Theproposedmulti-improvetheirperformance.Inordertoperformperson-streamHMMfacialexpressionrecognitionsystemachievesindependentautomaticf
8、acialexpressionrecognitionitisrelativereductionoftheexpressionrecognitionerrorof44%,importanttonormalizethevaluesthatcorrespondtofacialcomparedtothesingle-streamHMMsystem.featurechangesusingthefacialfeaturesextracte
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