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1、AutomaticSalientObjectExtractionwithContextualCueLeWang,JianruXue,NanningZhengGangHuaInstituteofArtificialIntelligenceandRoboticsDepartmentofComputerScienceXi’anJiaotongUniversity,ChinaStevensInstituteofTechnology,USA{lwang,jrxue,nnzheng}@aiar.xjtu.edu.cnganghua@gmail.comAbstracts[3,19].
2、Therearemanymethodsemployingcontextcuesforobjectcategorization[15,17]andmulti-classsegmenta-Wepresentamethodforautomaticallyextractingsalien-tion[9],butfewmethodsusingcontextaimedatforegroundtobjectfromasingleimage,whichiscastinanenergyobjectsegmentationareproposed.Intuitively,theyshoul
3、dminimizationframework.Unlikemostpreviousmethodsprovidebeneficialinformationforseparatingaforegroundthatonlyleverageappearancecues,weemployanauto-objectfromitsbackground.Thismotivatedustoexplorecontextcueasacomplementarydataterm.Benefittingfromtheusageofcontextinformationforthetaskofautom
4、aticagenericsaliencymodelforbootstrapping,thesegmenta-salientobjectextractionfromasingleimage.tionofthesalientobjectandthelearningoftheauto-contextInparticular,wecasttheauto-contextmodelbyTu[20]modelareiterativelyperformedwithoutanyuserinterven-intoanenergyminimizationformulationtoimpro
5、vebothtion.Uponconvergence,weobtainnotonlyaclearsepara-theefficiencyandaccuracyforforegroundobjectsegmenta-tionofthesalientobject,butalsoanauto-contextclassifiertion.Theauto-contextmodelbuildsamulti-layerBoostingwhichcanbeusedtorecognizethesametypeofobjectinclassifieronimagefeaturesandcont
6、extfeaturessurround-otherimages.Ourexperimentsonfourbenchmarksdemon-ingapixeltopredictifthispixelisassociatedwiththetar-stratedtheefficacyoftheaddedcontextualcue.Itisshowngetconcept,wheresubsequentlayerisworkingontheclas-thatourmethodcomparesfavorablywiththestate-of-the-sificationmapsfrom
7、thepreviouslayer.Hencethroughtheart,someofwhichevenembraceduserinteractions.layeredlearningprocess,itautomaticallytakesmorespatialcontextintoconsiderationwhenclassifyingonepixel.Nevertheless,learningboththeappearancemodeland1.Introductiontheauto-contextmodeloftheforeground/back