02 - A General Framework for Induction and a Study of Selective Induction

02 - A General Framework for Induction and a Study of Selective Induction

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时间:2019-07-10

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1、MachineLearning1:177-226,1986©1986KluwerAcademicPublishers,Boston-ManufacturedinTheNetherlandsAGeneralFrameworkforInductionandaStudyofSelectiveInductionLARRYRENDELL(RENDELL@B.CS.UIUC.EDU)DepartmentofComputerScience,UniversityofIllinoisatUrbana-Champaign,Urban

2、a,IL61801,U.S.A.(ReceivedDecember15,1985)Keywords:induction,uncertainandincrementallearning,conceptformationAbstract.Thispaperhastwomajorparts.Thefirstisanextensiveanalysisoftheproblemofinduction,andthesecondpartisadetailedstudyofselectiveinduction.Throughout

3、thepaperweintegrateanumberofnotions,mainlyfromartificialintelligence,butalsofrompatternrecognitionandcognitivepsychology.Theresultisasyntheticviewwhichexploitsuncertainty,task-guidance,andbiasessuchaslanguagerestriction.Someofthemainthemesandcontributionsarea

4、sfollows.(1)Practicalinductionisreallyaproblemofefficacyandefficiency(power).(2)Searchinaspaceofhypotheticalconceptsisgovernedbyacredibilityfunctionwhichcombinesvariousknowledgesourcesinasinglesubjectiveprobabilityorbeliefmeasureu.(3)Theamountofknowledgesuppl

5、iedbyvarioussourcescanoftenbequantified;thesesourcesincludevariousbiasesandthelearningsystemitself.(4)Inductionisequivalenttodiscoveryofautilityfunctionu,whichcapturesthepurposeorgoalofinduction.(5)Thedifficultyofinductionmaybecharacterizedbytheformofu.Smooth

6、orcoherentfunctionsmeanselectiveinduction,whichhashadthemostattentioninmachinelearning.(6)Systemsforselectiveinductionaremoresimilarthancommonlyunderstood.Byjuxtaposingthemwecandiscoversimilaritiesandimprovements.(7)Ouranalysissuggestsanumberofincipientprinci

7、plesforpowerfulinduction.0.Introduction0.1TheprevalenceandnatureofinductionInductionisanimportantbutcomplexproblemwhichhasbeenextensivelystudiedinpsychology,philosophy,patternrecognitionandartificialintelligence.Increasinginteractionamongthesefourfieldshaspro

8、motednewperspectives,andredefinedkernalsfromeachdisciplinemaysoonprovideamorecompleteunderstandingofinduction,alongwithimprovedmechanization.Thispaperpresentssomerecent178LARRYRENDELLfind

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