Representing nancial time series based on data point importance

Representing nancial time series based on data point importance

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时间:2019-07-20

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1、ARTICLEINPRESSEngineeringApplicationsofArtificialIntelligence21(2008)277–300www.elsevier.com/locate/engappaiRepresentingfinancialtimeseriesbasedondatapointimportancea,b,aabTak-chungFu,Fu-laiChung,RobertLuk,Chak-manNgaDepartmentofComputing,HongKongPolytechnicUnivers

2、ity,Hunghom,Kowloon,HongKongbDepartmentofComputingandInformationManagement,HongKongInstituteofVocationalEducation(ChaiWan),ChaiWan,HongKongReceived12September2006;receivedinrevisedform3March2007;accepted27April2007Availableonline29June2007AbstractRecently,theincre

3、asinguseoftimeseriesdatahasinitiatedvariousresearchanddevelopmentattemptsinthefieldofdataandknowledgemanagement.Timeseriesdataischaracterizedaslargeindatasize,highdimensionalityandupdatecontinuously.Moreover,thetimeseriesdataisalwaysconsideredasawholeinsteadofindiv

4、idualnumericalfields.Indeed,alargesetoftimeseriesdataisfromstockmarket.Stocktimeserieshasitsowncharacteristicsoverothertimeseries.Moreover,dimensionalityreductionisanessentialstepbeforemanytimeseriesanalysisandminingtasks.Forthesereasons,researchispromptedtoaugment

5、existingtechnologiesandbuildnewrepresentationtomanagefinancialtimeseriesdata.Inthispaper,financialtimeseriesisrepresentedaccordingtotheimportanceofthedatapoints.Withtheconceptofdatapointimportance,atreedatastructure,whichsupportsincrementalupdating,isproposedtorepre

6、sentthetimeseriesandanaccessmethodforretrievingthetimeseriesdatapointfromthetree,whichisaccordingtotheirorderofimportance,isintroduced.Thistechniqueiscapabletopresentthetimeseriesindifferentlevelsofdetailandfacilitatemulti-resolutiondimensionalityreductionofthetim

7、eseriesdata.Inthispaper,differentdatapointimportanceevaluationmethods,anewupdatingmethodandtwodimensionalityreductionapproachesareproposedandevaluatedbyaseriesofexperiments.Finally,theapplicationoftheproposedrepresentationonmobileenvironmentisdemonstrated.r2007Els

8、evierLtd.Allrightsreserved.Keywords:Financialtimeseriesrepresentation;Multi-resolutionvisualization;Incrementalupdating;Dimensionalityreduction;Treedata

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