Localized Components Analysis
时间:2025-05-02
时间:2025-05-02
Abstract. We introduce Localized Components Analysis (LoCA) for describing surface shape variation in an ensemble of biomedical objects using a linear subspace of spatially localized shape components. In contrast to earlier methods, LoCA optimizes explicit
LocalizedComponentsAnalysis
DanAlcantara1,a,OwenCarmichael1,a,b,EricDelson2,3,
WillHarcourt-Smith2,3,KirstenSterner3,StephenFrost4,RebeccaDutton5,PaulThompson5,HowardAizenstein6,a,OscarLopez6,b,JamesBecker6,a,b,c,
andNinaAmenta1,a
ComputerScienceandbNeurologyDepartments,UniversityofCalifornia,Davis
2LehmanCollegeoftheCityUniversityofNewYork
3NYCEP,AmericanMuseumofNaturalHistory
4AnthropologyDepartment,UniversityofOregon
5NeurologyDepartmentandLaboratoryofNeuroImaging,UniversityofCalifornia,
LosAngeles
6abcPsychiatry,Neurology,andPsychologyDepartments,UniversityofPittsburgh1a
Abstract.WeintroduceLocalizedComponentsAnalysis(LoCA)fordescribingsurfaceshapevariationinanensembleofbiomedicalob-jectsusingalinearsubspaceofspatiallylocalizedshapecomponents.Incontrasttoearliermethods,LoCAoptimizesexplicitlyforlocalizedcomponentsandallowsa exibletrade-o betweenlocalizedandconciserepresentations.ExperimentscomparingLoCAtoavarietyofcompetingshaperepresentationmethodson2Dand3DshapeensemblesestablishthesuperiorabilityofLoCAtomodulatethelocality-concisenesstrade-o andgenerateshapecomponentscorrespondingtointuitivemodesofshapevariation.Ourformulationoflocalityintermsofcompatibilitybetweenpairsofsurfacepointsisshowntobe exibleenoughtoen-ablespatially-localizedshapedescriptionswithattractivehigher-orderpropertiessuchasspatialsymmetry.
1Introduction
Theparameterizationofanensembleofbiomedicalshapesisakeystepinabroadarrayofscienti candmedicalapplicationsthatrequirequanti cationoftheshapepropertiesofphysicalobjects.Inthispaper,shapeparameterizationreferstotheproblemofconvertingarepresentationofthedelineatingbound-aryofanobjectin2Dor3Dintoaconcisevectorofnumbersthatcapturesitssalientshapecharacteristics.Convertingthepotentiallycomplexboundaryofabiologicalobjectsuchasanorganorboneintoasmallsetofshapepara-metersfacilitatesavarietyofstatisticalanalyses,includingthecharacterizationofshapevariabilityacrossanensemble;comparisonofobjectshapebetweengroups;andthetrackingofshapechangeovertime.Itisimportanttopresenttheresultsoftheseanalysesinanintuitivewaytoencouragetheconnectionoftheshapeanalysistodomain-speci cphysicalorbiologicalprocesses.Forin-stance,theinterpretabilityofstatisticaltestsofbrainregionshapedi erencesbetweenhealthyanddiseasedsubjectswouldbeenhancedifdi erencescouldN.KarssemeijerandB.Lelieveldt(Eds.):IPMI2007,LNCS4584,pp.519–531,2007.cSpringer-VerlagBerlinHeidelberg2007
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