(An) improvement of FDR by applying EM methodEM 방법을 적용한 탐지오류율의 개선

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dc.contributor.advisorKim, Sung Ho-
dc.contributor.advisor김성호-
dc.contributor.authorKim, Eun Gyoung-
dc.contributor.author김은경-
dc.date.accessioned2018-05-23T19:35:38Z-
dc.date.available2018-05-23T19:35:38Z-
dc.date.issued2017-
dc.identifier.urihttp://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=718845&flag=dissertationen_US
dc.identifier.urihttp://hdl.handle.net/10203/241907-
dc.description학위논문(박사) - 한국과학기술원 : 수리과학과, 2017.8,[v, 63 p. :]-
dc.description.abstractIn building a graphical model, accuracy in edge detection for the model structure is crucial for the quality of the model. We explored methods for improvement of false discovery rate(FDR) by devising an estimation procedure which is more data sensitive. The estimation is made by applying an EM method where the parameters include the density function under the null hypothesis (no edge) and the location parameters of the density functions under the alternative hypothesis (presence of edge). Our approach is compared favorably with a most popular FDR tool in numerical experiments.-
dc.languageeng-
dc.publisher한국과학기술원-
dc.subjectDiscrepancy measure-
dc.subjectEdge detection-
dc.subjectEM algorithm-
dc.subjectError rate-
dc.subjectGraphical Gaussian model-
dc.subjectMixture distribution-
dc.subjectParzen window-
dc.subject차별성 값-
dc.subject에지 검출-
dc.subjectEM 알고리즘-
dc.subject탐지오류율-
dc.subject가우시안 그래프 모형-
dc.subject혼합 분포-
dc.subjectParzen 윈도우-
dc.title(An) improvement of FDR by applying EM method-
dc.title.alternativeEM 방법을 적용한 탐지오류율의 개선-
dc.typeThesis(Ph.D)-
dc.identifier.CNRN325007-
dc.description.department한국과학기술원 :수리과학과,-
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