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Conference Paper: Enhancing Effectiveness of Outlier Detections for Low Density Patterns

TitleEnhancing Effectiveness of Outlier Detections for Low Density Patterns
Authors
Issue Date2002
PublisherSpringer.
Citation
Advances in knowledge discovery and data mining 6th Pacific-Asia conference (PAKDD 2002), Taipei, Taiwan, 6-8 May 2002, p. 535-548 How to Cite?
AbstractOutlier detection is concerned with discovering exceptional behaviors of objects in data sets.It is becoming a growingly useful tool in applications such as credit card fraud detection, discovering criminal behaviors in e-commerce, identifying computer intrusion, detecting health problems, etc. In this paper, we introduce a connectivity-based outlier factor (COF) scheme that improves the effectiveness of an existing local outlier factor (LOF) scheme when a pattern itself has similar neighbourhood density as an outlier. We give theoretical and empirical analysis to demonstrate the improvement in effectiveness and the capability of the COF scheme in comparison with the LOF scheme.
Persistent Identifierhttp://hdl.handle.net/10722/93395
ISBN

 

DC FieldValueLanguage
dc.contributor.authorTang, Jen_HK
dc.contributor.authorChen, Zen_HK
dc.contributor.authorFu, Aen_HK
dc.contributor.authorCheung, DWLen_HK
dc.date.accessioned2010-09-25T14:59:47Z-
dc.date.available2010-09-25T14:59:47Z-
dc.date.issued2002en_HK
dc.identifier.citationAdvances in knowledge discovery and data mining 6th Pacific-Asia conference (PAKDD 2002), Taipei, Taiwan, 6-8 May 2002, p. 535-548-
dc.identifier.isbn3-540-43704-5-
dc.identifier.urihttp://hdl.handle.net/10722/93395-
dc.description.abstractOutlier detection is concerned with discovering exceptional behaviors of objects in data sets.It is becoming a growingly useful tool in applications such as credit card fraud detection, discovering criminal behaviors in e-commerce, identifying computer intrusion, detecting health problems, etc. In this paper, we introduce a connectivity-based outlier factor (COF) scheme that improves the effectiveness of an existing local outlier factor (LOF) scheme when a pattern itself has similar neighbourhood density as an outlier. We give theoretical and empirical analysis to demonstrate the improvement in effectiveness and the capability of the COF scheme in comparison with the LOF scheme.-
dc.languageengen_HK
dc.publisherSpringer.-
dc.relation.ispartofAdvances in knowledge discovery and data miningen_HK
dc.titleEnhancing Effectiveness of Outlier Detections for Low Density Patternsen_HK
dc.typeConference_Paperen_HK
dc.identifier.emailCheung, DWL: dcheung@cs.hku.hken_HK
dc.identifier.authorityCheung, DWL=rp00101en_HK
dc.identifier.hkuros71003en_HK

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