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dc.contributor.authorStommel, Martin
dc.contributor.authorKuhnert, Klaus-Dieter
dc.contributor.editorSkala, Václav
dc.date.accessioned2014-05-22T08:59:18Z
dc.date.available2014-05-22T08:59:18Z
dc.date.issued2005
dc.identifier.citationWSCG '2005: Short Papers: The 13-th International Conference in Central Europe on Computer Graphics, Visualization and Computer Vision 2005 in co-operation with EUROGRAPHICS, p. 149-152.en
dc.identifier.isbn80-903100-9-5
dc.identifier.urihttp://wscg.zcu.cz/WSCG2005/Papers_2005/Short/!WSCG2005_Short_Proceedings_Final.pdf
dc.identifier.urihttp://hdl.handle.net/11025/11231
dc.description.abstractThis paper describes a method to recognize and classify complex objects in digital images. To this end, a uniform representation of prototypes is introduced. The notion of a prototype describes a set of local features which allow to recognize objects by their appearance. During a training step a genetic algorithm is applied to the prototypes to optimize them with regard to the classification task. After training the prototypes are compactly stored in a decision tree which allows a fast detection of matches between prototypes and images. The proposed method is tested with natural images of highway scenes, which were divided into 15 classes (including one class for rejection). The learning process is documented and the results show a classification rate of up to 93 percent for the training and test samples.en
dc.format4 s.cs
dc.format.mimetypeapplication/pdf
dc.language.isoenen
dc.publisherVáclav Skala - UNION Agencyen
dc.relation.ispartofseriesWSCG '2005: Short Papersen
dc.rights© Václav Skala - UNION Agencycs
dc.subjectrozpoznávání vzorcůcs
dc.subjectrozhodovací stromycs
dc.subjectgenetický algoritmuscs
dc.titleAppearance Based Recognition of Complex Objects by Genetic Prototype-Learningen
dc.typekonferenční příspěvekcs
dc.typeconferenceObjecten
dc.rights.accessopenAccessen
dc.type.versionpublishedVersionen
dc.subject.translatedpattern recognitionen
dc.subject.translateddecision treesen
dc.subject.translatedgenetic algorithmen
dc.type.statusPeer-revieweden
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