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dc.contributor.authorARIK, Doğan
dc.contributor.authorKARAL, Ömer
dc.contributor.authorŞAHİN, Asaf Behzat
dc.date.accessioned2024-03-12T05:58:30Z
dc.date.available2024-03-12T05:58:30Z
dc.date.issued2020
dc.identifier.issn2147-3188
dc.identifier.urihttp://dspace.beu.edu.tr:8080/xmlui/handle/123456789/14468
dc.description.abstractThe classification of radar targets is one of the most important study topics, especially in the defense and automotive industries. However, in most of the studies in the literature, raw radar signals are used. Raw radar signals may be subject to ambient noise and signal modulation effects. This may make it difficult to classify radar targets. In this study, instead of using raw data, Fourier-based features extracted from Radar Cross-sectional Area have been used. These extracted features are then input to two types of classifiers, ie, Naive Bayes (NB) and Artificial Neural Networks (ANN) for the classification of radar targets. In addition, both classifiers were trained with different algorithms and their performances were compared. In the ANN-based classifiers, the best accuracy was found that 96.69% with using Bayesian regularization and back propagation training function. On the other hand, the best accuracy with the NB classifier was achieved at 93.95% using Epanechnikov Kernel Distribution. The result presented here demonstrates that Fourier transform based feature extraction can be used effectively in radar target classification applications.tr_TR
dc.language.isoEnglishtr_TR
dc.publisherBitlis Eren Üniversitesitr_TR
dc.rightsinfo:eu-repo/semantics/openAccesstr_TR
dc.subjectArtificial neural networkstr_TR
dc.subjectnaïve bayes classifiertr_TR
dc.subjectradar cross sectiontr_TR
dc.subjecttarget classificationtr_TR
dc.titleA Comparative Study of Artificial Neural Networks and Naïve Bayes Techniques for the Classification of Radar Targetstr_TR
dc.typeArticletr_TR
dc.identifier.issue4tr_TR
dc.identifier.startpage1779tr_TR
dc.identifier.endpage1788tr_TR
dc.relation.journalBitlis Eren Üniversitesi Fen Bilimleri Dergisitr_TR
dc.identifier.volume9tr_TR


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