Açık Akademik Arşiv Sistemi

LECTURE NOTES IN COMPUTER SCIENCE

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dc.contributor.authors Erdem, Z; Polikar, R; Yumusak, N; Gurgen, F;
dc.date.accessioned 2020-01-13T07:57:04Z
dc.date.available 2020-01-13T07:57:04Z
dc.date.issued 2005
dc.identifier.citation Erdem, Z; Polikar, R; Yumusak, N; Gurgen, F; (2005). LECTURE NOTES IN COMPUTER SCIENCE. COMPUTER AND INFORMATION SICENCES - ISCIS 2005, PROCEEDINGS, 3733, 331-322
dc.identifier.isbn 3-540-29414-7
dc.identifier.issn 0302-9743
dc.identifier.uri https://hdl.handle.net/20.500.12619/2518
dc.description.abstract Support Vector Machines (SVMs) have been applied to solve the classification of volatile organic compounds (VOC) data in some recent studies. SVMs provide good generalization performance in detection and classification of VOC data. However, in many applications involving VOC data, it is not unusual for additional data, which may include new classes, to become available over time, which then requires an SVM classifier that is capable of incremental learning that does not suffer from loss of previously acquired knowledge. In our previous work, we have proposed the incremental SVM approach based on Learn(++).MT. In this contribution, the ability of SVMLearn(++).MT to incrementally classify VOC data is evaluated and compared against a similarly constructed Learn(++).MT algorithm that uses radial basis function neural network as base classifiers.
dc.language English
dc.publisher SPRINGER-VERLAG BERLIN
dc.subject Computer Science
dc.title LECTURE NOTES IN COMPUTER SCIENCE
dc.type Proceedings Paper
dc.identifier.volume 3733
dc.identifier.startpage 322
dc.identifier.endpage 331
dc.contributor.department Sakarya Üniversitesi/Bilgisayar Ve Bilişim Bilimleri Fakültesi/Bilgisayar Mühendisliği Bölümü
dc.contributor.saüauthor Yumuşak, Nejat
dc.relation.journal COMPUTER AND INFORMATION SICENCES - ISCIS 2005, PROCEEDINGS
dc.identifier.wos WOS:000234179600033
dc.contributor.author Yumuşak, Nejat


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