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dc.contributor.authorUstebay, Serpil
dc.contributor.authorSertbas, Ahmet
dc.contributor.authorAydin, Gulsum Zeynep Gurkas
dc.contributor.authorTurgut, Zeynep
dc.date.accessioned2021-03-03T18:08:53Z
dc.date.available2021-03-03T18:08:53Z
dc.identifier.citationTurgut Z., Ustebay S., Aydin G. Z. G. , Sertbas A., "Deep Learning in Indoor Localization Using WiFi", 1st International Telecommunications Conference (ITelCon), İstanbul, Türkiye, 28 - 29 Aralık 2017, cilt.504, ss.101-110
dc.identifier.otherav_4d78e5aa-0331-487f-83d1-8c19481bf7e7
dc.identifier.othervv_1032021
dc.identifier.urihttp://hdl.handle.net/20.500.12627/55396
dc.identifier.urihttps://doi.org/10.1007/978-981-13-0408-8_9
dc.description.abstractIn this study, the indoor localization was performed on indoor networks. WiFi technology is located in almost every building. For this reason, WiFi technology has been selected to perform positioning, and RSSI values from WiFi technology access points have been examined. For this purpose, RFKON_MB_WIFI dataset in RFKON database which is a sample database is used and data of 18480 signal strength are analyzed. The Fingerprinting method of Scene Analysis methods is used to perform the localization process. As a first step, the signal strengths in the data set are normalized by preprocessing. In the second step, positioning was performed using SVM, PCA, LDA, KNN, N3, BNN, Naive Bayes Classification, and Deep Learning methods. When the results obtained are compared, the most successful result is obtained from deep learning that is known to have a high accuracy on big data with an accuracy of 95.95%.
dc.language.isoeng
dc.subjectMühendislik
dc.subjectMühendislik, Bilişim ve Teknoloji (ENG)
dc.subjectBilgi Sistemleri, Haberleşme ve Kontrol Mühendisliği
dc.subjectMühendislik ve Teknoloji
dc.subjectTELEKOMÜNİKASYON
dc.titleDeep Learning in Indoor Localization Using WiFi
dc.typeBildiri
dc.contributor.departmentHaliç Üniversitesi , ,
dc.identifier.volume504
dc.contributor.firstauthorID155595


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