Elyazisi Verileri Üzerinde YSA ve DVM' nin Siniflandirma Başarimlarinin Karşilaştirilmasi

Translated title of the contribution: Comparison of SVM and ANN performance for handwritten character classification

Fatih Kahraman, Abdülkerim Çapar, Alper Ayvaci, Hakan Demirel, Muhittin Gökmen

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

7 Citations (Scopus)

Abstract

This study is about the selection of classifiers in handwritten character recogntition. The aim of the study is to determine the most appropriate classifier type for a given handwritten character feature vector. PCA based features were classified by both Multilayer Artificial Neural Networks (ANN) and Support Vector Machines (SVM), than the recognition results were compared. We select Error Backpropagation, Resilient Backpropagation and Scaled Conjugate Gradients as ANN training methods, besides selected SVM kernel types are lineer, RBF and polynomial. The experimental results shows us the SVM has beter train and test performance with respect to ANN.

Translated title of the contributionComparison of SVM and ANN performance for handwritten character classification
Original languageTurkish
Title of host publicationProceedings of the IEEE 12th Signal Processing and Communications Applications Conference, SIU 2004
EditorsB. Gunsel
Pages615-618
Number of pages4
Publication statusPublished - 2004
EventProceedings of the IEEE 12th Signal Processing and Communications Applications Conference, SIU 2004 - Kusadasi, Turkey
Duration: 28 Apr 200430 Apr 2004

Publication series

NameProceedings of the IEEE 12th Signal Processing and Communications Applications Conference, SIU 2004

Conference

ConferenceProceedings of the IEEE 12th Signal Processing and Communications Applications Conference, SIU 2004
Country/TerritoryTurkey
CityKusadasi
Period28/04/0430/04/04

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