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Small and Unbalanced Data Set Problem in Classification

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Date

2019

Journal Title

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Ieee

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Green Open Access

No

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Average
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Top 10%

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Abstract

Classification of data is difficult in case of small and unbalanced data set and this problem directly affects the classification performance. Small and / or the imbalance dataset has become a major problem in data mining. Classification algorithms are developed based on the assumption that the data sets are balanced and large enough. The most of the algorithms ignore or misclassify examples of the minority class, focus on the majority class. Small and unbalanced data set problem is frequently encountered in medical data mining due to some limitations. Within the scope of the study, the public accessible data set, hepatitis, was divided into small and imblanced data subsets, each of the data subsets were oversampled by distance based data generation methods. The oversampled data sets were classified by using four different machine learning algorithms (Artificial Neural Networks, Support Vector Machines, Naive Bayes and Decision Tree) and the classification scores were compared.

Description

Keywords

Machine Learning, Small Data Set, Imbalanced Data Set, Oversampling Methods

Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

Par, Öznur Esra; Sezer, Ebru Akçapınar; Sever, Hayri (2019). "Small and Unbalanced Data Set Problem in Classification", 27th Signal Processing and Communications Applications Conference (SIU), Sivas Cumhuriyet Univ, Sivas, TURKEY, APR 24-26, 2019.

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OpenCitations Citation Count
8

Source

27th Signal Processing and Communications Applications Conference (SIU) -- APR 24-26, 2019 -- Sivas Cumhuriyet Univ, Sivas, TURKEY

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Issue

Start Page

1

End Page

4
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Citations

CrossRef : 6

Scopus : 13

Captures

Mendeley Readers : 22

SCOPUS™ Citations

14

checked on Feb 26, 2026

Web of Science™ Citations

8

checked on Feb 26, 2026

Page Views

3

checked on Feb 26, 2026

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0.8401

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3

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