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Real-value negative selection over-sampling for imbalanced data set learning

delete2019-09-01
delete56
PRE
AI
X
Xinmin Tao *
Prof. LI Qing 封面图
Prof. LI Qing (Qing Li)
C
Chao Ren
W
Wenjie Guo
C
Chenxi Li
Q
Qing He
R
Rui Liu
J
Junrong Zou
DOI:10.1016/j.eswa.2019.04.011delete
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摘要

摘要

En 中文
The learning problem from imbalanced data set poses a major challenge in data mining community. Conventional machine learning algorithms show poor performance in dealing with the classification problems of imbalanced data set since they are originally designed to work with balanced class distribution. In this paper, we propose a new over-sampling technique, which uses the real-value negative selection (RNS) procedure to generate artificial minority data with no requirement of actual minority data available. The generated minority data with rare actual minority data if available are combined with the majority data as input to a bi-class classification approach for learning. In the experiments, we demonstrate the effectiveness of RNS in avoiding the problems often encountered by the existing over-sampling methods such as the generation of noisy instances and almost duplicated instances in the same clusters. Moreover, the extensive experimental results on the different imbalanced datasets from UCI repository and real-world imbalanced datasets show that when dealing with the classification of imbalanced datasets, the proposed hybrid approach can achieve better performance in terms of both G-Mean and F-Measure evaluation metrics as compared to the other existing imbalanced dataset classification techniques. (C) 2019 Elsevier Ltd. All rights reserved.
Keyword:
Imbalanced data set
Over-sampling technique
Real-value negative selection
Under-sampling
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期刊

Expert Systems with Applications 封面图
Expert Systems with Applications
IF:
7.5
论文数:
2.9W
被引数:
10.2W

机构

N
northeast forestry university - china
学者数:
1.2W
论文数: 7.9K
被引数: 9
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