A Classification and Novel Class Detection Algorithm for Concept Drift Data Stream Based on the Cohesiveness and Separation Index of Mahalanobis Distance

Author:

Li Xiangjun12ORCID,Zhou Yong2ORCID,Jin Ziyan3ORCID,Yu Peng2,Zhou Shun2

Affiliation:

1. School of Software, Nanchang University, Nanchang 330047, China

2. Department of Computer Science and Technology, Nanchang University, Nanchang 330031, China

3. Information and Communication Branch, State Grid Jiangxi Electric Power Co. Ltd., Nanchang 330096, China

Abstract

Data stream mining has become a research hotspot in data mining and has attracted the attention of many scholars. However, the traditional data stream mining technology still has some problems to be solved in dealing with concept drift and concept evolution. In order to alleviate the influence of concept drift and concept evolution on novel class detection and classification, this paper proposes a classification and novel class detection algorithm based on the cohesiveness and separation index of Mahalanobis distance. Experimental results show that the algorithm can effectively mitigate the impact of concept drift on classification and novel class detection.

Funder

National Natural Science Foundation of China

Publisher

Hindawi Limited

Subject

Electrical and Electronic Engineering,General Computer Science,Signal Processing

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