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Memetic Extreme Learning Machine

delete2016-10-01
delete58
PRE
AI
张
张咏珊 (Yongshan Zhang)
Jia Wu cover
Jia Wu (Jia Wu) *
Z
Zhihua Cai
P
Peng Zhang
L
Ling Chen
DOI:10.1016/j.patcog.2016.04.003delete
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Abstract

Abstract

En 中文
Extreme Learning Machine (ELM) is a promising model for training single-hidden layer feedforward networks (SLFNs) and has been widely used for classification. However, ELM faces the challenge of arbitrarily selected parameters, e.g., the network weights and hidden biases. Therefore, many efforts have been made to enhance the performance of ELM, such as using evolutionary algorithms to explore promising areas of the solution space. Although evolutionary algorithms can explore promising areas of the solution space, they are not able to locate global optimum efficiently. In this paper, we present a new Memetic Algorithm (MA)-based Extreme Learning Machine (M-ELM for short). M-ELM embeds the local search strategy into the global optimization framework to obtain optimal network parameters. Experiments and comparisons on 46 UCI data sets validate the performance of M-ELM. The corresponding results demonstrate that M-ELM significantly outperforms state-of-the-art ELM algorithms. (C) 2016 Elsevier Ltd. All rights reserved.
Keywords:
Extreme Learning Machine
Self-adaptive
Memetic Algorithm
Evolutionary Machine Learning
Classification
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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Pattern Recognition cover
Pattern Recognition
IF:
7.6
Papers:
1.3W
Citations:
4.5W

Organization

C
China University of Geosciences
Scholars:
3.7W
Papers: 2.8W
Citations: 4.3W
U
university of technology sydney
Scholars:
1.6W
Papers: 2.0W
Citations: 25
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