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Ensemble of online sequential extreme learning machine

机译:在线顺序极限学习机的集合

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摘要

Liang et al. [A fast and accurate online sequential learning algorithm for feedforward networks, IEEE Transactions on Neural Networks 17 (6) (2006), 1411-1423] has proposed an online sequential learning algorithm called online sequential extreme learning machine (OS-ELM), which can learn the data one-by-one or chunk-by-chunk with fixed or varying chunk size. It has been shown [Liang et al., A fast and accurate online sequential learning algorithm for feedforward networks, IEEE Transactions on Neural Networks 17 (6) (2006) 1411-1423] that OS-ELM runs much faster and provides better generalization performance than other popular sequential learning algorithms. However, we find that the stability of OS-ELM can be further improved. In this paper, we propose an ensemble of online sequential extreme learning machine (EOS-ELM) based on OS-ELM. The results show that EOS-ELM is more stable and accurate than the original OS-ELM.
机译:梁等。 [用于前馈网络的快速,准确的在线顺序学习算法,IEEE Transactions on Neural Networks 17(6)(2006),1411-1423]提出了一种称为在线顺序极限学习机(OS-ELM)的在线顺序学习算法,该算法可以以固定或可变的块大小一对一或逐块地学习数据。 [Liang等,前馈网络的快速准确的在线顺序学习算法,IEEE Transactions on Neural Networks 17(6)(2006)1411-1423]已显示OS-ELM运行速度更快,并且具有更好的泛化性能。比其他流行的顺序学习算法。但是,我们发现OS-ELM的稳定性可以进一步提高。在本文中,我们提出了一种基于OS-ELM的在线顺序极限学习机(EOS-ELM)的集合。结果表明,EOS-ELM比原始OS-ELM更稳定,更准确。

著录项

  • 来源
    《Neurocomputing》 |2009年第15期|3391-3395|共5页
  • 作者单位

    School of Electrical and Electronic Engineering, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore;

    School of Electrical and Electronic Engineering, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore;

    School of Electrical and Electronic Engineering, Nanyang Technological University, Nanyang Avenue, Singapore 639798, Singapore;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    extreme learning machine; ensemble; online learning; sequential learning;

    机译:极限学习机;合奏;在线学习;顺序学习;

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