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作者:

Ji, Xinrong (Ji, Xinrong.) | Hou, Yibin (Hou, Yibin.) (学者:侯义斌) | Hou, Cuiqin (Hou, Cuiqin.) | Gao, Fang (Gao, Fang.) | Wang, Shulong (Wang, Shulong.)

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摘要:

In wireless sensor networks, classification and regression are very fundamental tasks. To reduce and balance the energy consumption of nodes during training classifiers or regression machines, a distributed incremental learning problem of kernel machine by using 1-norm regularization is studied, and an energy-balanced distributed learning algorithm for the sparse kernel machine is proposed. In this proposal, a novel incremental learning algorithm and an energy-balanced node selection strategy that takes into account the residual energy of node, the number of been accessed and the neighbors number of node are used. Simulation results show that this proposal can obtain pretty consistent prediction correct rate with the batch learning algorithm, and it can get a very simple model. Meanwhile, it has significant advantages with respect to the communication costs and the iterations. Moreover, it can reduce and balance the energy consumption of nodes.

关键词:

Wireless sensor network Incremental learning Sparse kernel machine Energy-balanced Distributed learning

作者机构:

  • [ 1 ] [Ji, Xinrong]Beijing Univ Technol, Beijing Adv Innovat Ctr Future Internet Technol, Beijing 100124, Peoples R China
  • [ 2 ] [Hou, Yibin]Beijing Univ Technol, Beijing Adv Innovat Ctr Future Internet Technol, Beijing 100124, Peoples R China
  • [ 3 ] [Gao, Fang]Beijing Univ Technol, Beijing Adv Innovat Ctr Future Internet Technol, Beijing 100124, Peoples R China
  • [ 4 ] [Wang, Shulong]Beijing Univ Technol, Beijing Adv Innovat Ctr Future Internet Technol, Beijing 100124, Peoples R China
  • [ 5 ] [Hou, Cuiqin]Beijing Univ Technol, Beijing Engn Res Ctr IoT Software & Syst, Beijing 100124, Peoples R China
  • [ 6 ] [Ji, Xinrong]Hebei Univ Engn, Sch Informat & Elect Engn, Handan 056038, Peoples R China

通讯作者信息:

  • 侯义斌

    [Hou, Yibin]Beijing Univ Technol, Beijing Adv Innovat Ctr Future Internet Technol, Beijing 100124, Peoples R China

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来源 :

NEURAL INFORMATION PROCESSING, ICONIP 2017, PT I

ISSN: 0302-9743

年份: 2017

卷: 10634

页码: 618-627

语种: 英文

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WoS核心集被引频次: 0

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