An active learning algorithm based on sensitivity of Madaline network
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    Abstract:

    This paper presents an active learning algorithm based on the Madaline network’s output sensitivity due to its input variation near a given sample. First, a portion of samples are used to train a Madaline network. Then, based on the sensitivity of the network, some other samples with higher sensitivity are actively selected and added into the training data to continue the training of the network. This process is repeated until the training requirement is met. Experiments verified the effectiveness and feasibility of the proposed active learning algorithm in treating discrete classification problems.

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曾晓勤,赵倩倩,何嘉晟.基于Madaline网络敏感性的主动学习算法研究[J].河海大学学报(自然科学版),2014,42(3):278-282.(ZENG Xiaoqin, ZHAO Qianqian, HE Jiasheng. An active learning algorithm based on sensitivity of Madaline network[J]. Journal of Hohai University (Natural Sciences),2014,42(3):278-282.(in Chinese))

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History
  • Received:September 16,2013
  • Revised:
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  • Online: May 20,2015
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