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Application of the probability-based covering algorithm model in text classification

机译:基于概率的覆盖算法模型在文本分类中的应用

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摘要

The probability-based covering algorithm (PBCA) is a new algorithm based on probability distribution.It decides,by voting,the class of the tested samples on the border of the coverage area,based on the probability of training samples.When using the original covering algorithm (CA),many tested samples that are located on the border of the coverage cannot be classified by the spherical neighborhood gained.The network structure of PBCA is a mixed structure composed of both a feed-forward network and a feedback network.By using this method of adding some heterogeneous samples and enlarging the coverage radius,it is possible to decrease the number of rejected samples and improve the rate of recognition accuracy.Relevant computer experiments indicate that the algorithm improves the study precision and achieves reasonably good results in text classification.
机译:基于概率的覆盖算法(PBCA)是一种基于概率分布的新算法。它基于训练样本的概率,通过投票确定覆盖区域边界上的测试样本的类别。覆盖算法(CA),位于覆盖范围边界的许多测试样本无法通过获得的球面邻域进行分类.PBCA的网络结构是由前馈网络和反馈网络组成的混合结构。使用这种方法可以增加一些异构样本并扩大覆盖半径,可以减少拒绝样本的数量,提高识别精度。相关的计算机实验表明,该算法提高了研究精度,在文本上取得了较好的效果。分类。

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  • 来源
    《中国文献情报(英文刊)》 |2009年第004期|1-17|共17页
  • 作者

    ZHOU Ying;

  • 作者单位

    Department of Information Management, Nanjing University, Nanjing 210093,China;

    School of Management, Anhui University, Hefei 230039, China;

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  • 正文语种 eng
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