英语翻译Text categorization refers to the task of assigningthe p
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英语翻译
Text categorization refers to the task of assigning
the pre-defined classes to text documents based on their
content.k-NN algorithm is one of top performing classifiers
on text data.However,there is little research work on
the use of different voting methods over text data.Also,
when a huge number of training data is available online,
the response speed slows down,since a test document has to
obtain the distance with each training data.On the other hand,
min–max-modular k-NN (M3-k-NN) has been applied to
large-scale text categorization.M3-k-NN achieves a good
performance and has faster response speed in a parallel computing
environment.In this paper,we investigate five different
voting methods for k-NN and M3-k-NN.The
experimental results and analysis show that the Gaussian
voting method can achieve the best performance among all
voting methods for both k-NN and M3-k-NN.In addition,M3-k-NN uses less k-value to achieve the better performance
than k-NN,and thus is faster than k-NN in a parallel computing
environment
大概翻译下就可以了.
Text categorization refers to the task of assigning
the pre-defined classes to text documents based on their
content.k-NN algorithm is one of top performing classifiers
on text data.However,there is little research work on
the use of different voting methods over text data.Also,
when a huge number of training data is available online,
the response speed slows down,since a test document has to
obtain the distance with each training data.On the other hand,
min–max-modular k-NN (M3-k-NN) has been applied to
large-scale text categorization.M3-k-NN achieves a good
performance and has faster response speed in a parallel computing
environment.In this paper,we investigate five different
voting methods for k-NN and M3-k-NN.The
experimental results and analysis show that the Gaussian
voting method can achieve the best performance among all
voting methods for both k-NN and M3-k-NN.In addition,M3-k-NN uses less k-value to achieve the better performance
than k-NN,and thus is faster than k-NN in a parallel computing
environment
大概翻译下就可以了.
文本分类是指分配的任务
在预先确定的类别,以文本文件的基础上内容.的K -神经网络算法是一种效果最好的分类
对文本数据.然而,很少有研究工作
使用不同的投票方式的文字资料.也,
当大量的培训资料可在网上查阅,的响应速度变慢,因为一个测试文件,以
获得距离每个训练数据.另一方面,
民最大模块化的K -神经网络(立方米钾网络)已应用于大规模文本分类.M3的钾神经网络实现了良好的
性能和更快的反应速度的并行计算环境.在本文中,我们调查五个不同
投票方法的K -神经网络和M3钾网络.那个
实验结果和分析表明,高斯
投票方法可以实现最佳的性能在所有
投票方法为的K -神经网络和M3钾网络.此外,M3的钾网络使用较少的K值,以实现更好的性能比的K -神经网络,从而为快的K -神经网络的并行计算
环境
我是按一个一个单词翻译的,没按句子翻,所以可能有点看不懂,但不过你说"大概",我也就……
在预先确定的类别,以文本文件的基础上内容.的K -神经网络算法是一种效果最好的分类
对文本数据.然而,很少有研究工作
使用不同的投票方式的文字资料.也,
当大量的培训资料可在网上查阅,的响应速度变慢,因为一个测试文件,以
获得距离每个训练数据.另一方面,
民最大模块化的K -神经网络(立方米钾网络)已应用于大规模文本分类.M3的钾神经网络实现了良好的
性能和更快的反应速度的并行计算环境.在本文中,我们调查五个不同
投票方法的K -神经网络和M3钾网络.那个
实验结果和分析表明,高斯
投票方法可以实现最佳的性能在所有
投票方法为的K -神经网络和M3钾网络.此外,M3的钾网络使用较少的K值,以实现更好的性能比的K -神经网络,从而为快的K -神经网络的并行计算
环境
我是按一个一个单词翻译的,没按句子翻,所以可能有点看不懂,但不过你说"大概",我也就……
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