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A new classification method by using Lorentzian distance metric

机译:洛伦兹距离度量的新分类方法

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In this study, we propose a new algorithm which works in Lorentzian space with a similar sense in the k-NN method. We exploit the distance metric of Lorentzian space in classification problem. It is a special metric which may give a zero distance for far points. To take best benefit from structural and other properties of the Lorentzian space, a special projection over the data sets is applied. By this projection, basic geometrical operations are used; namely translation (shifting), compression and rotation. Our new algorithm does classification according to the nearest neighbor in Lorentzian space. The usability and validity of the proposed classification method is tested by some public data sets such as WHOLE, VERTEBRAL, RELAX, ECOLI. The results are compared with results of well-known classical classification methods such as kNN, LDA, SVM and Bayes. As a result, our proposed algorithm produces more successful results.
机译:在这项研究中,我们提出了一种新的算法,该算法在k-NN方法中具有相似意义的Lorentzian空间中工作。我们在分类问题中利用洛伦兹空间的距离度量。这是一种特殊的度量标准,它可以使远点的距离为零。为了从洛伦兹空间的结构和其他属性中获得最大收益,对数据集进行了特殊的投影。通过这种投影,可以使用基本的几何运算;即平移(移位),压缩和旋转。我们的新算法根据洛伦兹空间中最接近的邻居进行分类。提议的分类方法的可用性和有效性已通过一些公共数据集进行了检验,例如WHOLE,VERTEBRAL,RELAX和ECOLI。将结果与著名的经典分类方法(例如kNN,LDA,SVM和Bayes)的结果进行比较。结果,我们提出的算法产生了更成功的结果。

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