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Two Pseudo‑Common Vectors for Pattern Recognition

机译:用于模式识别的两个伪常见的矢量

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In this paper, the mathematical model used in finding the common vectors of classes in pattern recognition problems is reconsidered to obtain possible alternative solutions for the common vectors. Since the number of unknowns is always one larger than the number of equations in the mathematical model, the best solution to the problem seems to be the pseudoinverse solutions. We obtained two forms of common vectors, called “pseudo-common vectors,” using the proposed idea. Computational simplifications are accomplished as shown in the paper since we know that taking pseudo-inverses is an exhaustive procedure especially in the high-dimensional vector spaces. The two forms of pseudo-common vectors obtained in the paper are used in the classification of the data given in TI-Digit, AR-Face, and MNIST databases separately in order to see their effectiveness.
机译:在本文中,重新考虑了在模式识别问题中找到类别的公共载体的数学模型,以获得公共载体的可能替代解决方案。由于未知数的数量始终比数学模型中的方程数大一个,因此问题的最佳解决方案似乎是伪倾向解决方案。我们使用所提出的想法获得了两种形式的常见载体,称为“伪常见的载体”。如本文所示完成的计算简化,因为我们知道考虑伪反转是一种详尽的过程,尤其是在高维向量空间中。本文中获得的两种形式的伪常见载体用于分别在Ti-Digit,Ar-Face和Mnist数据库中的数据分类中,以便看到其有效性。

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