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Multi-way clustering and biclustering by the Ratio cut and Normalized cut in graphs

机译:图中的比率切割和归一化切割进行多路聚类和双聚类

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摘要

In this paper, we consider the multi-way clustering problem based on graph partitioning models by the Ratio cut and Normalized cut. We formulate the problem using new quadratic models. Spectral relaxations, new semidefinite programming relaxations and linearization techniques are used to solve these problems. It has been shown that our proposed methods can obtain improved solutions. We also adapt our proposed techniques to the bipartite graph partitioning problem for biclustering.
机译:在本文中,我们考虑了基于比率分割和归一化分割的图分区模型的多路聚类问题。我们使用新的二次模型来表述问题。频谱弛豫,新的半确定编程弛豫和线性化技术用于解决这些问题。已经表明,我们提出的方法可以获得改进的解决方案。我们还将我们提出的技术用于二分图划分的二部图划分问题。

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