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Multiview: a software package for multiview pattern recognition methods

机译:MultiView:用于多视图模式识别方法的软件包

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A Summary: Multiview datasets are the norm in bioinformatics, often under the label multi-omics. Multiview data are gathered from several experiments, measurements or feature sets available for the same subjects. Recent studies in pattern recognition have shown the advantage of using multiview methods of clustering and dimensionality reduction; however, none of these methods are readily available to the extent of our knowledge. Multiview extensions of four well-known pattern recognition methods are proposed here. Three multiview dimensionality reduction methods: multiview t-distributed stochastic neighbour embedding, multiview multidimensional scaling and multiview minimum curvilinearity embedding, as well as a multiview spectral clustering method. Often they produce better results than their single-view counterparts, tested here on four multiview datasets.
机译:摘要:MultiView数据集是生物信息学中的标准,通常在标签多OMIC下。 从多个实验中收集多视图数据,可用于同一主题的测量或功能集。 最近的模式识别研究表明了使用聚类和维数减少的多视图方法的优点; 但是,这些方法都不是我们知识的程度。 这里提出了四种众所周知的模式识别方法的多视图扩展。 三维多视图维度减少方法:多视图T分布式随机邻居嵌入,多视图多维缩放和多视图最小曲线性嵌入,以及多视图光谱聚类方法。 它们通常会产生比单视图对应物更好的结果,在这里测试在四个多视图数据集上。

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