sustained 发表于 2025-3-21 20:09:15

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发出眩目光芒 发表于 2025-3-21 20:35:31

Applications of PCA Based Unsupervised FE to BioinformaticsPCA based unsupervised FE ranges from biomarker identification and identification of disease causing genes to in silico drug discovery. I try to mention studies where PCA based unsupervised FE is applied as many as possible, from the published papers by myself.

conformity 发表于 2025-3-22 03:56:29

2522-848X g data.Includes several applications to multi-view data anal.This book proposes applications of tensor decomposition to unsupervised feature extraction and feature selection. The author posits that although supervised methods including deep learning have become popular, unsupervised methods have the

丧失 发表于 2025-3-22 08:27:34

Matrix Factorization matrices used to represent the original matrix by multiplication are small enough (i.e., lower rank), it can be considered to be reduction of degrees of freedom. Even if the matrix cannot be exactly represented as a product of two lower rank matrices, if it is possible for the product of matrices w

MELON 发表于 2025-3-22 09:18:24

Tensor Decompositionf matrices are considered. In contrast to the MF that is usually represented as a product of two matrices, TD has various forms. In contrast to the matrices that were extensively studied over long period, tensor has much shorter history of extensive investigations, especially from the application po

brachial-plexus 发表于 2025-3-22 14:26:30

PCA Based Unsupervised FEecially when the number of features attributed to individual samples is too huge to interpret. Mathematically, PCA is nothing but a linear projection of objects in high dimensional space onto low dimensional space. Alternatively, PC can be considered to be a tool that performs feature extraction (FE

不怕任性 发表于 2025-3-22 19:49:38

TD Based Unsupervised FEledge, e.g., class labeling and period. In this chapter, I introduce TD based unsupervised FE as a natural extension of PCA based unsupervised FE towards tensors. In contrast to PCA that can deal with only one feature, TD can deal with multiple features, e.g., gene expression and miRNA expression si

GRUEL 发表于 2025-3-22 23:07:57

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安心地散步 发表于 2025-3-23 04:47:10

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keloid 发表于 2025-3-23 07:47:26

Book 20201st editionervised methods including deep learning have become popular, unsupervised methods have their own advantages. He argues that this is the case because unsupervised methods are easy to learn since tensor decomposition is a conventional linear methodology. This book starts from very basic linear algebra
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查看完整版本: Titlebook: Unsupervised Feature Extraction Applied to Bioinformatics; A PCA Based and TD B Y-h. Taguchi Book 20201st edition Springer Nature Switzerla