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Jul, 2023
在Stiefel流形上的半监督拉普拉斯学习
Semi-Supervised Laplacian Learning on Stiefel Manifolds
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Chester Holtz, Pengwen Chen, Alexander Cloninger, Chung-Kuan Cheng, Gal Mishne
TL;DR
该研究论文提出了一种基于图的半监督学习的非凸泛化解决方案,通过使用Laplacian特征向量解决了低标签率下标准算法退化的问题,并通过选择信息样本实现了较低的分类错误率。
Abstract
Motivated by the need to address the degeneracy of canonical Laplace learning algorithms in low label rates, we propose to reformulate
graph-based semi-supervised learning
as a nonconvex generalization of a \emph{
trust-
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