cs.AI updates on arXiv.org 07月30日 12:12
Recovering Manifold Structure Using Ollivier-Ricci Curvature
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本文提出ORC-ManL算法,基于Ollivier-Ricci曲率和估计的度量畸变标准剪枝近邻图,显著提升几何数据分析任务性能,并在单细胞RNA测序数据聚类和流形学习方面展现潜力。

arXiv:2410.01149v2 Announce Type: replace-cross Abstract: We introduce ORC-ManL, a new algorithm to prune spurious edges from nearest neighbor graphs using a criterion based on Ollivier-Ricci curvature and estimated metric distortion. Our motivation comes from manifold learning: we show that when the data generating the nearest-neighbor graph consists of noisy samples from a low-dimensional manifold, edges that shortcut through the ambient space have more negative Ollivier-Ricci curvature than edges that lie along the data manifold. We demonstrate that our method outperforms alternative pruning methods and that it significantly improves performance on many downstream geometric data analysis tasks that use nearest neighbor graphs as input. Specifically, we evaluate on manifold learning, persistent homology, dimension estimation, and others. We also show that ORC-ManL can be used to improve clustering and manifold learning of single-cell RNA sequencing data. Finally, we provide empirical convergence experiments that support our theoretical findings.

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ORC-ManL算法 近邻图剪枝 几何数据分析 单细胞RNA测序
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