English

Intrinsic Dimensionality Estimation within Tight Localities: A Theoretical and Experimental Analysis

Machine Learning 2022-09-30 v1 Computer Vision and Pattern Recognition Neural and Evolutionary Computing

Abstract

Accurate estimation of Intrinsic Dimensionality (ID) is of crucial importance in many data mining and machine learning tasks, including dimensionality reduction, outlier detection, similarity search and subspace clustering. However, since their convergence generally requires sample sizes (that is, neighborhood sizes) on the order of hundreds of points, existing ID estimation methods may have only limited usefulness for applications in which the data consists of many natural groups of small size. In this paper, we propose a local ID estimation strategy stable even for `tight' localities consisting of as few as 20 sample points. The estimator applies MLE techniques over all available pairwise distances among the members of the sample, based on a recent extreme-value-theoretic model of intrinsic dimensionality, the Local Intrinsic Dimension (LID). Our experimental results show that our proposed estimation technique can achieve notably smaller variance, while maintaining comparable levels of bias, at much smaller sample sizes than state-of-the-art estimators.

Keywords

Cite

@article{arxiv.2209.14475,
  title  = {Intrinsic Dimensionality Estimation within Tight Localities: A Theoretical and Experimental Analysis},
  author = {Laurent Amsaleg and Oussama Chelly and Michael E. Houle and Ken-ichi Kawarabayashi and Miloš Radovanović and Weeris Treeratanajaru},
  journal= {arXiv preprint arXiv:2209.14475},
  year   = {2022}
}

Comments

21 pages, 16 figures, 3 tables

R2 v1 2026-06-28T02:20:06.696Z