Extracting Information from Interval Data Using Symbolic Principal Component Analysis

Author:

Oliveira M. R.,Vilela M.,Pacheco A.,Valadas Rui,Salvador Paulo

Abstract

We introduce generic definitions of symbolic variance and covariance for random interval-valued variables, that lead to a unified and insightful interpretation of four known symbolic principal component estimation methods: CPCA, VPCA, CIPCA, and SymCovPCA. Moreover, we propose the use of truncated versions of symbolic principal components, that use a strict subset of the original symbolic variables, as a way to improve the interpretation of symbolic principal components. Furthermore, the analysis of a real dataset leads to a meaningful characterization of Internet traffic applications, while highligting similarities between the symbolic principal component estimation methods considered in the paper.

Publisher

Austrian Statistical Society

Subject

Applied Mathematics,Statistics, Probability and Uncertainty,Statistics and Probability

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. MLE for the parameters of bivariate interval-valued model;Advances in Data Analysis and Classification;2023-06-18

2. Theoretical derivation of interval principal component analysis;Information Sciences;2023-04

3. Monitoring photochemical pollutants based on symbolic interval-valued data analysis;Advances in Data Analysis and Classification;2022-11-12

4. Association measures for interval variables;Advances in Data Analysis and Classification;2021-07-03

5. Classifying univariate uncertain data;Applied Intelligence;2020-11-07

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