Please use this identifier to cite or link to this item: http://hdl.handle.net/10174/38732

Title: Regularisation and central limit theorems for an inverse problem in network sampling applications
Authors: Antunes, Nelson
Jacinto, Gonçalo
Pipiras, Vladas
Keywords: Inverse problem
ill-posedness
operators
regularization
estimation, central limit theorem
Issue Date: 30-Sep-2024
Publisher: Journal of Nonparametric Statistics
Citation: Antunes, N., Jacinto, G., & Pipiras, V. (2024). Regularisation and central limit theorems for an inverse problem in network sampling applications. Journal of Nonparametric Statistics, 1–19. https://doi.org/10.1080/10485252.2024.2408301
Abstract: An inverse problem motivated by packet sampling in communication networks and edge sampling in directed complex networks is studied through the operator perspective. The problem is shown to be ill-posed, with the resulting naive estimator potentially having very heavy tails, satisfying non-Gaussian central limit theorem and showing poor statistical performance. Regularisation of the problem leads to the Gaussian central limit theorem and superior performance of the regularised estimator, as a result of desirable properties of underlying operators. The limiting variance and convergence rates of the regularised estimator are also investigated. The results are illustrated on synthetic and real data from communication and complex networks.
URI: https://doi.org/10.1080/10485252.2024.2408301
http://hdl.handle.net/10174/38732
Type: article
Appears in Collections:CIMA - Publicações - Artigos em Revistas Internacionais Com Arbitragem Científica

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