A Method for Selecting a Representative Image of a Dataset Based on the Singular Value Decomposition

Pablo Soto-Quiros, Geovanni Figueroa-Mata, Nelson Zamora-Villalobos

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Resumen

In this paper, we present a novel approach for obtaining a representative image from a dataset \mathcal{M} based on the singular value decomposition (SVD). The proposed method consists of two phases: The first phase involves calculating a theoretical representative image I{T}, which is obtained using some measure of central tendency. This image I{T} may not necessarily represent an image from the dataset \mathcal{M}. Therefore, in the second phase, we calculate the practical representative image IP\in\mathcal{M} by utilizing I{T} and the image subspace generated by \mathcal{M} through an orthonormal basis, which spans the entire subspace \mathcal{M}. This basis is obtained using the SVD of the matrix formed by vectorizing the images in \mathcal{M}. Finally, we conduct simulations of the proposed method and compare it with existing methods in the literature. The advantages of our approach are analyzed and demonstrated through numerical experiments.

Idioma originalInglés
Título de la publicación alojada5th IEEE International Conference on BioInspired Processing, BIP 2023
EditorialInstitute of Electrical and Electronics Engineers Inc.
ISBN (versión digital)9798350330052
DOI
EstadoPublicada - 2023
Evento5th IEEE International Conference on BioInspired Processing, BIP 2023 - San Carlos, Alajuela, Costa Rica
Duración: 28 nov 202330 nov 2023

Serie de la publicación

Nombre5th IEEE International Conference on BioInspired Processing, BIP 2023

Conferencia

Conferencia5th IEEE International Conference on BioInspired Processing, BIP 2023
País/TerritorioCosta Rica
CiudadSan Carlos, Alajuela
Período28/11/2330/11/23

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