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Multiresolution Neural Networks for Imaging

SIBGRAPI Conference on Graphics, Patterns and Images (SIBGRAPI), 2022
25 August 2022
Hallison Paz
Tiago Novello
V. Silva
L. Schirmer
Guilherme Gonçalves Schardong
Fabio Chagas
Helio Lopes
Luiz Velho
    SupR
ArXiv (abs)PDFHTML
Abstract

We present MR-Net, a general architecture for multiresolution neural networks, and a framework for imaging applications based on this architecture. Our coordinate-based networks are continuous both in space and in scale as they are composed of multiple stages that progressively add finer details. Besides that, they are a compact and efficient representation. We show examples of multiresolution image representation and applications to texturemagnification, minification, and antialiasing. This document is the extended version of the paper [PNS+22]. It includes additional material that would not fit the page limitations of the conference track for publication.

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