Multiple Random Masking Autoencoder Ensembles for Robust Multimodal Semi-supervised Learning

Fuente: arXiv
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Main Authors: Todoran, Alexandru-Raul, Leordeanu, Marius
Format: Preprint
Published: 2024
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author Todoran, Alexandru-Raul
Leordeanu, Marius
author_facet Todoran, Alexandru-Raul
Leordeanu, Marius
contents There is an increasing number of real-world problems in computer vision and machine learning requiring to take into consideration multiple interpretation layers (modalities or views) of the world and learn how they relate to each other. For example, in the case of Earth Observations from satellite data, it is important to be able to predict one observation layer (e.g. vegetation index) from other layers (e.g. water vapor, snow cover, temperature etc), in order to best understand how the Earth System functions and also be able to reliably predict information for one layer when the data is missing (e.g. due to measurement failure or error).
format Preprint
id arxiv_https___arxiv_org_abs_2402_08035
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Multiple Random Masking Autoencoder Ensembles for Robust Multimodal Semi-supervised Learning
Todoran, Alexandru-Raul
Leordeanu, Marius
Computer Vision and Pattern Recognition
There is an increasing number of real-world problems in computer vision and machine learning requiring to take into consideration multiple interpretation layers (modalities or views) of the world and learn how they relate to each other. For example, in the case of Earth Observations from satellite data, it is important to be able to predict one observation layer (e.g. vegetation index) from other layers (e.g. water vapor, snow cover, temperature etc), in order to best understand how the Earth System functions and also be able to reliably predict information for one layer when the data is missing (e.g. due to measurement failure or error).
title Multiple Random Masking Autoencoder Ensembles for Robust Multimodal Semi-supervised Learning
topic Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2402.08035