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Adversarial Networks for Spatial Context-Aware Spectral Image Reconstruction from RGB

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

122 Citas (Scopus)
3 Descargas (Pure)

Resumen

Hyperspectral signal reconstruction aims at recovering the original spectral input that produced a certain trichromatic (RGB) response from a capturing device or observer. Given the heavily underconstrained, non-linear nature of the problem, traditional techniques leverage different statistical properties of the spectral signal in order to build informative priors from real world object reflectances for constructing such RGB to spectral signal mapping. However, most of them treat each sample independently, and thus do not benefit from the contextual information that the spatial dimensions can provide. We pose hyperspectral natural image reconstruction as an image to image mapping learning problem, and apply a conditional generative adversarial framework to help capture spatial semantics. This is the first time Convolutional Neural Networks -and, particularly, Generative Adversarial Networks- are used to solve this task. Quantitative evaluation shows a Root Mean Squared Error (RMSE) drop of 44.7% and a Relative RMSE drop of 47.0% on the ICVL natural hyperspectral image dataset.
Idioma originalInglés
Título de la publicación alojadaunknown
EditorialIEEE
Páginas480-490
Número de páginas11
ISBN (versión digital)9781538610343
DOI
EstadoPublicada - oct 2017
Evento16th IEEE International Conference on Computer Vision Workshops, ICCVW 2017 - Venice, Italia
Duración: 22 oct 201729 oct 2017

Serie de la publicación

Nombre2018-January

Conferencia

Conferencia16th IEEE International Conference on Computer Vision Workshops, ICCVW 2017
País/TerritorioItalia
CiudadVenice
Período22/10/1729/10/17

Palabras clave

  • Hyperspectral imaging
  • Deep learning
  • Generative adversarial networks
  • Color

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