Data di Pubblicazione:
2019
Abstract:
We present a method for turning a flash selfie taken with a smartphone into a photograph as if it was taken in a studio setting with uniform lighting. Our method uses a convolutional neural network trained on a set of pairs of photographs acquired in an ad-hoc acquisition campaign. Each pair consists of one photograph of a subject's face taken with the camera flash enabled and another one of the same subject in the same pose illuminated using a photographic studio-lighting setup. We show how our method can amend defects introduced by a close-up camera flash, such as specular highlights, shadows, skin shine, and flattened images.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
Image Enhancement; Machine Learning; Computational Photography; Deep Learning
Elenco autori:
Cignoni, Paolo; Ganovelli, Fabio; Banterle, Francesco; Scopigno, Roberto
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