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NoR-VDPNet++: real-time no-reference image quality metrics

Articolo
Data di Pubblicazione:
2023
Abstract:
Efficiency and efficacy are desirable properties for any evaluation metric having to do with Standard Dynamic Range (SDR) imaging or with High Dynamic Range (HDR) imaging. However, it is a daunting task to satisfy both properties simultaneously. On the one side, existing evaluation metrics like HDR-VDP 2.2 can accurately mimic the Human Visual System (HVS), but this typically comes at a very high computational cost. On the other side, computationally cheaper alternatives (e.g., PSNR, MSE, etc.) fail to capture many crucial aspects of the HVS. In this work, we present NoR-VDPNet++, a deep learning architecture for converting full-reference accurate metrics into no-reference metrics thus reducing the computational burden. We show NoR-VDPNet++ can be successfully employed in different application scenarios.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
Measurement; Deep learning; Real-time systems; Computer architecture; Distortion; Convolutional neural networks; Imaging; HDR imaging; Objective metrics; No-reference
Elenco autori:
Cignoni, Paolo; Banterle, Francesco; MOREO FERNANDEZ, ALEJANDRO DAVID; Carrara, Fabio
Autori di Ateneo:
BANTERLE FRANCESCO
CARRARA FABIO
CIGNONI PAOLO
MOREO FERNANDEZ ALEJANDRO DAVID
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/433947
Link al Full Text:
https://iris.cnr.it//retrieve/handle/20.500.14243/433947/148388/prod_481854-doc_198206.pdf
https://iris.cnr.it//retrieve/handle/20.500.14243/433947/148391/prod_481854-doc_198228.pdf
Pubblicato in:
IEEE ACCESS
Journal
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URL

https://ieeexplore.ieee.org/document/10089442
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