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Colour vision deficiency [PDF]

open access: yesEye, 2009
Colour vision deficiency is one of the commonest disorders of vision and can be divided into congenital and acquired forms. Congenital colour vision deficiency affects as many as 8% of males and 0.5% of females--the difference in prevalence reflects the fact that the commonest forms of congenital colour vision deficiency are inherited in an X-linked ...
Matthew P Simunovic
exaly   +4 more sources
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Colour vision deficiency in teaching dermatology

Clinical and Experimental Dermatology, 2023
The role of colour vision deficiency is rarely discussed in dermatology education. The authors present some of their own experiences and useful modifications, which have enabled them to improve teaching outcomes.
Alexander Salava, Jaakko Hoffström
openaire   +2 more sources

Seeing Colours: Addressing Colour Vision Deficiency with Vision Augmentations using Computational Glasses

ACM Transactions on Computer-Human Interaction, 2022
Colour vision deficiency is a common visual impairment that cannot be compensated for using optical lenses in traditional glasses, and currently remains untreatable. In our work, we report on research on Computational Glasses for compensating colour vision deficiency.
Jonathan Sutton, Tobias Langlotz
exaly   +2 more sources

Improved colour-to-grey method using image segmentation and colour difference model for colour vision deficiency

open access: yesIET Image Processing, 2018
Colour vision deficiency (CVD) is a genetic condition that has troubled people for a long time. This study proposes an improved colour-to-grey method for CVD using image segmentation and a colour difference model.
Mohammed Bennamoun   +2 more
exaly   +1 more source

Colour Vision Deficiencies X

1991
The effect of hyperbaric oxygen therapy on colour discrimination and fluorescein angiography in edematous ...
FOSSARELLO, MAURIZIO   +7 more
openaire   +3 more sources

A VDU colour vision test for congenital colour vision deficiencies

1991
The aim of this study was to develop a computer-based test for colour vision deficiencies. In order to compare colour stimuli of standard tests with colour stimuli of a VDU, we compared the gamut of our VDU to the chromaticity coordinates of standard tests. We also implemented the Farnsworth D-15 test and one plate from the Ishihara Pseudo-Isochromatic
G. Derefeldt   +3 more
openaire   +1 more source

Colour Vision Deficiencies VIII

Archives of Ophthalmology, 1988
This volume presents the proceedings of the Eighth Symposium of the International Research Group on Colour Vision Deficiencies held in June 1985. The contributors are among the world's leading visual psychophysicists, with strong commitments to investigation of visual system disorders.
openaire   +2 more sources

Basic phenomena in acquired colour vision deficiency

Documenta Ophthalmologica, 1983
Acquired colour vision defects are directly related to the fixation mode: blue-yellow defects in foveolar fixation, blue-yellow or red-green defects in eccentric fixation. The primary localization of a disease can be retraced from the degree of cone damage. Optic nerve diseases essentially lack signs of cone damage.
A, Pinckers, M, Marré
openaire   +2 more sources

Colour vision deficiency correction in image processing

2013 IEEE International Conference on Bioinformatics and Biomedicine, 2013
In the Human eye there are two types of image receptor cells cones and rods. Rods are helpful for seeing the image in low light or in the dark whereas the cones work for seeing the image in different colours. Both the receptors cells are found in retina of human eye. They contain three colour pigments Red (Large Bandwidth), Green (Medium Bandwidth) and
Mahua Bhattacharya
exaly   +3 more sources

Molecular genetics of colour vision deficiencies

Clinical and Experimental Optometry, 2004
The normal X-chromosome-linked color-vision gene array is composed of a single long-wave-sensitive (L-) pigment gene followed by one or more middle-wave-sensitive (M-) pigment genes. The expression of these genes to form L- or M-cones is controlled by the proximal promoter and by the locus control region.
openaire   +3 more sources

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