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Perimetric testing of tritan deficiency.

Three members of a family with dominantly inherited juvenile optic atrophy tested with a computerized perimeter employing violet and blue-green test lights and low-intensity white background, all showed larger reduction in the relative sensitivity to violet light in the more central parts of the visual field compared with the periphery within 30 degrees from the center. Two subjects had typical optic atrophy, centrocecal scotoma and lower than normal visual acuity. In 1 subject with good visual acuity of both eyes, no optic atrophy was observed but there was impairment in the luminosity function (tested with white test object on white background) of the peripheral visual field.

Adult

Predictive validities of several clinical color vision tests for aviation signal light gun performance.

Scores on the American Optical Company (AOC) test (1965 edition), Dvorine test, Farnsworth Lantern test, Color Threshold Tester, Farnsworth-Munsell 100-Hue test, Farnsworth Panel D-15 test, and Schmidt-Haensch Anomaloscope were obtained from 137 men with color-defective vision and 128 men with normal color vision. The validity of each of these tests in predicting scores on the aviation signal light gun was assessed by using daytime and nighttime administrations of the light gun as the criteria. Two "best sets" of plates from the AOC and Dvorine tests were selected by calculating a multiple regression equation in a stepwise manner with the nighttime and then the daytime administration of the signal light gun test as the criteria. Based on a graphic presentation of the miss and false alarm rates for each test at various possible cut scores, suggestions were made regarding the use of each test and the selection of optimal pass/fail scores.

Aerospace Medicine

Color vision testing in young children: a review.

It is often recommended that children be screened for possible color vision deficiencies as early as possible. This paper examines the validity of commercially-available color vision tests when used with young children (age three to seven years). It is concluded that with the possible exception of the anomaloscope, no test is entirely suited for children, in most cases because the test makes cognitive demands beyond the capability of the young child.

Adult

Observations on color vision testing in ocular hypertension and glaucoma.

Forty-eight patients aged from 60 to 69 years (58 eyes) with ocular hypertension (OHT) or primary open angle glaucoma (POAG) and a control group of 16 persons (31 eyes) were studied with six color vision tests: Standard Pseudoisochromatic Plates Part 2, Farnsworth Panel D 15, Farnsworth-Munsell 100-hue (FM 100) test, Lanthony Desaturated Panel, Nagel (red-green) anomaloscope, and Besançon (blue) anomalometer. In the color vision tests, the newly diagnosed OHT eyes without treatment differed significantly from the control group in the blue anomalometer. The long-term OHT eyes with treatment had no significant difference from the normals in any of the tests. The newly diagnosed POAG eyes without treatment were significantly different from the normals in the FM 100 test as well as in the boxes I, II, III and IV of the test, in the Lanthony Desaturated Panel and in the blue anomalometer. The long-term POAG eyes with treatment only differed significantly from the normal eyes in the blue anomalometer. The box IV of the FM 100 test and blue anomalometer were observed to be the most useful of these six tests in finding the possible early beginning of the blue color vision defect in the group of newly diagnosed OHT.

Aged

Lanthony's new color test. II. Clinical evaluation.

The desaturated 15 Hue test is estimated to give about 7% false-positive single protanopic confusions. Confusions between tetartanopic and protanopic directions are not infrequent. The New Color Test findings, in general, reflect the AOH-R-R pathology but, among other things, because of the difference in their size, the classifications of both tests should not be compared. The New Color Test proves to be valuable, and can be easily employed in a routine clinical procedure. An examination scheme is proposed.

Color Perception Tests

[A railway accident a hundred years ago as reason for systematic testing of colour vision (author's transl)].

Holmgren's supposition that colour blindness was one of the causes for the train-disaster which happened on 15th November 1875 near Lagerlunda had been passed on as an established fact. The course of the accident is outlined on the basis of the court records. It shows that not colour blindness, but the fact that the engine-driver and the station-master were acting contrary to regulations resulted in the head-on collision with the opposite train. After this event systematic testing of colour vision in railway-men was instituted and the methods of examination were considerably improved.

Accidents, Traffic

The Davidson and Hemmendinger color rule as a color vision screening test.

The Davidson and Hemmendinger (DH) color rule was evaluated for color vision screening of normal and congenital color-defective subjects. Ninety-eight normal and 14 color-defective subjects were tested on the color rule under Macbeth illumination of 5,400 K. The color-defective subjects were also tested on the Nagel anomaloscope, the Farnsworth D-15, and the H-R-R pseudoisochromatic plates. The DH color rule performed as accurately as the anomaloscope and was superior to the other two tests in detecting anomalous trichromats and in discriminating protanomalous subjects. The color rule also discriminated dichromats from anomalous trichromats. For severe color-defective subjects (dichromats, achromats), the color rule was more time-consuming than the other tests and discrimination was less certain. Response patterns on the DH color rule and response variability of the different classifications are reported.

Adolescent

Berson test for blue cone monochromatism.

The Berson test for blue cone monochromatism discriminates X-linked blue cone monochromatism from achromatopsia but not from X-linked progressive c dystrophy.

Color Perception Tests

Color vision testing for the U.S. Naval Academy.

Normal color vision is a prerequisite for admission to the United States Naval Academy. The Farnsworth Lantern (FALANT) is the Navy's definitive test for color vision. A FALANT is not available at many locations where candidates are examined, so satisfactory performance on pseudoisochromatic plates has been considered an acceptable alternative. Until recently, the Farnsworth Dichotomous Test Panel D-15 had also been used as an alternative test, but is now considered unacceptable. In the summer of 1991, a large number of candidates reported for induction who were unable to pass the FALANT. Since their screening physical examinations had been reported to show normal color vision, a shadow of doubt was cast upon the ability of the alternative tests to predict performance on the FALANT. Four hundred subjects were then tested on several color vision tests to determine if these tests could predict FALANT success. The results of this study and recommendations are presented.

Adolescent

Contrast/color card procedure: a new test of young infants' color vision.

We have developed a new test which can rapidly evaluate basic color vision in individual infants. The test consists of a series of large cards constructed with Munsell Hues. It uses a modified preferential looking procedure (FPL) and, to control brightness cues, incorporates a two-phase systematic variation of luminance. First, we evaluate an infant's ability to discriminate 9.5 by 16 degrees achromatic patches of varying luminance from a 26 by 65 degrees achromatic background of midrange luminance. In the second phase the test patch is chromatic and its luminance, relative to the background, is varied over a range of about 1.0 log cd/m2. The number of relative luminances chosen for each infant depends upon his/her performance in phase 1. Seventy 2- and 3-month-olds were tested with 4 broad-band chromatic patches, a red (dominant lambda = 660 nm), a yellow (dominant lambda = 580 nm), a green (dominant lambda = 520 nm), and a blue (dominant lambda = 475 nm). Results showed that 3-month-olds had little difficulty making any of the chromatic-achromatic discriminations but many 2-month-olds appeared to fail to discriminate the yellow and green from the background at relative luminances close to an adult brightness match. Most importantly, the test shows promise as a relatively simple, time-efficient, and portable tool for the assessment of early color vision.

Color Perception Tests

Acquired 'tritan' deficiencies in macular pathology.

14 patients with maculopathy (18 eyes affected, 10 eyes clinically normal) were examined using the HRR plates, the Farnsworth F2 (tritan) plate, the Farnsworth panel D15 test, the Nagel anomaloscope (model I) and on a 'blue-green' equation for 2 degrees and 11 degrees fields on the Moreland anomaloscope. The correlation of tritan-like responses to each test and the differences between the 2 degrees and 11 degrees equations are discussed.

Adult

Colorimetry by a new principle.

A simple and informative method is described for determining the type and extent of color defects. The subjects' responses are registered automatically on a chromaticity diagram that is based on the newtonian model. Color defects are readily identifiable by a skewing of the normal central gray area toward the defectively perceived color. The examination permits independent variation of hue and saturation for each color and requires less than five minutes for the entire procedure. Unlike conventional color tests, the present method indicates exactly what colors are or are not seen at any level of saturation.

Adolescent

Color vision: blue deficiencies in children?

Recent publicized reports based on the use of the Farnsworth Panel D-15 test suggest that a large percentage of young children have a deficiency of blue vision (tritan type). In our study, 413 school children (ages 3 to 10) were tested with both the Farnsworth Panel D-15 test, as well as the A.O. H-R-R plates. None of the children failed either test for blue-yellow vision when traditional scoring instructions were observed. As in previous reports, we find that the children make a number of minor errors which adults rarely make. These errors show marked age-related patterns, being more frequent in younger children. However, further analysis of these errors revealed that the relative frequency with which particular error types were made on the D-15 test was significantly correlated with the existing perceived color difference data for the visually normal adult population. In addition, retesting significantly reduced all error types and reversing the test sequence demonstrated that most of the minor errors were made in the last half of the test regardless of the color vision task. The overall increase in the number of minor test errors seen with young children seems unrelated to color defects. The modified scoring methods in conjunction with the characteristics of the Panel D-15 test design account for the high percentage of errors classified as errors of blue vision.

Age Factors

The Ishihara Test: on the prevention of job discrimination.

Experiments were carried out to answer questions relative to the use of the 24-plate edition of the Ishihara Test for Colour-Blindness as a screening instrument for detecting the presence of inherited color defective vision. Subjects and their numbers varied between some experiments. Some subjects had normal color vision and others had inherited color defectiveness as confirmed with a Nagel anomaloscope. Most of the 157 subjects who participated in the experiments were either young deaf college students or police recruits with normal hearing who did not pass the Ishihara Test during their respective visual screening processes. Some hearing faculty and staff participated as part of Experiment 2. Item analysis and statistics applied to test the significance of differences between group means were applied to derive the following results: (a) test-retest reliability for the Ishihara is high both for persons with inherited color defectiveness and normal color vision; (b) persons making fewer than five errors on the first 13 plates made common incidental (nontypical) errors not related to color defective vision; and (c) five (5) or more errors was identified with some degree of inherited color defective vision, and subsequent referral for additional color vision diagnostics is warranted. Failure to utilize the recommended "pass-fail" criterion and/or to allow clients who fail color vision screening recourse to additional testing to establish type and degree of color defective vision may unnecessarily lead to job discrimination and/or interfere in a negative manner with the career selection process.

Adolescent

[Value of very low voltage halogen lighting of desaturated panel D 15 test in established glaucoma].

The colour vision of a first group of glaucomatous patients was tested with the desaturated Panel D 15 test, first illuminated by a 300 lux Macbeth lamp, then with a very low voltage 1000 lux halogen lamp. In addition to the recording of 80% cases of dyschromatopsia, in line with previously published data, we demonstrated a great number (33.3%) of red-green axis anomalies under Macbeth light and, paradoxically, even more under halogen light (53.3%). To explain this high percentage of red-green axes under halogen light, we discuss the influence of luminance and emission spectrum of the light source. We conclude that the use of high luminance halogen light is capable of revealing concealed Verriest type II dyschromatopsias probably due to a specific fragilisation of the red-green channels induced by the glaucoma disease. This original colour vision testing procedure applied on established glaucomatous patients enabled us to easily obtain a factor of severity in the course of the disease.

Adult

[Discrimination curve of color hues].

The hue discrimination curve has been studied in 48 cases of acquired dyschromatopsias not as it is the rule in relation with the nosology but in relation with the classifications as they are given by the test of Farnsworth. The results show with evidence different characters according to the type of dyschromatopsia: protan deutan or tritan.

Color Perception Tests

Clinical implications of color vision research.

The attributes of color and the mechanisms underlying normal and defective color vision are reviewed. The clinical implications of some research efforts bearing on congenital and acquired color defects, peripheral color vision, and the influence of photostable pigments on color vision and color vision tests is presented. This presentation is intended to illustrate how selected avenues of research have contributed to our understanding of color vision and to demonstrate the clinical utility of that research.

Color Perception

Colour contrast sensitivity changes caused by peripheral retinal laser photocoagulation.

Macular phototoxicity is known to occur with laser use, and there is evidence that the wavelength of the light used influences this effect. In this study, a computer based colour contrast sensitivity test was used to assess the immediate macular effects of photocoagulation of peripheral flat retinal holes in otherwise normal retinas, using blue-green (488 and 514 nm), yellow (577 nm), orange (595 nm) or red (647 nm) laser light. The laser aiming beam was not allowed to traverse the macula at any stage during treatment. No protan or deutan axis threshold changes were noted in the 17 patients tested irrespective of the laser wavelength used. Tritan axis sensitivity was significantly reduced one hour after treatment with the blue-green laser, but no tritan axis change was found after treatment with longer wavelength lasers. The effect was no longer present the day after treatment in the subjects tested. The results show that even peripheral retinal treatment with blue-green laser can cause acute macular phototoxicity.

Color Perception