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PubMed · 6776865

The eye-tracking test.

Abstract

Quantitative assessment of the electronystagmogram of the eye-tracking test (eye-tracking pattern) was undertaken in 20 normal subjects and 70 patients with vertigo. The abnormal recordings, contrary to the normal, showed, in varying degrees, remarkable irregularties of eye speed. These irregularties appeared in the form of spikes on the electronystagmogram at the time constant of 0.03 second. We measured the height of the spikes using 40 degrees/sec as a unit added the units of spikes appearing during a nine-second period to obtain the total index. Total indices ranged from zero (normal) to 40 + (severely abnormal), and their values showed levels of abnormality in the eye-tracking pattern more accurately than the visual analysis in current use. Standardization of the eye-tracking test, especially of the target velocity, is required for the purpose of comparing abnormalities of eye-tracking patterns recorded in different clinics. In considerations of the results of several good reports on target velocities, we have the following remarks: 1) The maximum velocity of a target which normal subjects can follow without delay of the eye movement is about 20 degrees/sec. 2) When pursuit eye movements of normal subjects are registered with the aid of an electronystagmography, the eye-tracking patterns will remain normal at target velocities of up to 45 degrees/sec. 3) In order to detect abnormalities of pursuit eye movement with the aid of an electronystagmograph, the target velocity should be as fast as possible, but not exceeding 45 degrees/sec. As an instrument for the examination of pursuit eye movements, for reasons outlined in the text, the Umeda circular eye-tracking test apparatus (amplitude 40 degrees, frequency 0.33 Hz, and target veolocity 42 degrees/sec) is ideal. The target amplitude and technical problems in making the apparatus also are discussed.

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Y Umeda. The eye-tracking test.. https://pubmed.ncbi.nlm.nih.gov/6776865/

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Manual rotational testing of the vestibulo-ocular reflex.

OBJECTIVES/HYPOTHESIS: Manual whole-body and head-on-body rotational testing of the vestibuloocular reflex (VOR) is comparable to conventional rotary chair methods with and without visual fixation from 0.025 to 1 Hz. STUDY DESIGN: Summary of four previously published trials from our laboratory and a fifth prospective blinded study comparing whole-body and head-on-body rotation with rotational chair results from 0.025 to 1 Hz in 10 patients with bilateral vestibular dysfunction. METHODS: Subjects were fitted with standard electro-oculogram (EOG) electrodes and placed in the rotary chair for testing at 0.025, 0.05, 0.1, 0.25, 0.5, and 1 Hz in the dark (VOR) and in the light with a stationary target (VVOR). They were then placed in an otolaryngology examination, chair where an adjustable headband containing the velocity sensor and an opaque visor were placed on the forehead. Whole-body rotational trials from 0.025 to 1 Hz and both passive and active head-on-body trials from 0.25 to 1 Hz were performed with and without visual fixation. Data from each frequency were analyzed cycle-by-cycle and averaged for gain, phase, and asymmetry. These values were then compared to the results obtained during rotational chair testing. RESULTS: Throughout the five studies, no systematic differences were noted between the manual rotational methods and the rotary chair results. Specifically, no consistent effect of volition or cervico-ocular reflex (COR) enhancement was demonstrated. CONCLUSIONS: Manual rotational testing is a reliable technique for measuring the VOR up to 1 Hz as compared with standard rotary chair methods. Advantages to this technique include portability, lower equipment costs, and potential application up to 6 Hz using head-on-body rotation.

Electronystagmography↗