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Article in English | MEDLINE | ID: mdl-21097304

ABSTRACT

Video-oculography (VOG) is a frequently used clinical technique to detect eye movements. In this research, head mounted small video-cameras and IR-illumination are employed to image the eye. Many algorithms have been developed to extract horizontal and vertical eye movements from the video images. Designing a method to determine torsional eye movements is a more complex task. The use of IR-wavelengths required for illumination in certain clinical tests results in a very low image contrast. In such images, iris textures are almost invisible, making them unsuited for direct application of standard matching algorithms, which are used to calculate torsional eye movements. This research presents the design and implementation of a robust torsional eye movement detection algorithm for VOG. This algorithm uses a new approach to measure the torsional eye movement and is suitable for low contrast videos. The algorithm is implemented in a clinical device and its performance is compared to that of alternative techniques.


Subject(s)
Algorithms , Contrast Sensitivity , Eye Movement Measurements , Eye Movements/physiology , Image Processing, Computer-Assisted/methods , Torsion, Mechanical , Video Recording/methods , Humans , Iris/physiology
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