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Eyelid contour detection and tracking for startle research related eye-blink measurements from high-speed video records

机译:眼睑轮廓检测和跟踪,用于从高速视频记录中进行与惊吓研究相关的眨眼测量

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摘要

Using the positions of the eyelids is an effective and contact-free way for the measurement of startle induced eye-blinks, which plays an important role in human psychophysiological research. To the best of our knowledge, no methods for an efficient detection and tracking of the exact eyelid contours in image sequences captured at high-speed exist that are conveniently usable by psychophysiological researchers.In this publication a semi-automatic model-based eyelid contour detection and tracking algorithm for the analysis of high-speed video recordings from an eye tracker is presented. As a large number of images have been acquired prior to method development it was important that our technique is able to deal with images that are recorded without any special parametrisation of the eye tracker. The method entails pupil detection, specular reflection removal and makes use of dynamic model adaption.In a proof-of-concept study we could achieve a correct detection rate of 90.6%. With this approach, we provide a feasible method to accurately assess eye-blinks from high-speed video recordings.
机译:使用眼睑的位置是一种有效且无接触的测量惊吓引起的眨眼的方法,它在人类心理生理研究中起着重要的作用。据我们所知,目前尚无有效的方法可以有效地检测和跟踪高速捕获的图像序列中眼睑轮廓的精确度,这是心理生理学研究人员可以方便使用的方法。在本出版物中,基于半自动模型的眼睑轮廓检测提出了一种用于跟踪来自眼动仪的高速视频记录的跟踪算法。由于在方法开发之前已获取了大量图像,因此重要的是,我们的技术能够处理记录的图像而无需眼动仪的任何特殊设置。该方法需要进行瞳孔检测,镜面反射去除以及利用动态模型自适应。在概念验证研究中,我们可以达到90.6%的正确检测率。通过这种方法,我们提供了一种可行的方法,可以准确地评估高速视频录制中的眨眼。

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