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[借助眼电图在注视转移时进行眼动检测]

[Eye movement detection with the aid of the oculogram in shifting the gaze].

作者信息

Belov D R, Eram S Iu, Kolodiazhnyĭ S F, Kanunikov I E, Getmanenko O V

出版信息

Ross Fiziol Zh Im I M Sechenova. 2009 Apr;95(4):347-58.

Abstract

Eye saccades are accompanied by changes of ocular electric potential. The sign of these changes involves a function of electrode location and eye movement direction while an indicator of the rotation angle is the amplitude. Based on the spatial distribution of the ocular potential one can solve an inverse problem and recover eye movement trajectory to be used for on-line computer control. To achieve this a system has to be able to place a cursor to a point on a screen corresponding to the current gaze direction of the user. We used four electrodes, two inferior and two lateral around the ocular depths. Inferior electrodes were used for estimation of the vertical gaze shift component and the lateral electrodes for estimation of the horizontal component. We detected and processed saccadic unipolar potential changes whose morphology resembles that of the step function. Detection and processing was performed using our proprietary multistage filter applied to the 4-channel data. The output of this filter was used to compute eye rotation parameters. Characteristic potential changes during the spontaneous blinks were identified and excluded from processing. Voluntary winks were used to mimic mouse clicks. In the beginning, our subjects went through a calibration stage during which they had to follow the cursor in eight basic directions. Using the calibration results the inverse problem was solved, i. e. based on the spatial distribution of ocular potential we computed screen position coordinates corresponding to the gaze direction. The presented technique belongs to the class of brain-computer interfaces. In addition, this work led us to a set of interesting observations regarding the characteristic patterns of eye movements. For instance, we found that just prior to a saccade EOG demonstrates short negative potential of 10-15 ms duration. We have also observed that with age the saccade amplitude decreases. Interestingly, when the gaze is shifted to the left, the left eye deviation significantly exceeds that of the right eye but the right shift does not exhibit such an asymmetry. During the diagonal shifts (bottom-right, top-left) the right eye skew exceeds that of the left one and the situation reverses for the two complimentary directions. We have observed no significant differences in eye coordination due to the subject gender.

摘要

眼跳伴随着眼电势的变化。这些变化的符号涉及电极位置和眼球运动方向的函数,而旋转角度的指标是幅度。基于眼电势的空间分布,可以解决一个逆问题并恢复用于在线计算机控制的眼球运动轨迹。为了实现这一点,系统必须能够将光标放置在屏幕上与用户当前注视方向相对应的点上。我们使用了四个电极,在眼深周围两个在下,两个在侧面。下方电极用于估计垂直注视偏移分量,侧面电极用于估计水平分量。我们检测并处理了形态类似于阶跃函数的眼跳单极电势变化。检测和处理是使用我们专有的多级滤波器应用于四通道数据来进行的。该滤波器的输出用于计算眼球旋转参数。识别出了自发眨眼期间的特征电势变化并将其排除在处理之外。自愿眨眼被用来模拟鼠标点击。一开始,我们的受试者经历了一个校准阶段,在此期间他们必须在八个基本方向上跟踪光标。利用校准结果解决了逆问题,即基于眼电势的空间分布,我们计算出了与注视方向相对应的屏幕位置坐标。所提出的技术属于脑机接口类别。此外,这项工作使我们对眼球运动的特征模式有了一系列有趣的观察结果。例如,我们发现就在眼跳之前,眼电图显示出持续10 - 15毫秒的短暂负电势。我们还观察到随着年龄增长,眼跳幅度会减小。有趣的是,当注视向左移动时,左眼的偏差明显超过右眼,但向右移动时则没有这种不对称性。在对角移动(右下、左上)期间,右眼的偏斜超过左眼,而在两个互补方向上情况则相反。我们没有观察到由于受试者性别导致的眼球协调性有显著差异。

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