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Eye Tracking and ROI Detection within a Computer Screen Using a Monocular Camera

机译:使用单眼相机的计算机屏幕内的眼睛跟踪和ROI检测

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摘要

The region of interest will change according to the task, even in the same situation. In the study, a method for region of interest detection within a computer screen using a monocular camera is proposed. In contrast to gaze tracking techniques that require particular devices (e.g., an eye tracker and RGB-D device) meanwhile complex calibration, a cheap and more convenient monocular camera is used in this study to solves the eye gaze tracking problem. Firstly, Human face is detected in a real-time video sequence using HoG features. Then, the landmarks around the eyes, which reflect the gaze position, are extracted. Next, the iris centers are detected in the eye region. In order to reduce the gaze error caused by head movement, a three-dimensional head model is proposed to estimate head pose. Finally, the eye region is tracked by calculating the eye vectors and head movement. Experiments were performed to evaluate the face detection, landmarks, iris detection, eye movement estimation, and head pose estimation on databases such as the Hong Kong, BioID, and Boston University head pose databases. Besides, experiments for gaze tracking were performed for a real-time video sequence. Deviation is calculated using Euclidean distance between the real and estimated points. The results show that the method achieves an average error of 1.85 degrees with head fixed and 3.58 degrees with head movement in the range of -45 degrees and 45 degrees. The requirement is detecting the user's attention in the screen area. Our method can reach the same level to the other methods, even though the accuracy is not state-of-the-art. Meanwhile, as we all know not only a specific point is concerned but also a region area according to the characteristics of human eye imaging, thus the proposed method can meet the requirements of demand.
机译:兴趣区域将根据任务而改变,即使在同样的情况下也是如此。在该研究中,提出了一种使用单像素相机在计算机屏幕内的感兴趣区域区域的方法。相反,对于需要特定设备的凝视跟踪技术(例如,眼跟踪器和RGB-D设备)同时复杂校准,本研究中使用便宜且更方便的单目相机,解决了眼睛凝视跟踪问题。首先,使用HOG特征在实时视频序列中检测人体。然后,提取反映凝视位置的眼睛周围的地标。接下来,在眼部区域检测到虹膜中心。为了减少由头部运动引起的凝视误差,提出了一种三维头部模型来估计头部姿势。最后,通过计算眼睛向量和头部运动来跟踪眼部区域。进行实验以评估对香港,生物和波士顿大学头部姿势数据库等数据库的面部检测,地标,虹膜检测,眼球运动估计和头部姿势估计。此外,对实时视频序列进行了凝视跟踪的实验。使用真实和估计点之间的欧几里德距离计算偏差。结果表明,该方法达到了1.85度的平均误差,头部固定,头部运动的3.58度,在-45度和45度。要求在屏幕区域中检测用户的注意。即使准确性不是最先进的,我们的方法也可以达到其他方法相同的水平。同时,由于我们都知道不仅知道特定点,而且还有一个区域区域根据人眼成像的特征,因此所提出的方法可以满足需求要求。

著录项

  • 来源
    《Journal of web engineering》 |2020年第8期|1117-1145|共29页
  • 作者单位

    Beijing Univ Technol Fac Informat Technol 100 Pingleyuan Beijing 100124 Peoples R China;

    Beijing Univ Technol Fac Informat Technol 100 Pingleyuan Beijing 100124 Peoples R China;

    Beijing Univ Technol Fac Informat Technol 100 Pingleyuan Beijing 100124 Peoples R China;

    Beijing Univ Technol Fac Informat Technol 100 Pingleyuan Beijing 100124 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Iris detection; gaze tracking; monocular camera; ROI detection;

    机译:虹膜检测;凝视跟踪;单眼相机;ROI检测;

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