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EyeLad: Remote Eye Tracking Image Labeling Tool - Supportive Eye, Eyelid and Pupil Labeling Tool for Remote Eye Tracking Videos

机译:Eyelad:远程眼跟踪图像标签工具 - 偏远眼睛跟踪视频的辅助眼,眼睑和瞳孔标记工具

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Ground truth data is an important prerequisite for the development and evaluation of many algorithms in the area of computer vision, especially when these are based on convolutional neural networks or other machine learning approaches that unfold their power mostly by supervised learning. This learning relies on ground truth data, which is laborious, tedious, and error prone for humans to generate. In this paper, we contribute a labeling tool (EyeLad) specifically designed for remote eye-tracking data to enable researchers to leverage machine learning based approaches in this field, which is of great interest for the automotive, medical, and human-computer interaction applications. The tool is multi platform and supports a variety of state-of-the-art detection and tracking algorithms, including eye detection, pupil detection, and eyelid coarse positioning. Furthermore, the tool provides six types of point-wise tracking to automatically track the labeled points. The software is openly and freely available at: www.ti.uni-tuebingen.de/perception.
机译:地面真理数据是计算机视觉领域许多算法的开发和评估的重要前提,特别是当这些基于卷积神经网络或其他通过监督学习而展开其权力的其他机器学习方法。这种学习依赖于地面真理数据,这是对人类产生的艰巨,繁琐的和易于出错的。在本文中,我们贡献了一个标签工具(eyelad)专门设计用于远程追踪数据,以使研究人员能够利用基于机器的基于机器的方法,这对于汽车,医疗和人机交互应用具有很大的兴趣。该工具是多平台,支持各种最先进的检测和跟踪算法,包括眼睛检测,瞳孔检测和眼睑粗定位。此外,该工具提供了六种类型的点亮跟踪,以自动跟踪标记点。该软件可在:www.ti.uni-tuebingen.de/perception。

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