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Evaluation of accurate eye corner detection methods for gaze estimation

机译:准确的眼角检测方法用于凝视估计的评估

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Accurate detection of iris center and eye corners appears to be a promising approach for low cost gaze estimation. In this paper we propose novel eye inner corner detection methods. Appearance and feature based segmentation approaches are suggested. All these methods are exhaustively tested on a realistic dataset containing images of subjects gazing at different points on a screen. We have demonstrated that a method based on a neural network presents the best performance even in light changing scenarios. In addition to this method, algorithms based on AAM and Harris corner detector present better accuracies than recent high performance face points tracking methods such as Intraface.
机译:准确检测虹膜中心和眼角似乎是低成本注视估计的一种有前途的方法。在本文中,我们提出了新颖的眼内角检测方法。建议基于外观和特征的分割方法。所有这些方法都在真实的数据集上进行了详尽的测试,该数据集包含凝视屏幕上不同点的对象的图像。我们已经证明,即使在光线变化的情况下,基于神经网络的方法也能提供最佳性能。除此方法外,基于AAM和Harris角点检测器的算法比最近的高性能面部点跟踪方法(如Intraface)具有更好的准确性。

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