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Periocular Biometrics in Head-Mounted Displays: A Sample Selection Approach for Better Recognition

机译:头戴式显示器的眼周生物特征识别:一种更好识别的样本选择方法

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Virtual and augmented reality technologies are increasingly used in a wide range of applications. Such technologies employ a Head Mounted Display (HMD) that typically includes an eye-facing camera and is used for eye tracking. As some of these applications require accessing or transmitting highly sensitive private information, a trusted verification of the operator’s identity is needed. We investigate the use of HMD-setup to perform verification of operator using periocular region captured from inbuilt camera. However, the uncontrolled nature of the periocular capture within the HMD results in images with a high variation in relative eye location and eye-opening due to varied interactions. Therefore, we propose a new normalization scheme to align the ocular images and then, a new reference sample selection protocol to achieve higher verification accuracy. The applicability of our proposed scheme is exemplified using two handcrafted feature extraction methods and two deep-learning strategies. We conclude by stating the feasibility of such a verification approach despite the uncontrolled nature of the captured ocular images, especially when proper alignment and sample selection strategy is employed.
机译:虚拟和增强现实技术越来越广泛地用于各种应用程序中。这样的技术采用通常包括面向眼的照相机并用于眼睛跟踪的头戴式显示器(HMD)。由于其中一些应用程序需要访问或传输高度敏感的私人信息,因此需要对运营商身份进行可信验证。我们调查使用HMD设置使用从内置摄像头捕获的眼周区域执行操作员验证。然而,由于交互作用的变化,HMD内的眼周捕获的不受控制的性质导致图像在相对眼位置和睁眼方面具有很大的变化。因此,我们提出了一种新的归一化方案来对齐眼图,然后提出了一种新的参考样本选择协议以实现更高的验证精度。我们提出的方案的适用性以两种手工制作的特征提取方法和两种深度学习策略为例。最后,我们将说明尽管捕获的眼图具有不受控制的性质,但这种验证方法的可行性,尤其是在采用适当的对齐方式和样本选择策略时。

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