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Deep Eyedentification: Biometric Identification Using Micro-movements of the Eye

机译:深度眼部识别:使用眼部微动进行生物特征识别

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We study involuntary micro-movements of the eye for biometric identification. While prior studies extract lower-frequency macro-movements from the output of video-based eye-tracking systems and engineer explicit features of these macro-movements, we develop a deep convolutional architecture that processes the raw eye-tracking signal. Compared to prior work, the network attains a lower error rate by one order of magnitude and is faster by two orders of magnitude: it identifies users accurately within seconds.
机译:我们研究了眼睛的非自愿微动,以进行生物识别。尽管先前的研究从基于视频的眼动跟踪系统的输出中提取了低频宏运动,并设计了这些宏运动的显式特征,但我们开发了一种深度卷积架构来处理原始的眼动跟踪信号。与以前的工作相比,该网络的错误率降低了一个数量级,而错误速度却提高了两个数量级:它可以在几秒钟内准确识别用户。

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