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A Multi-task Convolutional Neural Network for Joint Iris Detection and Presentation Attack Detection

机译:用于联合虹膜检测和演示攻击检测的多任务卷积神经网络

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摘要

In this work, we propose a multi-task convolutional neural network learning approach that can simultaneously perform iris localization and presentation attack detection (PAD). The proposed multi-task PAD (MT-PAD) is inspired by an object detection method which directly regresses the parameters of the iris bounding box and computes the probability of presentation attack from the input ocular image. Experiments involving both intra-sensor and cross-sensor scenarios suggest that the proposed method can achieve state-of-the-art results on publicly available datasets. To the best of our knowledge, this is the first work that performs iris detection and iris presentation attack detection simultaneously.
机译:在这项工作中,我们提出了一种多任务卷积神经网络学习方法,该方法可以同时执行虹膜定位和呈现攻击检测(PAD)。所提出的多任务PAD(MT-PAD)受对象检测方法的启发,该方法可直接回归虹膜边界框的参数,并从输入的眼图计算出出现提示的可能性。涉及传感器内和传感器间场景的实验表明,该方法可以在公开可用的数据集上实现最新的结果。据我们所知,这是同时执行虹膜检测和虹膜表现发作检测的第一项工作。

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