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GHCLNet: A generalized hierarchically tuned contact lens detection network

机译:GHCLNet:广义的分层调整隐形眼镜检测网络

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摘要

Iris serves as one of the best biometrie modality owing to its complex, unique and stable structure. However, it can still be spoofed using fabricated eyeballs and contact lens. Accurate identification of contact lens is must for reliable performance of any biometric authentication system based on this modality. In this paper, we present a novel approach for detecting contact lens using a Generalized Hierarchically tuned Contact Lens detection Network (GHCLNet). We have proposed hierarchical architecture for three class oculus classification namely: no lens, soft lens and cosmetic lens. Our network architecture is inspired by ResNet-50 model. This network works on raw input iris images without any pre-processing and segmentation requirement and this is one of its prodigious strength. We have performed extensive experimentation on two publicly available data-sets namely: 1)IIIT-D 2)ND and on IIT-K data-set (not publicly available) to ensure the generalizability of our network. The proposed architecture results are quite promising and outperforms the available state-of-the-art lens detection algorithms.
机译:虹膜由于其复杂,独特和稳定的结构而成为最好的生物体模态之一。但是,仍然可以使用人造眼球和隐形眼镜来欺骗它。对于基于这种方式的任何生物认证系统,可靠的隐形眼镜识别都是必不可少的。在本文中,我们提出了一种使用通用分层调谐隐形眼镜检测网络(GHCLNet)的隐形眼镜检测新方法。我们提出了用于三类眼分类的分层架构,即:无镜片,软镜片和化妆镜片。我们的网络架构受ResNet-50模型的启发。该网络可处理原始输入的虹膜图像,而无需任何预处理和分割要求,这是其出色的优势之一。我们已经对两个公开可用的数据集(即1)IIIT-D 2)ND和IIT-K数据集(不公开)进行了广泛的实验,以确保我们网络的通用性。所提出的架构结果非常有前途,并且优于现有的最新镜头检测算法。

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