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An End-to-End Autofocus Camera for Iris on the Move

机译:移动虹膜的端到端自动对焦相机

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For distant iris recognition, a long focal length lens is generally used to ensure the resolution of iris images, which reduces the depth of field and leads to potential defocus blur. To accommodate users standing statically at different distances, it is necessary to control focus quickly and accurately. And for users in motion, it is also expected to acquire a sufficient amount of accurately focused iris images. In this paper, we introduced a novel rapid auto-focus camera for active refocusing of the iris area of the moving objects with a focus-tunable lens. Our end-to-end computational algorithm can predict the best focus position from one single blurred image and generate the proper lens diopter control signal automatically. This scene-based active manipulation method enables real-time focus tracking of the iris area of a moving object. We built a testing bench to collect real-world focal stacks for evaluation of the autofocus methods. Our camera has reached an autofocus speed of over 50 fps. The results demonstrate the advantages of our proposed camera for biometric perception in static and dynamic scenes. The code is available at https://github.com/Debatrix/AquulaCam.
机译:对于远处虹膜识别,通常用于确保虹膜图像的分辨率,这减少了近距离的镜头,并导致潜在的散焦模糊。为了容纳在不同距离处静态站立的用户,有必要快速准确地控制重点。对于运动的用户,还期望获得足够量的准确聚焦的虹膜图像。在本文中,我们介绍了一种新型快速自动聚焦摄像头,用于使用焦点可调镜头的移动物体的虹膜区域的主动重新切割。我们的端到端计算算法可以从一个模糊图像预测最佳焦点位置,并自动产生适当的镜头屈光度控制信号。基于场景的主动操作方法可以实时对焦跟踪移动物体的虹膜区域。我们建立了一个测试台,以收集真实世界的焦点堆栈,以评估自动对焦方法。我们的相机已达到50多个FPS的自动对焦速度。结果证明了我们所提出的相机在静态和动态场景中的生物识别感光度的优势。代码可在https://github.com/debatrix/aquulacam获得。

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