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PhaseCam3D — Learning Phase Masks for Passive Single View Depth Estimation

机译:PHASecam3D - 学习被动单视图深度估计的阶段掩模

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There is an increasing need for passive 3D scanning in many applications that have stringent energy constraints. In this paper, we present an approach for single frame, single viewpoint, passive 3D imaging using a phase mask at the aperture plane of a camera. Our approach relies on an end-to-end optimization framework to jointly learn the optimal phase mask and the reconstruction algorithm that allows an accurate estimation of range image from captured data. Using our optimization framework, we design a new phase mask that performs significantly better than existing approaches. We build a prototype by inserting a phase mask fabricated using photolithography into the aperture plane of a conventional camera and show compelling performance in 3D imaging.
机译:在许多具有严格能量约束的应用程序中越来越需要被动3D扫描。在本文中,我们介绍了一种方法,用于在相机的光圈平面处使用相位掩模的单帧,单个观点,被动3D成像。我们的方法依赖于端到端优化框架,共同学习最佳相位掩模和重构算法,允许精确地估计来自捕获的数据的范围图像。使用我们的优化框架,我们设计了一个新的相位掩码,这些屏蔽明显优于现有方法。我们通过将使用光刻法制造的相位掩模插入传统摄像机的光圈平面来构建原型,并在3D成像中显示令人信服的性能。

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