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Corner Occluder Computational Periscopy: Estimating a Hidden Scene from a Single Photograph

机译:角落封堵器计算潜藏:从单张照片估算隐藏的场景

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The ability to image scenery outside a camera’s line-of-sight would be useful in a variety of applications, including autonomous vehicle collision avoidance, or for first responders to anticipate danger around a corner. When a wall obstructs the camera, light cast onto the floor from behind the wall may be used to recover angular variation of light intensity reflected by the hidden scene, forming a 1D scene projection. Recent work has demonstrated that temporal variation in a video, or sequence of floor images, may be used to image moving components of the hidden scene. However, in many applications, it would be useful to be able to image stationary components as well. This earlier approach was also designed for, and tested on, floors that have approximately uniform albedo, while many real floors have spatially varying albedo patterns such as checkered tiles and patterned carpets. In this work, we propose a method to reconstruct a 1D projection of all components in a hidden scene from a single photograph of the floor without assuming uniform floor albedo. Specifically, we derive a forward model that describes the measured photograph as a nonlinear combination of the unknown floor albedo and the light from behind the wall. The inverse problem, which is the joint estimation of floor albedo and a 1D reconstruction of the hidden scene, is then solved via optimization, where we introduce regularizers that help separate light variations in the measured photograph due to floor pattern and hidden scene, respectively. We demonstrate the effectiveness of our formulation and algorithm using synthetic and experimentally measured data.
机译:在相机视线之外图像风景的能力将在各种应用中有用,包括自主车辆碰撞避免,或者对于第一个响应者来预测拐角处的危险。当壁阻挡相机时,距离壁后面的地板上的光可用于回收由隐藏场景反射的光强度的角度变化,形成1D场景投影。最近的工作已经证明了视频或地板图像的序列中的时间变化可用于图像隐藏场景的移动组件。然而,在许多应用中,能够以静止的组件图像也很有用。这种早期的方法也是设计和测试的,楼层具有近似统一的Albedo,而许多真实的地板具有空间不同的反玻璃图案,如方格瓷砖和图案地毯。在这项工作中,我们提出了一种方法来重建从地板的单个照片中的隐藏场景中的所有组件的1D投影,而不假设均匀的楼层。具体地,我们推出了一种前向模型,该模型将测量的照片描述为未知地板的非线性组合和来自墙壁后面的光。然后通过优化解决了逆问题,即地板Albedo的联合估计和隐藏场景的1D重建,在那里,我们引入了通过地板图案和隐藏场景的测量照片中的光变化分开了光变化的校长。我们展示了我们使用合成和实验测量数据的配方和算法的有效性。

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