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Deepstereobrush: Interactive Depth Map Creation

机译:DeepStereobrush:互动深度地图创建

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In this paper, we introduce a novel interactive depth map creation approach for image sequences which uses depth-scribbles as input at user-defined keyframes. These scribbled depth values are then propagated within these keyframes and across the entire sequence using a 3-dimensional geodesic distance transform (3D-GDT). In order to further improve the depth estimation of the intermediate frames, we make use of a convolutional neural network (CNN) in an unconventional manner. Our process is based on online learning which allows us to specifically train a disposable network for each sequence individually using the user generated depth at keyframes along with corresponding RGB images as training pairs. Thus, we actually take advantage of one of the most common issues in deep learning: over-fitting. Furthermore, we integrated this approach into a professional interactive depth map creation application and compared our results against the state of the art in interactive depth map creation.
机译:在本文中,我们介绍了一种用于图像序列的新型交互式深度映射创建方法,其使用深度涂鸦作为用户定义的关键帧的输入。然后使用三维测地距离变换(3D-GDT)在这些关键帧和整个序列中传播这些涂涂涂覆的深度值。为了进一步改善中间帧的深度估计,我们以非常规的方式利用卷积神经网络(CNN)。我们的过程基于在线学习,该过程允许我们专门使用关键帧的用户生成深度单独地将一次性网络分别用于每个序列以及作为训练对的对应的RGB图像。因此,我们实际利用深度学习中最常见的问题之一:过度拟合。此外,我们将这种方法集成为专业的互动深度地图创建申请,并将我们的结果与互动深度映射创建中的最先进的结果进行了比较。

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