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Rich Intrinsic Image Decomposition of Outdoor Scenes from Multiple Views

机译:多视角户外场景的丰富内在图像分解

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Intrinsic images aim at separating an image into its reflectance and illumination components to facilitate further analysis or manipulation. This separation is severely ill posed and the most successful methods rely on user indications or precise geometry to resolve the ambiguities inherent to this problem. In this paper, we propose a method to estimate intrinsic images from multiple views of an outdoor scene without the need for precise geometry and with a few manual steps to calibrate the input. We use multiview stereo to automatically reconstruct a 3D point cloud of the scene. Although this point cloud is sparse and incomplete, we show that it provides the necessary information to compute plausible sky and indirect illumination at each 3D point. We then introduce an optimization method to estimate sun visibility over the point cloud. This algorithm compensates for the lack of accurate geometry and allows the extraction of precise shadows in the final image. We finally propagate the information computed over the sparse point cloud to every pixel in the photograph using image-guided propagation. Our propagation not only separates reflectance from illumination, but also decomposes the illumination into a sun, sky, and indirect layer. This rich decomposition allows novel image manipulations as demonstrated by our results.
机译:本征图像旨在将图像分为反射率和照明分量,以利于进一步分析或处理。这种分离是严重的问题,最成功的方法取决于用户的指示或精确的几何形状来解决此问题固有的歧义。在本文中,我们提出了一种从室外场景的多个视图估计内在图像的方法,而无需精确的几何形状,并且需要一些手动步骤来校准输入。我们使用多视图立体来自动重建场景的3D点云。尽管此点云是稀疏且不完整的,但我们表明它提供了必要的信息来计算每个3D点的合理天空和间接照明。然后,我们引入一种优化方法来估计点云上的太阳可见度。该算法弥补了缺乏精确几何形状的缺点,并允许提取最终图像中的精确阴影。最后,我们使用图像引导的传播将通过稀疏点云计算出的信息传播到照片中的每个像素。我们的传播不仅将反射与照明分开,而且将照明分解为太阳,天空和间接层。如我们的结果所示,这种丰富的分解允许进行新颖的图像处理。

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