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DRWR: A Differentiable Renderer without Rendering for Unsupervised 3D Structure Learning from Silhouette Images

机译:DRWR:一个差异化的渲染器,没有渲染来自剪影图像的无监督的3D结构

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Differentiable renderers have been used successfully for unsupervised 3D structure learning from 2D images because they can bridge the gap between 3D and 2D. To optimize 3D shape parameters, current renderers rely on pixel-wise losses between rendered images of 3D reconstructions and ground truth images from corresponding viewpoints. Hence they require interpolation of the recovered 3D structure at each pixel, visibility handling, and optionally evaluating a shading model. In contrast, here we propose a Differentiable Renderer Without Rendering (DRWR) that omits these steps. DRWR only relies on a simple but effective loss that evaluates how well the projections of reconstructed 3D point clouds cover the ground truth object silhouette. Specifically, DRWR employs a smooth silhouette loss to pull the projection of each individual 3D point inside the object silhouette, and a structure-aware repulsion loss to push each pair of projections that fall inside the silhouette far away from each other. Although we omit surface interpolation, visibility handling, and shading, our results demonstrate that DRWR achieves state-of-the-art accuracies under widely used benchmarks, outperforming previous methods both qualitatively and quantitatively. In addition, our training times are significantly lower due to the simplicity of DRWR.
机译:对于从2D图像的无监督3D结构,已经成功地使用了可分辨率的渲染器,因为它们可以弥合3D和2D之间的间隙。为了优化3D形状参数,电流渲染器依赖于来自相应的视点的3D重建和地面真实图像之间的渲染图像之间的像素方面损失。因此,它们需要在每个像素,可见度处理和可选地评估阴影模型时插值恢复的3D结构。相比之下,这里我们提出了一个可分辨率的渲染器,而无需呈现(DRWR),省略这些步骤。 DRWR只依赖于一个简单但有效的损失,评估重建的3D点云覆盖地面真相对象轮廓的投影。具体而言,DRWR采用平稳的轮廓损失,以将每个单独的3D点的投影拉动在物体轮廓内,以及一个结构感知损失,以推动落在彼此的轮廓内部的每对突起。虽然我们省略了表面插值,可见性处理和阴影,但我们的结果表明DRWR在广泛使用的基准下实现了最先进的准确性,优先于先前的定性和定量的方法。此外,由于DRWR的简单性,我们的培训时间显着降低。

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