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A Non-Linear Differentiable CNN-Rendering Module for 3D Data Enhancement

机译:用于3D数据增强的非线性可分辨率CNN渲染模块

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In this article we introduce a differentiable rendering module which allows neural networks to efficiently process 3D data. The module is composed of continuous piecewise differentiable functions defined as a sensor array of cells embedded in 3D space. Our module is learnable and can be easily integrated into neural networks allowing to optimize data rendering towards specific learning tasks using gradient based methods in an end-to-end fashion. Essentially, the module's sensor cells are allowed to transform independently and locally focus and sense different parts of the 3D data. Thus, through their optimization process, cells learn to focus on important parts of the data, bypassing occlusions, clutter, and noise. Since sensor cells originally lie on a grid, this equals to a highly non-linear rendering of the scene into a 2D image. Our module performs especially well in presence of clutter and occlusions as well as dealing with non-linear deformations to improve classification accuracy through proper rendering of the data. In our experiments, we apply our module in various learning tasks and demonstrate that using our rendering module we accomplish efficient classification, localization, and segmentation tasks on 2D/3D cluttered and non-cluttered data.
机译:在本文中,我们介绍一个可差异化的渲染模块,其允许神经网络有效地处理3D数据。该模块由连续分段可微分功能组成,定义为嵌入在3D空间中的传感器阵列。我们的模块是可学习的,可以很容易地集成到神经网络中,允许使用基于梯度的方法以端到端的方式优化对特定学习任务的数据。基本上,允许模块的传感器电池独立地和局部焦点变换并感测3D数据的不同部分。因此,通过它们的优化过程,小区学会专注于数据的重要部分,绕过闭塞,杂乱和噪声。由于传感器单元最初位于网格上,因此这等于场景的高度非线性渲染到2D图像。我们的模块在杂波和闭塞的存在下表现尤其好,以及处理非线性变形,通过适当渲染数据来提高分类精度。在我们的实验中,我们在各种学习任务中应用模块,并演示了使用我们的渲染模块,我们在2D / 3D杂乱和非杂乱数据上完成高效的分类,本地化和分割任务。

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