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Structure-Aware Shape Synthesis

机译:结构感知形状综合

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We propose a new procedure to guide training of a data-driven shape generative model using a structure-aware loss function. Complex 3D shapes often can be summarized using a coarsely defined structure which is consistent and robust across variety of observations. However, existing synthesis techniques do not account for structure during training, and thus often generate implausible and structurally unrealistic shapes. During training, we enforce structural constraints in order to enforce consistency and structure across the entire manifold. We propose a novel methodology for training 3D generative models that incorporates structural information into an end-to-end training pipeline.
机译:我们提出了一种新的程序,以指导使用结构感知损失函数训练数据驱动的形状生成模型。复杂的3D形状通常可以使用粗略定义的结构来概括,该结构在各种观察结果中都是一致且可靠的。但是,现有的合成技术无法在训练过程中解决结构问题,因此经常会产生难以置信且结构上不现实的形状。在培训期间,我们会强制执行结构性约束,以便在整个歧管中实施一致性和结构性。我们提出了一种用于训练3D生成模型的新颖方法,该方法将结构信息整合到了端到端的训练流程中。

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