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Instance-level 3D shape retrieval from a single image by hybrid-representation-assisted joint embedding

机译:通过混合表示辅助联合嵌入从单个图像检索实例级3D形状

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摘要

We present a novel and effective joint embedding approach for retrieving the most similar 3D shape for a single image query. Our approach builds upon hybrid 3D representations-the octree-based representation and the multi-view image representation, which characterize shape geometry in different ways. We first pre-train a 3D feature space via jointly embedding 3D shapes with hybrid representations and then introduce a transform layer and an image encoder to map both shape codes and real images into a common space via a second joint embedding. Our pre-training benefits from the hybrid representation of 3D shapes and builds a more discriminative 3D shape space than using any one of 3D representations only. The transform layer helps to mind the gap between the 3D shape space and the real image space. We validate the efficacy of our method on the instance-level single-image 3D retrieval task and achieve significant improvements over existing methods.
机译:我们提出了一种新颖且有效的联合嵌入方法,用于检索单个图像查询的最相似的3D形状。 我们的方法在混合3D表示 - 基于Octree的表示和多视图图像表示上构建,其以不同方式表征形状几何形状。 我们首先通过将3D形状与混合表示的共同嵌入3D形状,然后引入变换层和图像编码器,以通过第二关节嵌入将形状码和真实图像映射到公共空间。 我们从3D形状的混合表示的预训练益处,并且建立了比使用3D表示中的任何一个更辨别的3D形状空间。 变换层有助于介绍3D形状空间和真实图像空间之间的间隙。 我们验证了我们对实例级单图像3D检索任务的效果,并实现了对现有方法的显着改进。

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