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Using 3D Contours and Their Relations for Cognitive Vision and Robotics

机译:使用3D轮廓及其对认知视觉和机器人的关系

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In this work, we make use of 3D visual contours carrying geometric as well as appearance information. Between these contours, we define 3D relations that encode structural information relevant to object-level operations such as similarity assessment and grasping. We show that this relational space can also be used as input features for learning which we exemplify for the grasping of unknown objects. Our representation is motivated by the human visual system in two respects. First, we make use of a visual descriptor that is motivated by hyper-columns in V1. Secondly, the contours can be seen as one stage in a visual hierarchy bridging between local symbolic descriptors to higher level stages of processing such as object coding and grasping.
机译:在这项工作中,我们利用携带几何和外观信息的3D视觉轮廓。在这些轮廓之间,我们定义了3D关系,其编码与对象级操作相关的结构信息,例如相似性评估和抓握。我们表明,该关系空间也可以用作学习的输入特征,我们示出了对未知对象的抓取物。我们的代表是人类视觉系统在两个方面的动机。首先,我们利用V1中的超列激励的可视描述符。其次,轮廓可以被视为在局部符号描述符之间的视觉层次结构上的一个阶段,以更高级别的处理阶段,例如对象编码和抓握。

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