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Object affordance detection with relationship-aware network

机译:具有关系感知网络的对象可用性检测

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摘要

Object affordance detection, which aims to understand functional attributes of objects, is of great significance for an autonomous robot to achieve a humanoid object manipulation. In this paper, we propose a novel relationship-aware convolutional neural network, which takes the symbiotic relationship between multiple affordances and the combinational relationship between the affordance and objectness into consideration, to predict the most probable affordance label for each pixel in the object. Different from the existing CNN-based methods that rely on separate and intermediate object detection step, our proposed network directly produces the pixel-wise affordance maps from an input image in an end-to-end manner. Specifically, there are three key components in our proposed network: Coord-ASPP module introducing CoordConv in atrous spatial pyramid pooling (ASPP) to refine the feature maps, relationship-aware module linking the affordances and corresponding objects to explore the relationships, and online sequential extreme learning machine auxiliary attention module focusing on individual affordances further to assist relationship-aware module. The experimental results on two public datasets have shown the merits of each module and demonstrated the superiority of our relationship-aware network against the state of the arts.
机译:目的是理解物体功能属性的目标可供检测对自治机器人实现人形物体操纵具有重要意义。在本文中,我们提出了一种新的关系感知卷积神经网络,其在考虑的可怜和对象之间的多重带电和组合关系之间具有共生关系,以预测对象中每个像素的最可能的可用标签。与依赖于单独和中间对象检测步骤的现有基于CNN的方法不同,我们所提出的网络以端到端的方式直接从输入图像产生像素 - 明智的可供映射。具体而言,我们所提出的网络中有三个关键组件:Coord-ASPP模块在不足的空间金字塔池(ASPP)中引入CoordConv,以改进链接带来的功能映射,接受感知模块和相应对象以探索关系,以及在线顺序极端学习机辅助模块专注于个人的可供选择,以帮助关系感知模块。两个公共数据集的实验结果显示了每个模块的优点,并展示了我们对艺术状态的关系感知网络的优势。

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