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Active 3-D Shape Cosegmentation With Graph Convolutional Networks

机译:具有图形卷积网络的有源3-D形分段

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摘要

We present a novel active learning approach for shape cosegmentation based on graph convolutional networks (GCNs). The premise of our approach is to represent the collections of three-dimensional shapes as graph-structured data, where each node in the graph corresponds to a primitive patch of an oversegmented shape, and is associated with a representation initialized by extracting features. Then, the GCN operates directly on the graph to update the representation of each node based on a layer-wise propagation rule, which aggregates information from its neighbors, and predicts the labels for unlabeled nodes. Additionally, we further suggest an active learning strategy that queries the most informative samples to extend the initial training samples of GCN to generate more accurate predictions of our method. Our experimental results on the Shape COSEG dataset demonstrate the effectiveness of our approach.
机译:我们提出了一种基于图形卷积网络(GCNS)的形状分段的新型主动学习方法。我们的方法的前提是将三维形状的集合作为图形结构数据,其中图中的每个节点对应于通过提取特征来初始化的表示相关联。然后,GCN直接在图上操作,以基于从其邻居聚合信息的层面传播规则来更新每个节点的表示,并预测未标记节点的标签。此外,我们进一步建议了一种积极的学习策略,可以查询最具信息丰富的样本,以扩展GCN的初始训练样本,以产生更准确的方法预测。我们在形状COSEG数据集上的实验结果证明了我们方法的有效性。

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  • 来源
    《IEEE Computer Graphics and Applications》 |2019年第2期|77-88|共12页
  • 作者单位

    Hangzhou Dianzi Univ Sch Media & Design Hangzhou Zhejiang Peoples R China;

    Xiamen Univ Software Sch Xiamen Peoples R China;

    Hangzhou Dianzi Univ Coll Comp Sci & Technol Hangzhou Zhejiang Peoples R China;

    Hangzhou Dianzi Univ Sch Media & Arts Hangzhou Zhejiang Peoples R China;

    Univ Groningen Sci Visualizat & Comp Graph Res Grp Bernoulli Inst Groningen Netherlands;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:04:29

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