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Hierarchical Point-Edge Interaction Network for Point Cloud Semantic Segmentation

机译:点云语义分割的分层点-边交互网络

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We achieve 3D semantic scene labeling by exploring semantic relation between each point and its contextual neighbors through edges. Besides an encoder-decoder branch for predicting point labels, we construct an edge branch to hierarchically integrate point features and generate edge features. To incorporate point features in the edge branch, we establish a hierarchical graph framework, where the graph is initialized from a coarse layer and gradually enriched along the point decoding process. For each edge in the final graph, we predict a label to indicate the semantic consistency of the two connected points to enhance point prediction. At different layers, edge features are also fed into the corresponding point module to integrate contextual information for message passing enhancement in local regions. The two branches interact with each other and cooperate in segmentation. Decent experimental results on several 3D semantic labeling datasets demonstrate the effectiveness of our work.
机译:我们通过探索边缘之间每个点及其上下文邻居之间的语义关系来实现3D语义场景标记。除了用于预测点标签的编码器-解码器分支之外,我们还构建了一个边缘分支以分层集成点特征并生成边缘特征。为了在边缘分支中合并点特征,我们建立了一个分层的图框架,其中图是从粗糙层初始化的,并沿着点解码过程逐渐丰富。对于最终图中的每个边,我们预测一个标签以指示两个连接点的语义一致性,以增强点预测。在不同的层,边缘特征也被馈送到相应的点模块中,以集成上下文信息,以增强本地区域中的消息传递。这两个分支相互交互,并在细分中合作。在几个3D语义标签数据集上的体面实验结果证明了我们工作的有效性。

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