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Global relational reasoning with spatial temporal graph interaction networks for skeleton-based action recognition

机译:基于骨架动作识别的空间时间图交互网络的全局关系推理

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With the prevalence of accessible depth sensors, dynamic skeletons have attracted much attention as a robust modality for action recognition. Convolutional neural networks (CNNs) excel at modeling local relations within local receptive fields and are typically inefficient at capturing global relations. In this article, we first view the dynamic skeletons as a spatio-temporal graph (STG) and then learn the localized correlated features that generate the embedded nodes of the STG by message passing. To better extract global relational information, a novel model called spatial-temporal graph interaction networks (STG-INs) is proposed, which perform long-range temporal modeling of human body parts. In this model, human body parts are mapped to an interaction space where graph-based reasoning can be efficiently implemented via a graph convolutional network (GCN). After reasoning, global relation-aware features are distributed back to the embedded nodes of the STG. To evaluate our model, we conduct extensive experiments on three large-scale datasets. The experimental results demonstrate the effectiveness of our proposed model, which achieves the state-of-the-art performance.
机译:随着可访问深度传感器的普遍性,动态骨架引起了很大的关注,作为动作识别的强大模式。卷积神经网络(CNNS)Excel在局部接受领域内的局部关系建模并且通常在捕获全球关系时效率低下。在本文中,我们首先将动态骨架视为时空图(STG),然后学习通过消息传递生成STG的嵌入节点的本地化相关功能。为了更好地提取全局关系信息,提出了一种名为空间 - 时间图交互网络(STG-INS)的新型模型,其执行人体部位的远程时间模型。在该模型中,人体部件映射到相互作用空间,其中可以通过图形卷积网络(GCN)有效地实现基于图形的推理。在推理之后,将全局关系感知功能分发回STG的嵌入节点。为了评估我们的模型,我们对三个大型数据集进行了广泛的实验。实验结果表明了我们所提出的模型的有效性,这实现了最先进的性能。

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