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SOGNet: Scene Overlap Graph Network for Panoptic Segmentation

机译:Sognet:Scene Vileap Traph Network用于Panoptic分割

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The panoptic segmentation task requires a unified result from semantic and instance segmentation outputs that may contain overlaps. However, current studies widely ignore modeling overlaps. In this study, we aim to model overlap relations among instances and resolve them for panoptic segmentation. Inspired by scene graph representation, we formulate the overlapping problem as a simplified case, named scene overlap graph. We leverage each object's category, geometry and appearance features to perform relational embedding, and output a relation matrix that encodes overlap relations. In order to overcome the lack of supervision, we introduce a differentiable module to resolve the overlap between any pair of instances. The mask logits after removing overlaps are fed into per-pixel instance id classification, which leverages the panoptic supervision to assist in the modeling of overlap relations. Besides, we generate an approximate ground truth of overlap relations as the weak supervision, to quantify the accuracy of overlap relations predicted by our method. Experiments on COCO and Cityscapes demonstrate that our method is able to accurately predict overlap relations, and outperform the state-of-the-art performance for panoptic segmentation. Our method also won the Innovation Award in COCO 2019 challenge.
机译:Panoptic segmentation任务需要从可能包含重叠的语义和实例分段输出的统一结果。然而,目前的研究广泛地忽略了建模重叠。在这项研究中,我们的目标是模拟实例之间的重叠关系,并解决它们的Panoptic分段。灵感来自场景图表示,我们将重叠问题作为简化的案例,命名为场景重叠图。我们利用每个对象的类别,几何和外观功能来执行关系嵌入,并输出编码重叠关系的关系矩阵。为了克服缺乏监督,我们介绍了一个可差异化的模块来解决任何一对情况之间的重叠。去除重叠后的掩码登录被馈送到每像素实例ID分类中,这利用了Panoptic监督来帮助建模重叠关系。此外,我们生成了重叠关系的近似理论作为弱监管,量化了我们方法预测的重叠关系的准确性。 Coco和Citycapes的实验表明,我们的方法能够准确地预测重叠关系,并且优于Panoptic分割的最先进的性能。我们的方法还赢得了2019年Coco 2019挑战的创新奖。

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