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Object Skeleton Extraction in Natural Images by Fusing Scale-Associated Deep Side Outputs

机译:通过缩放相关的深侧输出的融合提取自然图像中的对象骨架

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Object skeleton is a useful cue for object detection, complementary to the object contour, as it provides a structural representation to describe the relationship among object parts. While object skeleton extraction in natural images is a very challenging problem, as it requires the extractor to be able to capture both local and global image context to determine the intrinsic scale of each skeleton pixel. Existing methods rely on per-pixel based multi-scale feature computation, which results in difficult modeling and high time consumption. In this paper, we present a fully convolutional network with multiple scale-associated side outputs to address this problem. By observing the relationship between the receptive field sizes of the sequential stages in the network and the skeleton scales they can capture, we introduce a scale-associated side output to each stage. We impose supervision to different stages by guiding the scale-associated side outputs toward groundtruth skeletons of different scales. The responses of the multiple scaleassociated side outputs are then fused in a scale-specific way to localize skeleton pixels with multiple scales effectively. Our method achieves promising results on two skeleton extraction datasets, and significantly outperforms other competitors.
机译:对象骨架是对象检测的有用提示,与对象轮廓互补,因为它提供了一种结构表示形式来描述对象各部分之间的关​​系。尽管在自然图像中进行对象骨架提取是一个非常具有挑战性的问题,但因为它要求提取器能够捕获局部和全局图像上下文,才能确定每个骨架像素的固有比例。现有方法依赖于基于像素的多尺度特征计算,这导致建模困难且耗时长。在本文中,我们提出了一个具有多个与尺度相关的副输出的完全卷积网络,以解决此问题。通过观察网络中连续级的接收场大小与它们可以捕获的骨架尺度之间的关系,我们将与尺度相关的侧面输出引入每个阶段。我们通过将与比例相关的侧面输出导向不同比例的地面骨骼,来对不同阶段进行监督。然后,以特定于比例的方式融合多个与比例相关的侧面输出的响应,以有效地定位具有多个比例的骨架像素。我们的方法在两个骨骼提取数据集上取得了可喜的结果,并且明显优于其他竞争对手。

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