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Interactive Image Segmentation Using Constrained Dominant Sets

机译:使用受限主导集的交互式图像分割

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We propose a new approach to interactive image segmentation based on some properties of a family of quadratic optimization problems related to dominant sets, a well-known graph-theoretic notion of a cluster which generalizes the concept of a maximal clique to edge-weighted graphs. In particular, we show that by properly controlling a regularization parameter which determines the structure and the scale of the underlying problem, we are in a position to extract groups of dominant-set clusters which are constrained to contain user-selected elements. The resulting algorithm can deal naturally with any type of input modality, including scribbles, sloppy contours, and bounding boxes, and is able to robustly handle noisy annotations on the part of the user. Experiments on standard benchmark datasets show the effectiveness of our approach as compared to state-of-the-art algorithms on a variety of natural images under several input conditions.
机译:我们提出了一种基于与主导集合相关的二次优化问题系列的一些属性的交互式图像分段的新方法,是群集的众所周知的图形 - 理论概念,其概括了最大集团的概念到边缘加权图。特别地,我们表明,通过适当地控制确定结构和底层问题的规模的正则化参数,我们处于提取由受约束的主导集群组的组,该组被约束为包含用户选择的元素。生成的算法可以自然地处理任何类型的输入模态,包括涂鸦,邋v,轮廓和边界框,并且能够在用户的一部分上鲁棒地处理噪声的注释。标准基准数据集的实验显示了我们的方法的有效性与在若干输入条件下的各种自然图像上的最先进算法相比。

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