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Multi-layer graph constraints for interactive image segmentation via game theory

机译:基于博弈论的交互式图像分割的多层图约束

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摘要

The combination of pixels and superpixels has been widely used for image segmentation, where the pixels and superpixels are segmented together. These combination methods can obtain more robust results by using more informative superpixel features. However, since the superpixel may not accurately capture the details for the small and slender regions, the results of these combination methods are often label inconsistent with the objects. Furthermore, these methods also fall into expensive time cost due to introducing more interactions between pixels and superpixels. To overcome the above problems, in this paper, we propose an interactive image segmentation method based on multi-layer graph constraints. The relationships between pixels/superpixels and labels are introduced into the conventional combination framework to further improve the segmentation accuracy. The segmentation model is constructed based on the estimation of probabilities of pixels and superpixels by a nonparametric learning framework. Then the probabilities of pixels and superpixels are updated iteratively by utilizing the game theory based optimization strategy. Experiments on challenging data sets demonstrate that the proposed method can obtain better segmentation results than the state-of-the-art methods. (C) 2016 Elsevier Ltd. All rights reserved.
机译:像素和超像素的组合已被广泛用于图像分割,其中像素和超像素被分割在一起。这些组合方法可以通过使用更多信息性超像素功能获得更强大的结果。但是,由于超像素可能无法准确地捕获细小区域的细节,因此这些组合方法的结果通常在标签上与对象不一致。此外,由于在像素和超像素之间引入更多的交互作用,这些方法也落入了昂贵的时间成本中。为了克服上述问题,本文提出了一种基于多层图约束的交互式图像分割方法。像素/超像素和标签之间的关系被引入到传统的组合框架中以进一步提高分割精度。基于非参数学习框架基于像素和超像素的概率估计来构造分割模型。然后利用基于博弈论的优化策略迭代更新像素和超像素的概率。在具有挑战性的数据集上进行的实验表明,与最新方法相比,该方法可以获得更好的分割结果。 (C)2016 Elsevier Ltd.保留所有权利。

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