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User-Friendly Interactive Image Segmentation Through Unified Combinatorial User Inputs

机译:通过统一组合用户输入实现用户友好的交互式图像分割

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摘要

One weakness in the existing interactive image segmentation algorithms is the lack of more intelligent ways to understand the intention of user inputs. In this paper, we advocate the use of multiple intuitive user inputs to better reflect a user's intention. In particular, we propose a constrained random walks algorithm that facilitates the use of three types of user inputs: 1) foreground and background seed input, 2) soft constraint input, and 3) hard constraint input, as well as their combinations. The foreground and background seed input allows a user to draw strokes to specify foreground and background seeds. The soft constraint input allows a user to draw strokes to indicate the region that the boundary should pass through. The hard constraint input allows a user to specify the pixels that the boundary must align with. Our proposed method supports all three types of user inputs in one coherent computational framework consisting of a constrained random walks and a local editing algorithm, which allows more precise contour refinement. Experimental results on two benchmark data sets show that the proposed framework is highly effective and can quickly and accurately segment a wide variety of natural images with ease.
机译:现有的交互式图像分割算法的一个缺点是缺乏更智能的方式来理解用户输入的意图。在本文中,我们提倡使用多个直观的用户输入以更好地反映用户的意图。特别是,我们提出了一种受约束的随机游走算法,该算法便于使用三种类型的用户输入:1)前景和背景种子输入,2)软约束输入和3)硬约束输入及其组合。前景和背景种子输入允许用户绘制笔划以指定前景和背景种子。软约束输入允许用户绘制笔划以指示边界应通过的区域。硬约束输入允许用户指定边界必须与之对齐的像素。我们提出的方法在一个统一的计算框架中支持所有三种类型的用户输入,该框架由受约束的随机游动和局部编辑算法组成,可以进行更精确的轮廓细化。在两个基准数据集上的实验结果表明,提出的框架非常有效,可以轻松快速,准确地分割各种自然图像。

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