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Riverbed: A Novel User-Steered Image Segmentation Method Based on Optimum Boundary Tracking

机译:Riverbed:一种基于最佳边界跟踪的用户期望的图像分割新方法

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This paper presents an optimum user-steered boundary tracking approach for image segmentation, which simulates the behavior of water flowing through a riverbed. The riverbed approach was devised using the image foresting transform with a never-exploited connectivity function. We analyze its properties in the derived image graphs and discuss its theoretical relation with other popular methods such as live wire and graph cuts. Several experiments show that riverbed can significantly reduce the number of user interactions (anchor points), as compared to live wire for objects with complex shapes. This paper also includes a discussion about how to combine different methods in order to take advantage of their complementary strengths.
机译:本文提出了一种用于图像分割的,由用户控制的最佳边界跟踪方法,该方法模拟了流经河床的水的行为。河床方法是使用具有未开发的连通性功能的图像森林变换设计的。我们在导出的图像图中分析其属性,并讨论其与其他常用方法(如带电导线和图形切割)的理论关系。几个实验表明,与带电的复杂形状物体相比,河床可以显着减少用户交互(锚点)的数量。本文还讨论了如何组合不同的方法,以利用它们的互补优势。

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