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An Experiment with Random Walks and GrabCut in One Cut Interactive Image Segmentation Techniques on MRI Images

机译:在MRI图像的一个切割交互式图像分段技术中随机散步和Grabcut的实验

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This research work proposes the Random Walks and GrabCut in One Cut interactive image segmentation techniques using MRI images, particularly those posing segmentation challenges in terms of complexity in texture, indistinct and/or noisy object boundaries, lower contrast, etc. We have computed accuracy measures such as Jaccard Index (JI), Dice Coefficient (DC) and Hausdorff Distance (HD) besides Visual assessment to understand and assess segmentation accuracy of these techniques. Comparison of the ground truth with segmented image reveals that Random Walks can detect edges/boundaries quite well, especially when those are noisy, however, has tendency to latch onto stronger edges nearby the desired object boundary. GrabCut in One Cut on the other hand sometimes needs more scribbles to achieve acceptable segmentation.
机译:本研究工作提出了使用MRI图像的一个切割交互式图像分割技术中随机散步和Grabcut,特别是在纹理,模糊和/或嘈杂的物体边界,较低对比度等方面构成分割挑战。我们已经计算了准确度措施如Jaccard索引(JI),骰子系数(DC)和Hausdorff距离(HD),除了视觉评估,以了解和评估这些技术的分割精度。与分段图像的地面真理的比较显示,随机步道可以很好地检测边缘/边界,特别是当那些噪声时,在所需的物体边界附近的更强的边缘上具有倾向。另一方面,Grabcut在一个切割中有时需要更多的涂鸦来实现可接受的分割。

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