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Trail-Dependent Intelligent Scissors Based on Multi-Scale Image Segmentation

机译:基于多尺度图像分割的路径相关智能剪刀

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Image segmentation is a very important topic in computer vision. However, due to the large variation of image content, fully automatic image segmentation for general applications is still an open problem. Therefore, our goal is to develop an interactive image segmentation tool that can accurately extract the desired object boundaries with minimal human efforts. In this paper, we propose a new trail-dependent intelligent scissors, which let the user interactively extract desired object boundaries based on multi-scale image segmentation. By utilizing the information contained in the trail of the cursor's motion, which somewhat implies the intention of the human operator, our intelligent scissors can allow the user to extract a desired object boundary with less mouse-clicking, and hence is more user-friendly. This is the major advantage of our new intelligent scissors. Another advantage is that our intelligent scissors permits the user to trace the object boundary with less tension by utilizing the coorse-to-fine region boundaries provided by multi-scale image segmentation. Our experiments have demonstrated that the new interactive segmentation tool requires less human efforts than the previously available tools.
机译:图像分割是计算机视觉中非常重要的主题。然而,由于图像内容的巨大差异,对于常规应用的全自动图像分割仍然是一个开放的问题。因此,我们的目标是开发一种交互式图像分割工具,该工具可以用最少的人力就能准确地提取所需的对象边界。在本文中,我们提出了一种新的依赖于路径的智能剪刀,该剪刀可让用户基于多尺度图像分割以交互方式提取所需的对象边界。通过利用包含在光标运动轨迹中的信息(这在某种程度上暗示了操作员的意图),我们的智能剪刀可以让用户以较少的鼠标单击来提取所需的对象边界,因此更加用户友好。这是我们新型智能剪刀的主要优势。另一个优势是,我们的智能剪刀允许用户利用多尺度图像分割提供的从细到细的区域边界,以较小的张力跟踪对象边界。我们的实验表明,与以前可用的工具相比,新的交互式分割工具所需的人力更少。

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