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Interactive Medical Image Segmentation Using Snake and Multiscale Curve Editing

机译:使用蛇和多尺度曲线编辑的互动医学图像分割

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摘要

Image segmentation is typically applied to locate objects and boundaries, and it is an essential process that supports medical diagnosis, surgical planning, and treatments in medical applications. Generally, this process is done by clinicians manually, which may be accurate but tedious and very time consuming. To facilitate the process, numerous interactive segmentation methods have been proposed that allow the user to intervene in the process of segmentation by incorporating prior knowledge, validating results and correcting errors. The accurate segmentation results can potentially be obtained by such user-interactive process. In this work, we propose a novel framework of interactive medical image segmentation for clinical applications, which combines digital curves and the active contour model to obtain promising results. It allows clinicians to quickly revise or improve contours by simple mouse actions. Meanwhile, the snake model becomes feasible and practical in clinical applications. Experimental results demonstrate the effectiveness of the proposed method for medical images in clinical applications.
机译:通常应用图像分割以定位对象和边界,并且它是支持医疗诊断,手术计划和医疗应用中的治疗的基本过程。通常,该过程由临床医生手动完成,这可能是准确的,但繁琐且非常耗时。为了促进该过程,已经提出了许多交互式分段方法,其允许用户通过结合先验知识,验证结果和校正错误来介入分割过程中。可以通过这种用户交互过程获得精确的分段结果。在这项工作中,我们提出了一种新颖的互动医学图像分段框架,用于临床应用,它结合了数字曲线和主动轮廓模型来获得有前途的结果。它允许临床医生通过简单的鼠标动作快速修改或改进轮廓。同时,蛇形模型在临床应用中变得可行和实用。实验结果证明了临床应用中所提出的医学图像方法的有效性。

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