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Contour extraction in medical images using initial boundary pixel selection and segmental contour following

机译:使用初始边界像素选择和分段轮廓跟随的医学图像轮廓提取

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In today's health care, an imaging system plays an important role throughout the entire clinical process from diagnosis and treatment planning to surgical procedures and follow-up studies of disease. Boundary detection is a technique used to segment an object within a region of interest in the medical image for further clinical applications. Contour extraction is one of the most important boundary detection methods. In this paper, an object contour extraction for gray-level medical images using automatic initial boundary pixel selection and tracing of a segmental contour based on the boundary pixels obtained by the initial boundary pixel selection is proposed. Experimental results on artificial images of convex and deep concave objects, and real CT and MRI images show that, in comparing with other existing methods, a more detailed and accurate contour can be obtained using the proposed object contour extraction method. This has low computational complexity, which will benefit applications to clinical diagnosis, treatment, surgery, and follow up studies.
机译:在当今的医疗保健中,从诊断和治疗计划到手术程序和疾病的后续研究,成像系统在整个临床过程中都起着重要作用。边界检测是一种用于分割医学图像中感兴趣区域内的对象以用于进一步临床应用的技术。轮廓提取是最重要的边界检测方法之一。本文提出了一种基于自动初始边界像素选择和基于通过初始边界像素选择获得的边界像素对分割轮廓进行跟踪的灰度医学图像目标轮廓提取方法。通过对凹凸物体的人工图像,真实的CT和MRI图像进行的实验结果表明,与现有的其他方法相比,使用提出的物体轮廓提取方法可以获得更详细,准确的轮廓。这具有较低的计算复杂度,这将有益于临床诊断,治疗,手术和随访研究的应用。

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