Estimating simple closed contours in images

B. Groshong
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引用次数: 3

Abstract

A technique for estimating the boundary of objects that may be described by a simple closed contour is presented. The problem is posed as one of maximum a posteriori (MAP) optimization. The method employs an elliptical Fourier series to describe the contour. A scaled derivative-of-Gaussian description of the object boundary cross-section is employed, coupled with guided gradient descent estimation of the contour coefficients. The technique is applied to X-ray images of the left ventricle, but is easily extensible to a wide variety of images of similar objects. It is shown that a few elliptical harmonics accurately model the ventricle outline. Accurate, robust estimation of the left ventricle outline from a single image is shown for a set of images.<>
估计图像中的简单闭合轮廓
提出了一种用简单闭合轮廓来描述物体边界的估计方法。该问题是一个最大后验优化问题。该方法采用椭圆傅立叶级数来描述轮廓。采用高斯导数对目标边界截面进行缩放描述,并对轮廓系数进行梯度下降估计。该技术应用于左心室的x射线图像,但很容易扩展到类似物体的各种图像。结果表明,几个椭圆谐波能准确地反映心室轮廓。对于一组图像,显示了从单个图像对左心室轮廓的准确,稳健的估计。
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