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An active contour method using harmonic mean

机译:使用谐波均值的主动轮廓法

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摘要

Active Contour method has been shown very effective in detecting the contour of region(s)-of-interest(ROI) and is widely used in image processing and computer vision. In this work, we aim to improve the performance of Zhang's method in detecting boundary of ROIs. Specifically, we will generalize the CV energy functional and give a new special case. The new energy functional penalize the approximation error (of the original image by a constant) weaker than the CV energy functional, which can better preserve the subtle difference between the intensity of ROIs and that of the background, thus can effectively segment images, especially images with low contrast. The resulted two-phase constant approximation is the harmonic mean instead of the arithmetic mean. Based on this, we improve Zhang's active contour method by using the harmonic mean. We apply the proposed method on synthetic and real images and the segmentation results show that the proposed method is robust to noise and intensity contrast. Additionally, the proposed method is less sensitive than Zhang's method to parameter selection.
机译:主动轮廓法已被证明在检测感兴趣区域轮廓方面非常有效,并且广泛用于图像处理和计算机视觉中。在这项工作中,我们旨在提高Zhang方法检测ROI边界的性能。具体来说,我们将推广CV能量功能并给出一个新的特殊情况。新的能量函数可以比CV能量函数更弱地逼近(原始图像的近似误差)常量,从而可以更好地保留ROI强度和背景强度之间的细微差别,从而可以有效地分割图像,尤其是图像低对比度。得出的两相常数近似是谐波平均值而不是算术平均值。在此基础上,我们利用谐波均值对张氏主动轮廓法进行了改进。我们将该方法应用于合成图像和真实图像,分割结果表明该方法对噪声和强度对比度具有鲁棒性。此外,所提出的方法对参数选择的敏感性不如Zhang的方法。

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