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The integration of directional information and local region information for accurate image segmentation

机译:方向信息和局部区域信息的集成,可进行准确的图像分割

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The original local binary fitting (LBF) model is sensitive to contour initialization and thus easily obtains an inaccurate result due to improper initialization. This paper presents a new method that not only can arrive at sub-pixel accuracy, but also allows for more flexible initialization of the contour. Two important terms play main role in our new method. One is an image gradient alignment term (IGA) which uses the directional information of the image gradient, the other is a local intensity fitting term (LIF) which makes use of local region information. The integration of the above two terms prevents our method from being sensitive to contour initialization. In addition, a global intensity fitting term (GIF) multiplied by a stopping function is included, which can speed up our algorithm while do not influence the accuracy of the segmentation result. Using the simple central difference, the gradient descend flow equation for the level set function can be easily and efficiently implemented. The results on several synthetic and real images demonstrate the effectiveness and accuracy of our method.
机译:原始的局部二进制拟合(LBF)模型对轮廓初始化敏感,因此由于初始化不当而容易获得不准确的结果。本文提出了一种新方法,该方法不仅可以达到亚像素精度,而且还可以更灵活地初始化轮廓。两个重要术语在我们的新方法中起着主要作用。一个是使用图像梯度的方向信息的图像梯度对齐项(IGA),另一个是使用局部区域信息的局部强度拟合项(LIF)。上述两项的结合使我们的方法对轮廓初始化不敏感。此外,还包括一个全局强度拟合项(GIF)乘以一个停止函数,这可以加快我们的算法的速度,而不会影响分割结果的准确性。使用简单的中心差,可以轻松而有效地实现用于水平设置函数的梯度下降流量方程。在几个合成和真实图像上的结果证明了我们方法的有效性和准确性。

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