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Image Segmentation Using Active Contours Driven by Bias Fitted Image Robust to Intensity Inhomogeneity

机译:使用由偏置拟合图像驱动的活动轮廓的图像分割稳健到强度不均匀性

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摘要

In this paper, a novel region-based active contour method is proposed based to both correct and segment the intensity inhomogeneous images. A phase stretch transform (PST) kernel is used to compute new intensity means and bias field, which are employed to define a bias fitted image. In the proposed energy function, a new signed pressure force (SPF) function is formulated with a bias image fitted difference, which helps to segment the intensity inhomogeneous objects. A Gaussian kernel is also used to regularize the level set curve, which also removes the computationally expensive re-initialization. Finally, the proposed method is compared with the state-of-the-art both qualitatively and quantitatively using the synthetic and real brain magnetic resonance (MR) images, which shows it yields the best segmentation and correction results.
机译:本文提出了一种基于新的基于区域的有源轮廓方法,基于正确的和分段强度不均匀图像。相拉换变换(PST)内核用于计算新的强度装置和偏置场,其用于定义偏置拟合图像。在所提出的能量函数中,具有偏置图像拟合差异的新签名压力(SPF)功能,这有助于分割强度不均匀的物体。高斯内核还用于规范级别集曲线,该曲线还删除计算昂贵的重新初始化。最后,将所提出的方法与最先进的和定量使用合成和实际脑磁共振(MR)图像进行比较,这表明它产生了最佳的分段和校正结果。

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