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首页> 外文期刊>International journal of imaging systems and technology >Brightness preserving optimized weighted bi-histogram equalization algorithm and its application to MR brain image segmentation
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Brightness preserving optimized weighted bi-histogram equalization algorithm and its application to MR brain image segmentation

机译:亮度保持优化加权双直方图均衡算法及其在磁共振脑图像分割中的应用

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摘要

Medical image segmentation is crucial for neuroscience research and computer-aided diagnosis. However, intensity inhomogeneity and existence of noise in magnetic resonance images lead to incorrect segmentation. In this article, an effective method called enhanced fuzzy level set algorithm is presented to segment the white matter, gray matter, and cerebrospinal fluid automatically in contrast-enhanced brain images. In this method, first, exposure threshold is computed to divide the input histogram into two sub-histograms of different gray levels. The input histogram is clipped using a mean gray level to control the excessive enhancement rate. Then, these two sub-histograms are modified and equalized independently to get a better contrast enhanced image. Finally, an enhanced fuzzy level set algorithm is employed to facilitate image segmentation. The extensive experimental results proved the outstanding performance of the proposed algorithm compared with other existing methods. The results conform its effectiveness for MR brain image segmentation.
机译:医学图像分割对于神经科学研究和计算机辅助诊断至关重要。然而,磁共振图像中的强度不均匀和噪声的存在导致不正确的分割。在本文中,提出了一种有效的方法,称为增强模糊水平集算法,用于在对比度增强的大脑图像中自动分割白质,灰质和脑脊液。在该方法中,首先,计算曝光阈值,以将输入直方图分为两个不同灰度级的子直方图。使用平均灰度级裁剪输入直方图,以控制过度的增强率。然后,分别修改和均衡这两个子直方图,以获得更好的对比度增强图像。最后,采用增强的模糊水平集算法来促进图像分割。大量的实验结果证明了该算法与其他现有方法相比具有出色的性能。结果符合其对MR脑图像分割的有效性。

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