首页> 外文会议>Image Processing pt.3; Progress in Biomedical Optics and Imaging; vol.7 no.30 >Contrast enhancement of soft tissues in Computed Tomography images
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Contrast enhancement of soft tissues in Computed Tomography images

机译:计算机断层扫描图像中软组织的对比度增强

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Even though soft tissues are of primary interest to radiologists, they are represented using only 12.5% of the total number of gray levels in a typical DICOM format of a Computed Tomography (CT) scan. This poor distribution of gray levels reduces the overall contrast and the texture differences between individual organs, and poses a serious visualization problem since radiologists need clear visual representations of organs to produce proper diagnoses. In order to enhance the contrast within the soft tissues, the gray levels can be redistributed both linearly and nonlinearly using the gray level frequencies of the original CT scan. We propose a new nonlinear approach for contrast enhancement of soft tissues in CT images using both clipped binning and nonlinear binning based on a k-means clustering algorithm. The optimal number of bins, in particular the number of gray-levels, is chosen automatically using entropy and average distance between the histogram of the original gray-level distribution and the contrast enhancement function's curve. The contrast enhancement results were obtained and evaluated using 141 CT images of the chest and abdomen from two normal CT studies.
机译:即使软组织是放射科医生的主要兴趣,但在计算机断层扫描(CT)扫描的典型DICOM格式中,仅使用灰度总数的12.5%来表示软组织。灰度级的这种不均匀分布会降低整体对比度和各个器官之间的纹理差异,并带来严重的可视化问题,因为放射科医生需要清晰可见的器官影像才能进行正确的诊断。为了增强软组织内的对比度,可以使用原始CT扫描的灰度频率线性和非线性地重新分配灰度。我们提出了一种新的非线性方法,用于基于k均值聚类算法的同时使用剪​​切合并和非线性合并来增强CT图像中软组织的对比度。使用原始灰度级分布的直方图与对比度增强功能曲线之间的熵和平均距离,自动选择最佳仓数,尤其是灰度级数。使用来自两个正常CT研究的141个胸部和腹部的CT图像获得并评估了对比增强结果。

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