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Detecting abnormalities on mammograms by bilateral comparison

机译:通过双边比较检测乳房X光检查的异常

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An automated system for detecting breast abnormalities should significantly reduce the time needed to examine a mammogram. A system should be able to detect most kinds of abnormalities in order for it to have a positive contribution to a clinical situation. One way of examining mammograms that is used frequently by radiologists is the comparison of left and right breast images. Recent attempts to automate the comparison method have produced very promising results. Two new attempts are presented here. Initially, segmentation of the digitised images involves separating breast tissue from their background. Alignment of the 2 mammograms is then carried out using a single reference-the point of maximum curvature on the breast curve. Finally normalisation is used to minimise differences in illumination between X-ray images before comparison. The first method, single image comparison, involves finding corresponding areas whose intensities differ more than a preset threshold. The results are presented in the form of 2 binary images which are median filtered to eliminate artifacts and to smooth rough borders. The second method, multiple image comparison (MIG), involves generating 8 pairs of images for each original pair of left and right images. MIC uses a combination of processes including adaptive histogram modification, normalisation, grey level thresholding, binary image cleaning and region segmentation. The 8 pairs of images are then bilaterally compared and the resulting images recombined into 1 pair of images.
机译:用于检测乳房异常的自动化系统应显着减少检查乳房X光检查所需的时间。系统应该能够检测到大部分异常,以便它对临床情况产生积极贡献。检查辐射学家经常使用的乳房X线照片的一种方法是左右乳房图像的比较。最近自动化比较方法的尝试产生了非常有前途的结果。这里提出了两个新的尝试。最初,数字化图像的分割涉及将乳房组织与其背景分离。然后使用单个参考图 - 乳房曲线上的最大曲率点进行2乳房X线图的对准。最后,归一化用于在比较之前最小化X射线图像之间的照明的差异。第一方法,单个图像比较涉及找到强度不同比预设阈值不同的相应区域。结果以2个二进制图像的形式呈现,其是中值以消除伪影和平滑粗糙边界。第二种方法,多图像比较(MIG)涉及为每个原始左图像和右图像生成8对图像。 MIC使用过程的组合,包括自适应直方图修改,归一化,灰度阈值阈值,二进制图像清洁和区域分割。然后将8对图像进行双侧比较,并将所得图像重新结合成1对图像。

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