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Image Enhancement and Edge-based Mass Segmentation in Mammogram

机译:乳房X光检查中的图像增强和基于边缘的质量分割

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This paper presents a novel, edge-based segmentation method for identifying the mass contour (boundary) for a suspicious mass region (Region of Interest (ROI)) in a mammogram. The method first applies a contrast stretching function to adjust the image contrast, then uses a filtering function to reduce image noise. Next, for each pixel in a ROI, the energy descriptor (one of the Haralick descriptors) is computed from the co-occurrence matrix of the pixel; and the energy texture image of a ROI is obtained. From the energy texture image, the edges in the image are detected; and the mass region is identified from the closed-path edges. Finally, the boundary of the identified mass region is used as the contour of the segmented mass. We applied our method to ROI-marked mammogram images from the Digital Database for Screening Mammography (DDSM). Preliminary results show that the contours detected by our method outline the shape and boundary of a mass much more closely than the ROI markings made by radiologists.
机译:本文提出了一种新颖的基于边缘的分割方法,用于识别乳房X线照片中可疑质量区域(感兴趣区域(ROI))的质量轮廓(边界)。该方法首先应用对比度拉伸功能来调整图像对比度,然后使用滤波功能来降低图像噪声。接下来,对于ROI中的每个像素,从像素的共现矩阵计算能量描述符(Haralick描述符之一);得到ROI的能量纹理图像。从能量纹理图像中检测出图像中的边缘。并从封闭路径边缘识别质量区域。最后,将识别出的质量区域的边界用作分割质量的轮廓。我们将我们的方法应用于筛查乳腺X线摄影数字数据库(DDSM)的ROI标记乳腺X线照片。初步结果表明,用我们的方法检测出的轮廓线比放射线医生所绘制的ROI标记更能勾勒出物体的形状和边界。

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