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Towards a 3D-representation of microcalcification clusters using images of digital mammographic units

机译:使用数字乳房单元的图像朝着微钙化簇的3D表示

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Mammography is a widespread imaging technique for the early detection of breast cancer. Microcalcification clusters, visible in X-ray images, are important indicators for the diagnosis. In the past, many image processing methods were developed to detect and to classify lesions as being malignant or benign using only cluster data extracted from the 2D-images. However, a microcalcification cluster is a 3D-entity whose shape is also an important information for radiologists. This paper presents a method for the 3D-reconstruction of microcalcification positions defining the cluster shapes. The key idea of the reconstruction algorithm lies in the modelling of mammographic units using a camera with virtual optics. This model can be used to calibrate digital systems with different geometries and with various physical acquisition principles. The different steps of the computer vision problem related to the cluster reconstruction (namely the acquisition system calibration, the microcalcification segmentation, the microcalcification matching and the 3D-reconstruction) are described. First results are then given for two phantoms. Tests with one phantom show that the inherent mean accuracy of the 3D-microcalcification localization algorithm is 16.25 /spl mu/m. The other phantom is made of materials simulating the behaviour of both mammary tissue and microcalcifications towards X-rays. Tests using this phantom prove that the algorithm is effectively able to restitute true cluster shapes. Finally, patient data are used to reconstruct real clusters and to check the algorithm validity. These results prove that the proposed cluster reconstruction algorithm is the first one which is usable in clinical situations.
机译:乳房X线照相是一种广泛的成像技术,用于早期检测乳腺癌。在X射线图像中可见的微钙化簇是诊断的重要指标。在过去,开发了许多图像处理方法来检测并将病变分类为仅使用从2D图像中提取的集群数据的恶性或良性。然而,微钙簇是3D实体,其形状也是放射​​科医师的重要信息。本文提出了一种用于定义簇形状的微钙化位置的三维重建方法。重建算法的关键思想在于使用虚拟光学器的相机的乳房X光电邮件的建模。该模型可用于校准具有不同几何形状的数字系统以及各种物理采集原理。描述了与群集重建相关的计算机视觉问题的不同步骤(即采集系统校准,微透析分割,微透析匹配和3D重构)。然后给出两个幽灵的第一个结果。具有一个幻像的测试表明,3D-Microcalicification算法的固有平均精度为16.25 / SPL MU / m。另一个幻影由模拟乳腺组织和微钙的行为朝向X射线的材料制成。使用此幻像的测试证明该算法有效地将真正的群集形状重建。最后,患者数据用于重建真实集群并检查算法有效性。这些结果证明,所提出的群集重建算法是第一个可用于临床情况的第一个。

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