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Declustering n-Connected Components for Segmentation of Iodine Implants in C-Arm Fluoroscopy Images

机译:用于在C臂荧光透视图像中分割碘植入物的碘植入量

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Dynamic dosimetry is becoming the standard to evaluate the quality of radioactive implants during brachytherapy. It is essential to obtain a 3D visualization of the implanted seeds and their relative position to the prostate. For this, a robust and precise segmentation of the seeds in 2D X-ray is required. First, implanted seeds are segmented using a region-based implicit active contour approach. Then, n-seed clusters are resolved using an efficient template based approach. A collection of 55 C-arm images from 10 patients are used to validate the proposed algorithm. Compared to manual ground-truth segmentation of 6002 seeds, 98.7% of seeds were automatically detected and declustered showing a false-positive rate of only 1.7%. Results indicate the proposed method is able to perform the identification and annotation processes of seeds on par with a human expert, constituting a viable alternative to the traditional manual segmentation approach.
机译:动态剂量测定是评估近距离放射治疗期间放射性植入物的质量的标准。必须获得植入种子的3D可视化及其与前列腺的相对位置。为此,需要在2D X射线中的稳健和精确的种子分段。首先,使用基于区域的隐式主动轮廓方法分割植入的种子。然后,使用基于基于模板的方法来解决n种子簇。来自10名患者的55个C形臂图像的集合用于验证所提出的算法。与6002种种子的手动地基分割相比,自动检测98.7%的种子并降低显示误率仅为1.7%。结果表明,所提出的方法能够与人类专家进行识别和注释过程,构成传统的手动分割方法的可行替代品。

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