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Investigation of Low-contrast Tumor Detection in Algorithm-enabled Low-dose CBCT

机译:算法低剂量CBCT中低对比度肿瘤检测的研究

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Flat-panel-based X-ray cone-beam computed tomography (CBCT) can provide images of high utility in medical applications such as image-guided surgery and radiotherapy by offering location and contrast information concerning the target and surrounding region. A potential issue in these applications of CBCT is the imaging dose involved because repeated scans are necessary in the image-guided procedures. We investigate algorithm-enabled low-dose CBCT imaging for potential applications to image-guided surgery and radiotherapy procedures, involving detection of low-contrast tumor structures from sparse-view CBCT. Results of our study suggest that images of quality comparable to that of the FDK-reference image can be reconstructed from data much less than full data currently used.
机译:基于平板的X射线锥形光束计算机断层扫描(CBCT)可以通过提供有关目标和周围地区的地点和对比信息,提供在医疗应用中的高效用图像,例如图像引导的手术和放射疗法。 CBCT的这些应用中的潜在问题是涉及的成像剂量,因为在图像引导程序中是必要的。我们调查使算法的低剂量CBCT成像进行潜在应用,以涉及从稀疏视图CBCT检测低对比度肿瘤结构。我们的研究结果表明,与FDK参考图像的质量相当的图像可以从当前使用的全数据重建。

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