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Metal Artifact Reduction in Cone-Beam X-Ray Computed Tomography Using Statistical Iterative Reconstruction

机译:使用统计迭代重建的锥形梁X射线计算断层扫描的金属伪影

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In general, image reconstruction from metal-embedded data causes streak artifacts that reduce the quality of the reconstructed image. In this paper, the attempt has been conducted to solve the problem of metal artifacts in cone-beam X-ray CT. The proposed method is applied directly to CT measurement data. First, the metal objects in the reconstructed image are detected and then reprojected to obtain the raw data using cone-beam reconstruction. The missing projections caused by the metal objects are replaced with their surrounding unaffected area through interpolation. Finally, the corrected raw data are reconstructed with the convex algorithm, which is the iterative algorithm for maximizing the likelihood function. The reconstructed images of metal artifact data using statistical reconstruction tends to be superior to conventional filtered backprojection (FBP) reconstruction.
机译:通常,来自金属嵌入式数据的图像重建导致缩小重建图像质量的条纹伪像。在本文中,已经进行了尝试以解决锥梁X射线CT中的金属伪影问题。该方法直接应用于CT测量数据。首先,检测重建图像中的金属物体,然后恢复以获得使用锥形光束重建获得原始数据。由金属物体引起的缺失投影通过插值替换为周围的未受影响区域。最后,利用凸算法重建校正的原始数据,这是用于最大化似然函数的迭代算法。使用统计重建的金属伪影数据的重建图像往往优于传统的过滤反冲(FBP)重建。

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