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Interior tomography using the truncated Hilbert transform with the total variation constraint

机译:使用具有总变化约束的截断希尔伯特变换进行内部层析成像

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Interior tomography is to reconstruct the interior region of interest (ROI) from the projection data just across the ROI. One kind of interior reconstruction methods is based on the inversion of truncated Hilbert transform (THT) when there is a known sub-region inside ROI. However, the result via this method is usually to be degraded by noise in real data case. In this paper, we propose to incorporate the total variation (TV) minimization constraint into the THT-based interior tomography to improve the reconstruction quality. Therein, we first carry out projection-on-convex-sets (POCS) iteration on each chord, and then we perform a soft-threshold based TV minimization on the intermediate image. In order to validate the proposed method, we conduct both simulated and real data experiments. The results show that with TV constraint the proposed method can lead to better ROI with less noise.
机译:内部断层扫描是根据正好跨ROI的投影数据重建感兴趣的内部区域(ROI)。一种内部重建方法是基于在ROI内部存在已知子区域的情况下,截短希尔伯特变换(THT)的反演。但是,在实际数据情况下,通过这种方法获得的结果通常会因噪声而降低。在本文中,我们建议将总变化(TV)最小化约束纳入基于THT的内部层析成像中,以提高重建质量。其中,我们首先在每个和弦上进行凸集投影(POCS)迭代,然后在中间图像上执行基于软阈值的电视最小化。为了验证所提出的方法,我们进行了模拟和真实数据实验。结果表明,在电视约束条件下,该方法可以在减少噪声的情况下提高投资回报率。

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