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Iterative dual energy material decomposition from spatial mismatched raw data sets

机译:空间不匹配的原始数据集的迭代双能量材料分解

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Today's clinical dual energy computed tomography (DECT) scanners generally measure different rays for different energy spectra and acquire spatial mismatched raw data sets. The deficits in clinical DECT technologies suggest that mainly image based material decomposition methods are in use nowadays. However, the image based material decomposition is an approximate technique, and beam hardening artifacts remain in decomposition results. A recently developed image based iterative method for material decomposition from inconsistent rays (MDIR) can achieve much better image quality than the conventional image based methods. Inspired by the MDIR method, this paper proposes an iterative method to indirectly perform raw data based DECT even with completely mismatched raw data sets. The iterative process is initialized by density images that were obtained from an image based material decomposition. Then the density images are iteratively corrected by comparing the estimated polychromatic projections and the measured polychromatic projections. Only three iterations of the method are sufficient to greatly improve the qualitative and quantitative information in material density images. Compared with the MDIR method, the proposed method needs not to perform additional water precorrection. The advantages of the method are verified with numerical experiments from inconsistent noise free and noisy raw data.
机译:当今的临床双能计算机断层扫描(DECT)扫描仪通常会针对不同的能谱测量不同的射线,并获取空间不匹配的原始数据集。临床DECT技术的不足表明,如今主要使用基于图像的材料分解方法。但是,基于图像的材料分解是一种近似技术,并且束硬化伪影仍保留在分解结果中。与常规的基于图像的方法相比,最近开发的用于从不一致射线分解材料的基于图像的迭代方法(MDIR)可以实现更好的图像质量。受MDIR方法的启发,本文提出了一种迭代方法,即使原始数据集完全不匹配,也可以间接执行基于DECT的原始数据。通过从基于图像的材料分解获得的密度图像初始化迭代过程。然后,通过比较估计的多色投影和测得的多色投影来迭代校正密度图像。该方法仅进行三次迭代就足以大大改善材料密度图像中的定性和定量信息。与MDIR方法相比,该方法无需执行额外的水预校正。从不一致的无噪声和嘈杂的原始数据进行数值实验,验证了该方法的优势。

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