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Model-based iterative reconstruction for flat-panel cone-beam CT with focal spot blur, detector blur, and correlated noise

机译:具有焦斑模糊,探测器模糊和相关噪声的平板锥形梁CT模型的迭代重建

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摘要

While model-based reconstruction methods have been successfully applied to flat-panel cone-beam CT (FP-CBCT) systems, typical implementations ignore both spatial correlations in the projection data as well as system blurs due to the detector and focal spot in the x-ray source. In this work, we develop a forward model for flat-panel-based systems that includes blur and noise correlation associated with finite focal spot size and an indirect detector (e.g. scintillator). This forward model is used to develop a staged reconstruction framework where projection data are deconvolved and log-transformed, followed by a generalized least-squares reconstruction that utilizes a non-diagonal statistical weighting to account for the correlation that arises from the acquisition and data processing chain. We investigate the performance of this novel reconstruction approach in both simulated data and in CBCT test-bench data. In comparison to traditional filtered backprojection and model-based methods that ignore noise correlation, the proposed approach yields a superior noise-resolution tradeoff. For example, for a system with 0.34 mm FWHM scintillator blur and 0.70 FWHM focal spot blur, using the correlated noise model instead of an uncorrelated noise model increased resolution by 42% (with variance matched at 6.9 x 10(-8) mm(-2)). While this advantage holds across a wide range of systems with differing blur characteristics, the improvements are greatest for systems where source blur is larger than detector blur.
机译:虽然基于模型的重建方法已成功应用于平板锥形光束CT(FP-CBCT)系统,但由于X中的检测器和焦点,典型的实现忽略投影数据中的空间相关性以及系统模糊-REAY源。在这项工作中,我们开发了一种基于平板的系统的前向模型,包括与有限焦点尺寸和间接检测器相关的模糊和噪声相关性(例如闪烁体)。该前向模型用于开发分级重建框架,其中投影数据被解码和对数转换,然后利用非对角线统计加权来计算来自获取和数据处理的相关性以解释相关的相关性链。我们调查这种新型重建方法在模拟数据和CBCT测试台数据中的性能。与忽略噪声相关性的传统过滤的反调和基于模型的方法相比,所提出的方法产生了卓越的噪声分辨率权衡。例如,对于具有0.34mm FWHM闪烁体模糊的系统和0.70 FWHM焦点模糊,使用相关噪声模型而不是不相关的噪声模型增加了分辨率42%(具有6.9×10(-8)mm的方差匹配( - 2))。虽然这一优势在具有不同模糊特性的各种系统上,但对于源模糊大于探测器模糊的系统,改善最大。

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