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Quantitative cone-beam x-ray luminescence computed tomography with 3D TV denoising based on Split Bregman method

机译:基于分裂BREGMAN方法的定量锥梁X射线发光与3D电视去噪的层压术

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Cone-beam X-ray luminescence computed tomography (CB-XLCT) is a noninvasive molecular imaging technique that reflects the distribution of fluorescent nanomaterials in the imaged object. It is urgent to describe the quantitative relationship between the reconstruction and the concentration of the fluorescent nanomaterials. However, in the field of CB-XLCT, most researches aim to improve the imaging accuracy, ignoring further quantitative evaluation of the reconstruction intensity. In this work, the quantitative evaluation for CB-XLCT is studied. In addition, to improve the quantitative performance, a new strategy based on fast iterative shrinkage-thresholding algorithm (FISTA) and 3D Total-Variation (TV) denoising with Split Bregman (SB) method (FISTA-TV) is proposed for CB-XLCT reconstruction. In F1STA-TV, FISTA is applied to get a L1-regularized sparse reconstruction in CB-XLCT and the Split Bregman method is used to solve the TV denoising problem. With the FISTA-TV strategy, the sparse results yielded by FISTA together with 3D TV denoising based on Split Bregman, alleviate the illness of the inverse problem of CB-XLCT, making the relationship between the reconstruction intensity and the actual concentration of fluorescent nanomaterials more accurate. Computer simulations have shown the quantitative reconstruction and evaluation for CB-XLCT is improved with the proposed FISTA-TV algorithm, compared to Algebraic Reconstruction Technique (ART), Tikhonov regularization, FISTA.
机译:锥形光束X射线发光计算断层扫描(CB-XLCT)是一种非侵入性分子成像技术,其反映了成像物体中的荧光纳米材料的分布。描述重建与荧光纳米材料的浓度之间的定量关系迫切。然而,在CB-XLCT领域,大多数研究旨在提高成像精度,忽略了对重建强度的进一步定量评价。在这项工作中,研究了CB-XLCT的定量评估。此外,为了提高定量性能,提出了一种基于快速迭代收缩阈值算法(FISTA)和3D总变化(TV)的新策略,用于CB-XLCT(Fista-TV)重建。在F1STA-TV中,使用Fista来获得CB-XLCT中的L1定期稀疏的重建,并且拆分Bregman方法用于解决电视去噪问题。凭借福信电视策略,斯塔及基于分裂BREGMAN的3D电视去噪地区的稀疏结果缓解了CB-XLCT的逆问题,使得重建强度与荧光纳米材料的实际浓度之间的关系更多准确的。计算机仿真显示了CB-XLCT的定量重建和评估随着所提出的菲斯达 - 电视算法而改善,与代数重建技术(ART),Tikhonov规则化,Fista相比。

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