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Quantitative Dual-Energy Imaging in the Presence of Metal Implants Using Locally Constrained Model-Based Decomposition

机译:在存在金属植入物存在下的定量双能成像使用本地受约束的基于模型的分解

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Purpose: To mitigate effects of metal artifacts in Dual-Energy (DE) CT imaging, we introduce a constrained optimization algorithm to enable simultaneous reconstruction-decomposition of three materials: two tissues-of-interest and the metal. Methods: The volume conservation principle and nonnegativity of volume fractions were incorporated as a pair of linear constraints into the Model-Based Material Decomposition (MBMD) algorithm. This enabled solving for three unknown material concentrations from DE projection data. A primal-dual Ordered Subsets Predictor-Corrector Interior-Point (OS-PCIP) algorithm was derived to perform the optimization in the proposed constrained-MBMD (CMBMD). To improve computational efficiency and monotonicity of CMBMD, we investigated an approach where the constraint was applied locally onto a small region containing the metal (identified from a preliminary reconstruction) during initial iterations, followed by final iterations with the constraint applied globally. Validation studies involved simulations and test bench experiments to assess the quantitative accuracy of bone concentration measurements in the presence of fracture fixation hardware. In all studies, DE data was acquired using a kVp-switching protocol with the 60 kVp low-energy beam and the 140 kVp high-energy beam. The system geometry emulated the extremity Cone-Beam CT (CBCT). Simulation studies included: ⅰ) a cylindrical phantom (80 mm diameter) with a 30 mm long Ti screw and an insert of varying cortical bone concentrations (3 - 13%), and ⅱ) a realistic tibia phantom created from patient CBCT data with Ti fixation hardware of increasing complexity. The test bench experiment involved a 100 mm diameter water bath containing four Ca inserts (6.5 - 39.1% bone concentration) and a Ti plate. Results: CMBMD substantially reduced artifacts in DE decompositions in the presence of metal. The sequentially local-global constraint strategy resulted in more monotonic convergence than using a global constraint for all iterations. In the simulation studies, CMBMD achieved quantitative accuracy within ~12% of nominal bone concentration in areas adjacent to metal, and within ~5% in areas further away from the metal, compared to ~80% error for the two-material MBMD. In the test bench study, CMBMD generated ~40% reduction in the error of bone concentration estimates compared to MBMD for nominal insert concentrations of <250 mg/mL, and ~12% reduction for concentrations >250 mg/mL. Conclusion: Proposed CMBMD enables accurate DE decomposition in the presence of metal implants by incorporating the metal as an additional base material. Proposed method will be particularly useful in quantitative orthopedic imaging, which is often challenged by metal fracture fixation and joint replacement hardware.
机译:目的:为了减轻金属伪像在双能(DE)CT成像中的影响,我们引入了一个受约束的优化算法,使三种材料的同时重建分解:两个兴趣和金属组织。方法:体积级分的音量保守原理和非空间掺入作为基于模型的材料分解(MBMD)算法的一对线性约束。这使得从DE投影数据启用了三种未知的材料浓度。导出了一种原始双向排序的子集预测器校正器内部点(OS-PCIP)算法,以在所提出的受限-MBMD(CMBMD)中执行优化。为了提高CMBMD的计算效率和单调性,我们调查了一种方法,其中限制在局部应用于初始迭代期间包含金属(从初步重建鉴定)的小区域,然后在全球范围内施加约束的最终迭代。验证研究涉及模拟和测试台面实验,以评估骨折固定硬件存在下骨浓度测量的定量精度。在所有研究中,使用具有60kVP低能量光束和140kVP高能光束的KVP切换协议获取DE数据。系统几何形状仿真肢体锥梁CT(CBCT)。仿真研究包括:Ⅰ)圆柱形模光(直径为80毫米),具有30mm长的Ti螺钉和不同皮质骨浓度(3-13%)和Ⅱ)的插入型,从患者CBCT数据与TI创建的现实胫骨幻影固定硬件越来越复杂。试验台实验涉及100毫米直径的水浴,含有四个Ca插入(6.5-39.1%骨浓度)和Ti板。结果:CMBMD在金属存在下基本上减少了DE分解中的伪影。顺序本地 - 全局约束策略导致更多单调会聚,而不是使用所有迭代的全局约束。在模拟研究中,CMBMD在与金属相邻的区域的标称骨浓度的〜12%内实现定量精度,并且在远离金属的区域内〜5%内,与两种材料MBMD的误差相比。在测试台阶段研究中,与MBMD为标称插入浓度为<250mg / ml的MBMD,CMBMD产生〜40%的骨浓度估计值,浓度> 250mg / ml的〜12%〜12%。结论:提出的CMBMD通过将金属作为附加基材结合金属植入物,可以在存在金属植入物的情况下精确分解。所提出的方法在定量整形面成像中特别有用,这通常是由金属骨折固定和联合替代硬件挑战。

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