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Optimization of a dual-energy contrast-enhanced technique for a photon-counting digital breast tomosynthesis system: I. A theoretical model

机译:光子计数数字乳腺断层合成系统的双能对比增强技术的优化:I。理论模型

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摘要

>Purpose: Dual-energy (DE) iodine contrast-enhanced x-ray imaging of the breast has been shown to identify cancers that would otherwise be mammographically occult. In this article, theoretical modeling was performed to obtain optimally enhanced iodine images for a photon-counting digital breast tomosynthesis (DBT) system using a DE acquisition technique.>Methods: In the system examined, the breast is scanned with a multislit prepatient collimator aligned with a multidetector camera. Each detector collects a projection image at a unique angle during the scan. Low-energy (LE) and high-energy (HE) projection images are acquired simultaneously in a single scan by covering alternate collimator slits with Sn and Cu filters, respectively. Sn filters ranging from 0.08 to 0.22 mm thickness and Cu filters from 0.11 to 0.27 mm thickness were investigated. A tube voltage of 49 kV was selected. Tomographic images, hereafter referred to as DBT images, were reconstructed using a shift-and-add algorithm. Iodine-enhanced DBT images were acquired by performing a weighted logarithmic subtraction of the HE and LE DBT images. The DE technique was evaluated for 20–80 mm thick breasts. Weighting factors, wt, that optimally cancel breast tissue were computed. Signal-difference-to-noise ratios (SDNRs) between iodine-enhanced and nonenhanced breast tissue normalized to the square root of the mean glandular dose (MGD) were computed as a function of the fraction of the MGD allocated to the HE images. Peak SDNRMGD and optimal dose allocations were identified. SDNRMGD and dose allocations were computed for several practical feasible system configurations (i.e., determined by the number of collimator slits covered by Sn and Cu). A practical system configuration and Sn–Cu filter pair that accounts for the trade-off between SDNR, tube-output, and MGD were selected.>Results:wt depends on the Sn–Cu filter combination used, as well as on the breast thickness; to optimally cancel 0% with 50% glandular breast tissue, wt values were found to range from 0.46 to 0.72 for all breast thicknesses and Sn–Cu filter pairs studied. The optimal wt values needed to cancel all possible breast tissue glandularites vary by less than 1% for 20 mm thick breasts and 18% for 80 mm breasts. The system configuration where one collimator slit covered by Sn is alternated with two collimator slits covered by Cu delivers SDNRMGD nearest to the peak value. A reasonable compromise is a 0.16 mm Sn–0.23 mm Cu filter pair, resulting in SDNR values between 1.64 and 0.61 and MGD between 0.70 and 0.53 mGy for 20–80 mm thick breasts at the maximum tube current.>Conclusions: A DE acquisition technique for a photon-counting DBT imaging system has been developed and optimized.
机译:>目的:乳房的双能(碘)碘造影增强X射线成像已显示出可以识别乳房X线照片上无法发现的癌症。在本文中,进行了理论建模,以使用DE采集技术为光子计数数字乳房断层合成(DBT)系统获得最佳增强的碘图像。>方法:在所检查的系统中,对乳房进行扫描配有多缝术前准直仪和多探测器摄像头。在扫描期间,每个检测器都以唯一的角度收集投影图像。通过分别用Sn和Cu滤镜覆盖交替的准直仪狭缝,在一次扫描中同时获取低能(LE)和高能(HE)投影图像。研究了厚度从0.08到0.22 mm的Sn过滤器和厚度从0.11到0.27 mm的Cu过滤器。选择了49 kV的管电压。使用移位加法算法重建断层图像,以下称为DBT图像。通过对HE和LE DBT图像进行加权对数减法获取碘增强的DBT图像。对20-80毫米厚的乳房评估了DE技术。计算了最佳消除乳房组织的权重因子wt。根据分配给HE图像的MGD的分数,计算出碘增强和未增强的乳腺组织之间的信号差噪声比(SDNR),这些信号标准化为平均腺体剂量(MGD)的平方根。峰值 SDNR MGD 并确定了最佳剂量分配。 SDNR MGD ,并为几种实际可行的系统配置计算了剂量分配(即由锡和铜覆盖的准直器缝隙的数量确定。选择了一种实用的系统配置和考虑了SDNR,电子管输出和MGD之间折衷的Sn-Cu过滤器对。>结果: wt取决于所使用的Sn-Cu过滤器组合,例如以及乳房的厚度;为了用50%的腺乳腺组织最佳地消除0%,发现所有乳腺厚度和研究的Sn-Cu过滤器对的wt值范围为0.46至0.72。消除所有可能的乳腺组织腺体所需的最佳wt值,对于20毫米厚的乳房而言,小于1%,对于80毫米乳房而言,小于18%。系统配置,其中一个被Sn覆盖的准直器狭缝与一个被Cu覆盖的两个准直器狭缝交替提供 SDNR MGD 最接近峰值。一个合理的折衷方案是使用0.16 mm Sn–0.23 mm Cu过滤器对,在最大管电流下,对于20–80 mm厚的乳房,SDNR值在1.64和0.61之间,MGD在0.70和0.53 mGy之间。>结论:已经开发和优化了用于光子计数DBT成像系统的DE采集技术。

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