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用于乳腺成像的Talbot-Lau干涉测量中的大角度X射线散射

Large-angle x-ray scatter in Talbot-Lau interferometry for breast imaging.

作者信息

Vedantham Srinivasan, Shi Linxi, Karellas Andrew

机构信息

Department of Radiology, University of Massachusetts Medical School, Worcester, MA 01655, USA.

出版信息

Phys Med Biol. 2014 Nov 7;59(21):6387-400. doi: 10.1088/0031-9155/59/21/6387. Epub 2014 Oct 8.

Abstract

Monte Carlo simulations were used to investigate large-angle x-ray scatter at design energy of 25 keV during small field of view (9.6 cm × 5 cm) differential phase contrast imaging of the breast using Talbot-Lau interferometry. Homogenous, adipose and fibroglandular breasts of uniform thickness ranging from 2 to 8 cm encompassing the field of view were modeled. Theoretically determined transmission efficiencies of the gratings were used to validate the Monte Carlo simulations, followed by simulations to determine the x-ray scatter reaching the detector. The recorded x-ray scatter was classified into x-ray photons that underwent at least one Compton interaction (incoherent scatter) and Rayleigh interaction alone (coherent scatter) for further analysis. Monte Carlo based estimates of transmission efficiencies showed good correspondence [Formula: see text] with theoretical estimates. Scatter-to-primary ratio increased with increasing breast thickness, ranging from 0.11 to 0.22 for 2-8 cm thick adipose breasts and from 0.12 to 0.28 for 2-8 cm thick fibroglandular breasts. The analyzer grating reduced incoherent scatter by ~18% for 2 cm thick adipose breast and by ~35% for 8 cm thick fibroglandular breast. Coherent scatter was the dominant contributor to the total scatter. Coherent-to-incoherent scatter ratio ranged from 2.2 to 3.1 for 2-8 cm thick adipose breasts and from 2.7 to 3.4 for 2-8 cm thick fibroglandular breasts.

摘要

利用蒙特卡罗模拟研究了在使用塔尔博特-劳干涉术对乳房进行小视野(9.6厘米×5厘米)微分相衬成像时,25 keV设计能量下的大角度X射线散射。对厚度均匀、范围从2至8厘米且覆盖视野的均匀乳房、脂肪型乳房和纤维腺体型乳房进行了建模。使用理论确定的光栅传输效率来验证蒙特卡罗模拟,随后进行模拟以确定到达探测器的X射线散射。将记录的X射线散射分为经历至少一次康普顿相互作用的X射线光子(非相干散射)和仅经历瑞利相互作用的X射线光子(相干散射),以进行进一步分析。基于蒙特卡罗的传输效率估计与理论估计显示出良好的一致性[公式:见正文]。散射与原发射线比随乳房厚度增加而增加,对于2至8厘米厚的脂肪型乳房,该比值范围为0.11至0.22,对于2至8厘米厚的纤维腺体型乳房,该比值范围为0.12至0.28。对于2厘米厚的脂肪型乳房,分析光栅将非相干散射降低了约18%,对于8厘米厚的纤维腺体型乳房,降低了约35%。相干散射是总散射的主要贡献者。对于2至8厘米厚的脂肪型乳房,相干与非相干散射比范围为2.2至3.1,对于2至8厘米厚的纤维腺体型乳房,该比值范围为2.7至3.4。

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