Wu Di, Yan Aimin, Li Yuhua, Wong Molly D, Zheng Bin, Wu Xizeng, Liu Hong
Center of Bioengineering and School of Electrical and Computer Engineering, University of Oklahoma, Norman, Oklahoma 73019.
Department of Radiology, University of Alabama at Birmingham, Birmingham, Alabama 35249.
Med Phys. 2015 May;42(5):2404-20. doi: 10.1118/1.4917227.
In this research, a high-energy in-line phase contrast tomosynthesis prototype was developed and characterized through quantitative investigations and phantom studies.
The prototype system consists of an x-ray source, a motorized rotation stage, and a CMOS detector with a pixel pitch of 0.05 mm. The x-ray source was operated at 120 kVp for this study, and the objects were mounted on the rotation stage 76.2 cm (R1) from the source and 114.3 cm (R2) from the detector. The large air gap between the object and detector guarantees sufficient phase-shift effects. The quantitative evaluation of this prototype included modulation transfer function and noise power spectrum measurements conducted under both projection mode and tomosynthesis mode. Phantom studies were performed including three custom designed phantoms with complex structures: a five-layer bubble wrap phantom, a fishbone phantom, and a chicken breast phantom with embedded fibrils and mass structures extracted from an ACR phantom. In-plane images of the phantoms were acquired to investigate their image qualities through observation, intensity profile plots, edge enhancement evaluations, and/or contrast-to-noise ratio calculations. In addition, the robust phase-attenuation duality (PAD)-based phase retrieval method was applied to tomosynthesis for the first time in this research. It was utilized as a preprocessing method to fully exhibit phase contrast on the angular projection before reconstruction.
The resolution and noise characteristics of this high-energy in-line phase contrast tomosynthesis prototype were successfully investigated and demonstrated. The phantom studies demonstrated that this imaging prototype can successfully remove the structure overlapping in phantom projections, obtain delineate interfaces, and achieve better contrast-to-noise ratio after applying phase retrieval to the angular projections.
This research successfully demonstrated a high-energy in-line phase contrast tomosynthesis prototype. In addition, the PAD-based method of phase retrieval was combined with tomosynthesis imaging for the first time, which demonstrated its capability in significantly improving the contrast-to-noise ratios in the images.
在本研究中,通过定量研究和体模研究,开发并表征了一种高能在线相衬断层合成原型系统。
该原型系统由一个X射线源、一个电动旋转平台和一个像素间距为0.05毫米的CMOS探测器组成。在本研究中,X射线源工作在120 kVp,物体安装在距源76.2厘米(R1)和距探测器114.3厘米(R2)的旋转平台上。物体与探测器之间的大气隙保证了足够的相移效应。对该原型的定量评估包括在投影模式和断层合成模式下进行的调制传递函数和噪声功率谱测量。进行了体模研究,包括三个具有复杂结构的定制设计体模:一个五层气泡纸体模、一个鱼骨体模和一个从ACR体模中提取的带有嵌入纤维和肿块结构的鸡胸体模。采集体模的平面图像,通过观察、强度剖面图、边缘增强评估和/或对比度噪声比计算来研究其图像质量。此外,本研究首次将基于稳健相衰减对偶性(PAD)的相位恢复方法应用于断层合成。它被用作一种预处理方法,以在重建前的角度投影上充分展现相衬。
成功研究并展示了这种高能在线相衬断层合成原型的分辨率和噪声特性。体模研究表明,该成像原型可以成功消除体模投影中的结构重叠,获得清晰的界面,并在对角度投影应用相位恢复后实现更好的对比度噪声比。
本研究成功展示了一种高能在线相衬断层合成原型。此外,基于PAD的相位恢复方法首次与断层合成成像相结合,证明了其在显著提高图像对比度噪声比方面的能力。