Chawla Amarpreet S, Boyce Sarah, Washington Lacey, McAdams H Page, Samei Ehsan
Duke Advanced Imaging Laboratories, Department of Radiology, Duke University, Durham, NC 27705 USA.
Department of Radiology, Duke University, Durham, NC 27705 USA.
IEEE Trans Nucl Sci. 2009 Feb;56(1):36-45. doi: 10.1109/TNS.2008.2008647. Epub 2009 Feb 10.
Overlapping anatomical structures may confound the detection of abnormal pathology, including lung nodules, in conventional single-projection chest radiography. To minimize this fundamental limiting factor, a dedicated digital multi-projection system for chest imaging was recently developed at the Radiology Department of Duke University. We are reporting the design of the multi-projection imaging system and its initial performance in an ongoing clinical trial. The system is capable of acquiring multiple full-field projections of the same patient along both the horizontal and vertical axes at variable speeds and acquisition frame rates. These images acquired in rapid succession from slightly different angles about the posterior-anterior (PA) orientation can be correlated to minimize the influence of overlying anatomy. The developed system has been tested for repeatability and motion blur artifacts to investigate its robustness for clinical trials. Excellent geometrical consistency was found in the tube motion, with positional errors for clinical settings within 1%. The effect of tube-motion on the image quality measured in terms of impact on the Modulation Transfer Function (MTF) was found to be minimal. The system was deemed clinic-ready and a clinical trial was subsequently launched. The flexibility of image acquisition built into the system provides a unique opportunity to easily modify it for different clinical applications, including tomosynthesis, correlation imaging (CI), and stereoscopic imaging.
在传统的单投影胸部X线摄影中,重叠的解剖结构可能会干扰包括肺结节在内的异常病变的检测。为了尽量减少这一基本限制因素,杜克大学放射科最近开发了一种用于胸部成像的专用数字多投影系统。我们正在报告该多投影成像系统的设计及其在一项正在进行的临床试验中的初始性能。该系统能够以可变速度和采集帧率沿水平和垂直轴获取同一患者的多个全场投影。从围绕后前(PA)方向略有不同的角度快速连续采集的这些图像可以相互关联,以尽量减少重叠解剖结构的影响。已对开发的系统进行了重复性和运动模糊伪影测试,以研究其在临床试验中的稳健性。在管运动中发现了出色的几何一致性,临床设置中的位置误差在1%以内。发现管运动对以调制传递函数(MTF)影响衡量的图像质量的影响最小。该系统被认为已准备好用于临床,随后启动了一项临床试验。该系统内置的图像采集灵活性为轻松将其修改用于不同临床应用提供了独特机会,包括断层合成、相关成像(CI)和立体成像。