首页> 外文会议>Physics of Medical Imaging pt.1; Progress in Biomedical Optics and Imaging; vol.7 no.28 >High-Performance Dual-Energy Imaging with a Flat-Panel Detector: Imaging Physics from Blackboard to Benchtop to Bedside
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High-Performance Dual-Energy Imaging with a Flat-Panel Detector: Imaging Physics from Blackboard to Benchtop to Bedside

机译:带有平板探测器的高性能双能成像:从黑板到台式再到床头的成像物理

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The application of high-performance flat-panel detectors (FPDs) to dual-energy (DE) imaging offers the potential for dramatically improved detection and characterization of subtle lesions through reduction of "anatomical noise," with applications ranging from thoracic imaging to image-guided interventions. In this work, we investigate DE imaging performance from first principles of image science to preclinical implementation, including: 1.) generalized task-based formulation of NEQ and detectability as a guide to system optimization; 2.) measurements of imaging performance on a DE imaging benchtop; and 3.) a preclinical system developed in our laboratory for cardiac-gated DE chest imaging in a research cohort of 160 patients. Theoretical and benchtop studies directly guide clinical implementation, including the advantages of double-shot versus single-shot DE imaging, the value of differential added filtration between low- and high-kVp projections, and optimal selection of kVp pairs, filtration, and dose allocation. Evaluation of task-based NEQ indicates that the detectability of subtle lung nodules in double-shot DE imaging can exceed that of single-shot DE imaging by a factor of 4 or greater. Filter materials are investigated that not only harden the high-kVp beam (e.g., Cu or Ag) but also soften the low-kVp beam (e.g., Ce or Gd), leading to significantly increased contrast in DE images. A preclinical imaging system suitable for human studies has been constructed based upon insights gained from these theoretical and experimental studies. An important component of the system is a simple and robust means of cardiac-gated DE image acquisition, implemented here using a fingertip pulse oximeter. Timing schemes that provide cardiac-gated image acquisition on the same or successive heartbeats is described. Preclinical DE images to be acquired under research protocol will afford valuable testing of optimal deployment, facilitate the development of DE CAD, and support comparison of DE diagnostic imaging performance to low-dose CT and radiography.
机译:高性能平板检测器(FPD)在双能(DE)成像中的应用通过减少“解剖学噪声”,可显着改善对细微病变的检测和表征,其潜力从胸腔成像到图像处理,应有尽有。指导性干预。在这项工作中,我们研究从图像科学的第一原理到临床前实施的DE成像性能,包括:1.)基于任务的广义NEQ公式化和可检测性,作为系统优化的指南; 2.)在DE成像台上测量成像性能; (3)在我们实验室中开发的临床前系统,用于160名患者的研究队列中的心脏门控DE胸部成像。理论研究和台式研究直接指导临床实施,包括两次DE成像与一次DE成像的优势,低和高kVp投影之间的差值附加过滤的价值以及kVp对的最佳选择,过滤和剂量分配。对基于任务的NEQ的评估表明,两次DE成像中细微的肺结节的可检测性可以比一次DE成像的可检测性高4倍或更大。研究了不仅使高kVp光束(例如Cu或Ag)硬化而且使低kVp光束(例如Ce或Gd)软化的滤光片材料,从而显着提高了DE图像的对比度。基于从这些理论和实验研究中获得的见识,构建了适合人类研究的临床前成像系统。该系统的重要组成部分是心脏门控DE图像采集的简单而强大的方法,此处使用指尖脉搏血氧仪进行实施。描述了在相同或连续的心跳上提供心脏门控图像采集的时序方案。根据研究方案获得的临床前DE图像将为优化部署提供有价值的测试,促进DE CAD的开发,并支持将DE诊断成像性能与低剂量CT和放射成像进行比较。

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