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A Fast CT and CT-Fluoroscopy Registration Algorithm With Respiratory Motion Compensation for Image-Guided Lung Intervention

机译:影像引导肺介入的具有呼吸运动补偿的快速CT和CT荧光检查配准算法

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摘要

CT-fluoroscopy (CTF) is an efficient imaging technique for guiding percutaneous lung intervention such as biopsy and ablation. In CTF-guided procedures, four to ten axial images are captured in a very short time period during breath holding to provide near real-time feedback of patients’ anatomy so that physicians can adjust the needle as it is advanced toward a target lesion. Although popularly used in clinics, this procedure requires frequent scans to guide the needle, which may cause increased procedure time, complication rates, and radiation exposure to both clinicians and patients. In addition, CTF only generates a limited number of 2-D axial images and does not provide sufficient 3-D anatomical information. Therefore, how to provide volumetric anatomical information using CTF while reducing intraoperative scan is an important and challenging problem. In this paper, we propose a fast CT–CTF deformable registration algorithm that warps the inhale preprocedural CT onto the intraprocedural CTF for guidance in 3-D. In the algorithm, the deformation in the transverse plane is modeled using 2-D B-Spline, and the deformation along $z$-direction is regularized by smoothness constraint. A respiratory motion compensation framework is also incorporated for accurate registration. A parallel implementation strategy is adopted to accomplish the registration in several seconds. With electromagnetic tracking, the needle position can be superimposed onto the deformed inhale CT image, thereby providing 3-D image guidance during breath holding. Experiments were conducted using both simulated CTF images with known deformation and real CTF images captured during lung cancer biopsy studies. The experiments demonstrated satisfactory registration results of our proposed fast CT–CTF registration algorithm.
机译:CT透视检查(CTF)是一种有效的成像技术,可指导经皮肺部干预(例如活检和消融)。在CTF指导的程序中,在屏气过程中的极短时间内会捕获四到十个轴向图像,以提供患者解剖结构的近实时反馈,以便医生可以在针刺向目标病变处时对其进行调节。尽管这种方法广泛用于诊所,但仍需要经常扫描以引导针头,这可能会增加处理时间,并发症发生率,并增加对临床医生和患者的辐射暴露。另外,CTF仅生成有限数量的2-D轴向图像,而不能提供足够的3-D解剖信息。因此,如何在减少术中扫描的同时使用CTF提供体积解剖信息是一个重要且具有挑战性的问题。在本文中,我们提出了一种快速的CT-CTF可变形配准算法,该算法将吸入的术前CT扭曲到术中CTF上以进行3-D指导。在该算法中,使用二维B样条线对横向平面的变形进行建模,然后沿 $ z $ 方向通过平滑度约束进行正则化。呼吸运动补偿框架也被并入以进行精确注册。采用并行实施策略可以在几秒钟内完成注册。通过电磁跟踪,可以将针头位置叠加到变形的吸气CT图像上,从而在屏住呼吸时提供3-D图像引导。使用具有已知变形的模拟CTF图像和在肺癌活检研究中捕获的真实CTF图像进行实验。实验证明了我们提出的快速CT-CTF注册算法的令人满意的注册结果。

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