LTCI, Télécom ParisTech, Université Paris-Saclay, 75013, Paris, France.
GE Healthcare, Buc, France.
Med Phys. 2017 Sep;44(9):e164-e173. doi: 10.1002/mp.12247.
This paper investigates the capabilities of a dual-rotation C-arm cone-beam computed tomography (CBCT) framework to improve non-contrast-enhanced low-contrast detection for full volume or volume-of-interest (VOI) brain imaging.
The idea is to associate two C-arm short-scan rotational acquisitions (spins): one over the full detector field of view (FOV) at low dose, and one collimated to deliver a higher dose to the central densest parts of the head. The angular sampling performed by each spin is allowed to vary in terms of number of views and angular positions. Collimated data is truncated and does not contain measurement of the incoming X-ray intensities in air (air calibration). When targeting full volume reconstruction, the method is intended to act as a virtual bow-tie. When targeting VOI imaging, the method is intended to provide the minimum full detector FOV data that sufficiently corrects for truncation artifacts. A single dedicated iterative algorithm is described that handles all proposed sampling configurations despite truncation and absence of air calibration.
Full volume reconstruction of dual-rotation simulations and phantom acquisitions are shown to have increased low-contrast detection for less dose, with respect to a single-rotation acquisition. High CNR values were obtained on 1% inserts of the Catphan® 515 module in 0.94 mm thick slices. Image quality for VOI imaging was preserved from truncation artifacts even with less than 10 non-truncated views, without using the sparsity a priori common to such context.
A flexible dual-rotation acquisition and reconstruction framework is proposed that has the potential to improve low-contrast detection in clinical C-arm brain soft-tissue imaging.
本研究旨在探讨双旋转 C 臂锥形束 CT(CBCT)框架的能力,以提高全容积或感兴趣区(VOI)脑成像的非对比增强低对比度检测能力。
该方法旨在结合两个 C 臂短扫描旋转采集(旋转):一个在低剂量下在整个探测器视野(FOV)上进行,另一个在头部最密集的中心区域进行高剂量采集。每个旋转的角采样允许在视图数量和角度位置方面有所变化。准直数据被截断,不包含空气(空气校准)中的入射 X 射线强度的测量。当目标是全容积重建时,该方法旨在作为虚拟领结。当目标是 VOI 成像时,该方法旨在提供足以校正截断伪影的最小全探测器 FOV 数据。尽管存在截断和没有空气校准,但是描述了一种单一的专用迭代算法,可以处理所有提出的采样配置。
双旋转模拟和体模采集的全容积重建结果表明,与单次旋转采集相比,低剂量下的低对比度检测得到了提高。在 0.94mm 厚的切片上,对 Catphan®515 模块的 1%插件获得了高对比度噪声比(CNR)值。即使使用少于 10 个非截断视图,也可以从截断伪影中保留 VOI 成像的图像质量,而无需使用此类情况下常见的稀疏先验。
提出了一种灵活的双旋转采集和重建框架,有可能提高临床 C 臂脑软组织成像中的低对比度检测能力。