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Fundamental relationship between the noise properties of grating-based differential phase contrast CT and absorption CT: Theoretical framework using a cascaded system model and experimental validation

机译:基于光栅的差分相位对比CT和吸收CT的噪声特性之间的基本关系:使用级联系统模型的理论框架和实验验证

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Purpose: Using a grating interferometer, a conventional x-ray cone beam computed tomography (CT) data acquisition system can be used to simultaneously generate both conventional absorption CT (ACT) and differential phase contrast CT (DPC-CT) images from a single data acquisition. Since the two CT images were extracted from the same set of x-ray projections, it is expected that intrinsic relationships exist between the noise properties of the two contrast mechanisms. The purpose of this paper is to investigate these relationships. Methods: First, a theoretical framework was developed using a cascaded system model analysis to investigate the relationship between the noise power spectra (NPS) of DPC-CT and ACT. Based on the derived analytical expressions of the NPS, the relationship between the spatial-frequency-dependent noise equivalent quanta (NEQ) of DPC-CT and ACT was derived. From these fundamental relationships, the NPS and NEQ of the DPC-CT system can be derived from the corresponding ACT system or vice versa. To validate these theoretical relationships, a benchtop cone beam DPC-CT/ACT system was used to experimentally measure the modulation transfer function (MTF) and NPS of both DPC-CT and ACT. The measured three-dimensional (3D) MTF and NPS were then combined to generate the corresponding 3D NEQ. Results: Two fundamental relationships have been theoretically derived and experimentally validated for the NPS and NEQ of DPC-CT and ACT: (1) the 3D NPS of DPC-CT is quantitatively related to the corresponding 3D NPS of ACT by an inplane-only spatial-frequency-dependent factor 1/f 2, the ratio of window functions applied to DPC-CT and ACT, and a numerical factor Cg determined by the geometry and efficiency of the grating interferometer. Note that the frequency-dependent factor is independent of the frequency component fz perpendicular to the axial plane. (2) The 3D NEQ of DPC-CT is related to the corresponding 3D NEQ of ACT by an f 2 scaling factor and numerical factors that depend on both the attenuation and refraction properties of the image object, as well as Cg and the MTF of the grating interferometer. Conclusions: The performance of a DPC-CT system is intrinsically related to the corresponding ACT system. As long as the NPS and NEQ of an ACT system is known, the corresponding NPS and NEQ of the DPC-CT system can be readily estimated using additional characteristics of the grating interferometer. ? 2013 American Association of Physicists in Medicine.
机译:目的:使用光栅干涉仪,可以使用常规的X射线锥束计算机断层扫描(CT)数据采集系统来从单个数据中同时生成常规的吸收CT(ACT)和微分相差CT(DPC-CT)图像收购。由于两个CT图像是从同一组X射线投影中提取的,因此可以预期在两个对比机制的噪声属性之间存在内在关系。本文的目的是研究这些关系。方法:首先,使用级联系统模型分析建立了一个理论框架,以研究DPC-CT与ACT的噪声功率谱(NPS)之间的关系。基于推导的NPS解析表达式,推导了DPC-CT的空间频率相关噪声等效量(NEQ)与ACT之间的关系。从这些基本关系中,可以从相应的ACT系统中得出DPC-CT系统的NPS和NEQ,反之亦然。为了验证这些理论关系,台式台式锥形束DPC-CT / ACT系统用于实验测量DPC-CT和ACT的调制传递函数(MTF)和NPS。然后将测量的三维(3D)MTF和NPS合并以生成相应的3D NEQ。结果:DPC-CT和ACT的NPS和NEQ在理论上得到了两个基本关系并通过实验验证:(1)DPC-CT的3D NPS通过仅平面内的空间与ACT的相应3D NPS定量相关-频率相关因子1 / f 2,应用于DPC-CT和ACT的窗口函数之比以及由光栅干涉仪的几何形状和效率确定的数值因子Cg。注意,频率相关因子与垂直于轴向平面的频率分量fz无关。 (2)DPC-CT的3D NEQ与ACT的对应3D NEQ的关系是f 2缩放因子和数值因子,这些因子取决于图像对象的衰减和折射特性以及Cg和MTF。光栅干涉仪。结论:DPC-CT系统的性能与相应的ACT系统本质上相关。只要已知ACT系统的NPS和NEQ,就可以使用光栅干涉仪的其他特性轻松估算DPC-CT系统的相应NPS和NEQ。 ? 2013年美国医学物理学会。

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