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Photon-counting hexagonal pixel array CdTe detector: Spatial resolution characteristics for image-guided interventional applications

机译:光子计数六边形像素阵列CdTe探测器:图像引导介入应用的空间分辨率特性

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摘要

PURPOSE: High-resolution, photon-counting, energy-resolved detector with fast-framing capability can facilitate simultaneous acquisition of precontrast and postcontrast images for subtraction angiography without pixel registration artifacts and can facilitate high-resolution real-time imaging during image-guided interventions. Hence, this study was conducted to determine the spatial resolution characteristics of a hexagonal pixel array photon-counting cadmium telluride (CdTe) detector.METHODS: A 650 mum thick CdTe Schottky photon-counting detector capable of concurrently acquiring up to two energy-windowed images was operated in a single energy-window mode to include photons of 10 keV or higher. The detector had hexagonal pixels with apothem of 30 mum resulting in pixel pitch of 60 and 51.96 mum along the two orthogonal directions. The detector was characterized at IEC-RQA5 spectral conditions. Linear response of the detector was determined over the air kerma rate relevant to image-guided interventional procedures ranging from 1.3 nGy/frame to 91.4 muGy/frame. Presampled modulation transfer was determined using a tungsten edge test device. The edge-spread function and the finely sampled line spread function accounted for hexagonal sampling, from which the presampled modulation transfer function (MTF) was determined. Since detectors with hexagonal pixels require resampling to square pixels for distortion-free display, the optimal square pixel size was determined by minimizing the root-mean-squared-error of the aperture functions for the square and hexagonal pixels up to the Nyquist limit.RESULTS: At Nyquist frequencies of 8.33 and 9.62 cycles/mm along the apothem and orthogonal to the apothem directions, the modulation factors were 0.397 and 0.228, respectively. For the corresponding axis, the limiting resolution defined as 10% MTF occurred at 13.3 and 12 cycles/mm, respectively. Evaluation of the aperture functions yielded an optimal square pixel size of 54 mum. After resampling to 54 mum square pixels using trilinear interpolation, the presampled MTF at Nyquist frequency of 9.26 cycles/mm was 0.29 and 0.24 along the orthogonal directions and the limiting resolution (10% MTF) occurred at approximately 12 cycles/mm. Visual analysis of a bar pattern image showed the ability to resolve close to 12 line-pairs/mm and qualitative evaluation of a neurovascular nitinol-stent showed the ability to visualize its struts at clinically relevant conditions.CONCLUSIONS: Hexagonal pixel array photon-counting CdTe detector provides high spatial resolution in single-photon counting mode. After resampling to optimal square pixel size for distortion-free display, the spatial resolution is preserved. The dual-energy capabilities of the detector could allow for artifact-free subtraction angiography and basis material decomposition. The proposed high-resolution photon-counting detector with energy-resolving capability can be of importance for several image-guided interventional procedures as well as for pediatric applications.
机译:目的:具有快速成帧能力的高分辨率,光子计数,能量分辨检测器可以促进同时采集造影剂前后的图像,以进行减影血管造影,而无需像素配准伪影,并且可以在图像引导的干预过程中促进高分辨率实时成像。因此,本研究旨在确定六角形像素阵列光子计数碲化镉(CdTe)检测器的空间分辨率特性。方法:650微米厚的CdTe肖特基光子计数检测器能够同时获取最多两个能量窗口图像在单个能量窗口模式下运行,以包含10 keV或更高的光子。检测器具有六边形像素,其像素密度为30微米,沿两个正交方向的像素间距分别为60和51.96微米。该检测器在IEC-RQA5光谱条件下进行了表征。在与图像引导的介入程序有关的空气比释动能速率上,确定检测器的线性响应,范围为1.3 nGy /帧至91.4 muGy /帧。使用钨边缘测试设备确定预采样的调制传递。边沿扩展函数和精细采样的线扩展函数构成了六边形采样,由此确定了预采样调制传递函数(MTF)。由于具有六边形像素的检测器需要重新采样到正方形像素才能实现无失真显示,因此最佳正方形像素尺寸是通过将正方形和六角形像素的孔径函数的均方根误差最小化到Nyquist极限来确定的。 :在沿着波峰且与波峰方向正交的奈奎斯特频率为8.33和9.62周/ mm时,调制因子分别为0.397和0.228。对于相应的轴,限定为10%MTF的极限分辨率分别出现在13.3和12个循环/毫米的位置。评估孔径函数得出的最佳正方形像素大小为54微米。使用三线性插值重新采样到54个正方形像素后,奈奎斯特频率为9.26周期/毫米的预采样MTF沿正交方向分别为0.29和0.24,极限分辨率(10%MTF)出现在大约12周期/毫米。条形图图像的视觉分析显示了能够分辨接近12条线对/ mm的能力,对神经血管镍钛合金支架的定性评估显示了在临床相关条件下可视化其支撑杆的能力。结论:六边形像素阵列光子计数CdTe探测器在单光子计数模式下提供了高空间分辨率。重新采样到最佳正方形像素大小以实现无失真显示后,保留了空间分辨率。检测器的双重能量功能可以实现无伪影的减影血管造影和基础材料分解。所提出的具有能量分辨能力的高分辨率光子计数检测器对于几种图像引导的介入程序以及儿科应用可能具有重要意义。

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