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A simulation platform using 3D printed neurovascular phantoms for clinical utility evaluation of new imaging technologies

机译:使用3D打印的神经血管幻影的仿真平台用于评估新成像技术的临床效用

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摘要

Modern 3D printing technology allows rapid prototyping of vascular phantoms based on an actual human patient with a high degree of precision. Using this technology, we present a platform to accurately simulate clinical views of neuro-endovascular interventions and devices. The neuro-endovascular interventional phantom has a 3D printed cerebrovasculature model derived from a patient CT angiogram and embedded inside a human skull providing bone attenuation. Acrylic layers were placed underneath and on top of the skull, simulating entrance and exit tissue attenuation and also simulating forward scatter.The 3D model was connected to a pulsatile flow loop for simulating interventions using clinical devices such as catheters and stents. To validate the x-ray attenuation and establish clinical accuracy, the automatic exposure selection by a clinical c-arm system for the phantom was compared with that for a commercial anthropomorphic head phantom (SK-150, Phantom Labs). The percentage difference between automatic exposure selection for the neuro-intervention phantom and the SK-150 phantom was under 10%.By changing 3D printed models, various patient diseased anatomies can be simulated accurately with the necessary x-ray attenuation. Using this platform various interventional procedures were performed using new imaging technologies such as a high-resolution x-ray fluoroscope and a dose-reduced region-of-interest attenuator and differential temporally filtered display for enhanced interventional imaging. Simulated clinical views from such phantom-based procedures were used to evaluate the potential clinical performance of such new technologies.
机译:现代3D打印技术可根据实际人类患者的高精度对血管模型进行快速原型制作。使用这项技术,我们提供了一个平台,可以准确地模拟神经血管内干预和设备的临床观察。该神经-血管内介入体模具有3D打印的脑血管系统模型,该模型源自患者的CT血管造影照片,并嵌入提供头骨衰减的人类头骨内。丙烯酸层放置在颅骨的下方和顶部,模拟入口和出口组织的衰减,还模拟前向散射。将3D模型连接到脉动流环上,以使用导管和支架等临床设备模拟干预。为了验证X射线衰减并建立临床准确性,将临床C型臂系统对幻像的自动曝光选择与商用拟人化头部幻像(SK-150,Phantom Labs)进行了比较。神经干预体模与SK-150体模的自动暴露选择之间的百分比差异小于10%。通过更改3D打印模型,可以在必要的X射线衰减下准确模拟各种患病的解剖结构。使用该平台,使用新的成像技术(例如高分辨率X射线荧光镜和剂量减少的感兴趣区域衰减器以及差分时域滤波显示)来执行各种介入程序,以增强介入成像。从基于幻像的过程中模拟的临床观点用于评估此类新技术的潜在临床表现。

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