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PixelPrint4D:一种用于呼吸运动应用的定制可变形CT体模的3D打印方法。

PixelPrint4D: A 3D Printing Method of Fabricating Patient-Specific Deformable CT Phantoms for Respiratory Motion Applications.

作者信息

Im Jessica Y, Micah Neghemi, Perkins Amy E, Mei Kai, Geagan Michael, Roshkovan Leonid, Noël Peter B

机构信息

From the Department of Radiology, University of Pennsylvania, Philadelphia, PA (J.Y.I., K.M., M.G., L.R., P.B.N.); Department of Bioengineering, University of Pennsylvania, Philadelphia, PA (J.Y.I.); Swarthmore College, Swarthmore, PA (N.M.); and Philips Healthcare, Cleveland, OH (A.E.P.).

出版信息

Invest Radiol. 2025 Apr 2. doi: 10.1097/RLI.0000000000001182.

Abstract

OBJECTIVES

Respiratory motion poses a significant challenge for clinical workflows in diagnostic imaging and radiation therapy. Many technologies such as motion artifact reduction and tumor tracking have been developed to compensate for its effect. To assess these technologies, respiratory motion phantoms (RMPs) are required as preclinical testing environments, for instance, in computed tomography (CT). However, current CT RMPs are highly simplified and do not exhibit realistic tissue structures or deformation patterns. With the rise of more complex motion compensation technologies such as deep learning-based algorithms, there is a need for more realistic RMPs. This work introduces PixelPrint4D, a 3D printing method for fabricating lifelike, patient-specific deformable lung phantoms for CT imaging.

MATERIALS AND METHODS

A 4DCT dataset of a lung cancer patient was acquired. The volumetric image data of the right lung at end inhalation was converted into 3D printer instructions using the previously developed PixelPrint software. A flexible 3D printing material was used to replicate variable densities voxel-by-voxel within the phantom. The accuracy of the phantom was assessed by acquiring CT scans of the phantom at rest, and under various levels of compression. These phantom images were then compiled into a pseudo-4DCT dataset and compared to the reference patient 4DCT images. Metrics used to assess the phantom structural accuracy included mean attenuation errors, 2-sample 2-sided Kolmogorov-Smirnov (KS) test on histograms, and structural similarity index (SSIM). The phantom deformation properties were assessed by calculating displacement errors of the tumor and throughout the full lung volume, attenuation change errors, and Jacobian errors, as well as the relationship between Jacobian and attenuation changes.

RESULTS

The phantom closely replicated patient lung structures, textures, and attenuation profiles. SSIM was measured as 0.93 between the patient and phantom lung, suggesting a high level of structural accuracy. Furthermore, it exhibited realistic nonrigid deformation patterns. The mean tumor motion errors in the phantom were ≤0.7 ± 0.6 mm in each orthogonal direction. Finally, the relationship between attenuation and local volume changes in the phantom had a strong correlation with that of the patient, with analysis of covariance yielding P = 0.83 and f = 0.04, suggesting no significant difference between the phantom and patient.

CONCLUSIONS

PixelPrint4D facilitates the creation of highly realistic RMPs, exceeding the capabilities of existing models to provide enhanced testing environments for a wide range of emerging CT technologies.

摘要

目的

呼吸运动给诊断成像和放射治疗中的临床工作流程带来了重大挑战。已经开发了许多技术,如运动伪影减少和肿瘤跟踪,以补偿其影响。为了评估这些技术,需要呼吸运动体模(RMP)作为临床前测试环境,例如在计算机断层扫描(CT)中。然而,当前的CT RMP非常简化,没有呈现逼真的组织结构或变形模式。随着基于深度学习算法等更复杂的运动补偿技术的兴起,需要更逼真的RMP。这项工作介绍了PixelPrint4D,一种用于制造逼真的、针对患者的可变形肺部体模以用于CT成像的3D打印方法。

材料与方法

获取了一名肺癌患者的4DCT数据集。使用先前开发的PixelPrint软件将吸气末右肺的容积图像数据转换为3D打印机指令。一种柔性3D打印材料用于在体模内逐体素复制可变密度。通过在静止状态下以及在不同压缩水平下获取体模的CT扫描来评估体模的准确性。然后将这些体模图像编译成一个伪4DCT数据集,并与参考患者的4DCT图像进行比较。用于评估体模结构准确性的指标包括平均衰减误差、直方图上的双样本双侧柯尔莫哥洛夫-斯米尔诺夫(KS)检验以及结构相似性指数(SSIM)。通过计算肿瘤以及整个肺容积的位移误差、衰减变化误差和雅可比误差,以及雅可比与衰减变化之间的关系来评估体模的变形特性。

结果

该体模紧密复制了患者的肺结构、纹理和衰减剖面。患者与体模肺之间的SSIM测量值为0.93,表明结构准确性较高。此外,它呈现出逼真的非刚性变形模式。体模中肿瘤在每个正交方向上的平均运动误差≤0.7±0.6毫米。最后,体模中衰减与局部体积变化之间的关系与患者的关系具有很强的相关性,协方差分析得出P = 0.83和f = 0.04,表明体模与患者之间无显著差异。

结论

PixelPrint4D有助于创建高度逼真的RMP,超越了现有模型的能力,可为广泛的新兴CT技术提供增强的测试环境。

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