协议转换DICOM文件到STL模型使用3D切片器和Ultimaker Cura。

IF 3 3区 医学 Q2 HEALTH CARE SCIENCES & SERVICES
Malena Pérez-Sevilla, Fernando Rivas-Navazo, Pedro Latorre-Carmona, Darío Fernández-Zoppino
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引用次数: 0

摘要

背景/目的:3D打印已经成为医学领域的宝贵工具,可以为手术计划和医学教育创建精确的解剖模型。本研究提出了一种将DICOM文件转换为三维模型并随后转换为可用于3D打印的GCODE文件的综合协议。方法:利用开源软件“3D切片器”在分割和医学图像处理方面的强大功能,对DICOM文件进行初始转换。开发了一个优化的工作流程,用于将医学图像精确有效地转换为STL模型,确保解剖结构的高保真度。通过三个案例研究验证了该协议,基于STL模型与原始DICOM数据之间的偏差分析,实现了更高的结构保真度。此外,分割过程在很小的偏差范围内保持了形态学的准确性,确保了医学应用中解剖特征的可靠复制。我们的协议提供了一种有效的和可访问的方法来生成三维解剖模型,具有更高的准确性和可重复性。在后期阶段,我们使用“Ultimaker Cura”软件根据3D打印机的规格生成定制的GCODE文件。结果:我们的方案为从DICOM图像创建三维解剖模型提供了一个有效的、可访问的和更准确的解决方案。此外,这种方法的多功能性允许其适应各种3D打印机和材料,扩大其在医学和科学界的效用。结论:该研究提出了一种将医疗数据转换为物理三维对象的可靠且可重复的方法,为个性化医疗和高级临床实践的广泛应用铺平了道路。从3D切片器存储库中选择样本数据集确保了标准化和可重复性,允许对所提议的工作流程进行独立验证,而不会受到与患者数据访问相关的道德或后勤限制。然而,我们承认,未来的工作可以在此基础上进行扩展,通过合并真实的患者数据集,并对替代分割方法和软件包进行基准测试,以进一步评估不同临床场景下的性能。从本质上讲,该协议可以特别以其对开源软件和低成本解决方案的承诺为特征,使更广泛的受众可以访问先进的3D建模。通过利用“3D切片机”和“Ultimaker Cura”等开放获取工具,我们使解剖模型的创建民主化,确保资源有限的机构也能从这项技术中受益,促进医学科学和教育的创新和包容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Protocol for Converting DICOM Files to STL Models Using 3D Slicer and Ultimaker Cura.

Background/Objectives: 3D printing has become an invaluable tool in medicine, enabling the creation of precise anatomical models for surgical planning and medical education. This study presents a comprehensive protocol for converting DICOM files into three-dimensional models and their subsequent transformation into GCODE files ready for 3D printing. Methods: We employed the open-source software "3D Slicer" for the initial conversion of the DICOM files, capitalising on its robust capabilities in segmentation and medical image processing. An optimised workflow was developed for the precise and efficient conversion of medical images into STL models, ensuring high fidelity in anatomical structures. The protocol was validated through three case studies, achieving elevated structural fidelity based on deviation analysis between the STL models and the original DICOM data. Furthermore, the segmentation process preserved morphological accuracy within a narrow deviation range, ensuring the reliable replication of anatomical features for medical applications. Our protocol provides an effective and accessible approach to generating 3D anatomical models with enhanced accuracy and reproducibility. In later stages, we utilised the "Ultimaker Cura" software to generate customised GCODE files tailored to the specifications of the 3D printer. Results: Our protocol offers an effective, accessible, and more accurate solution for creating 3D anatomical models from DICOM images. Furthermore, the versatility of this approach allows for its adaptation to various 3D printers and materials, expanding its utility in the medical and scientific community. Conclusions: This study presents a robust and reproducible approach for converting medical data into physical three-dimensional objects, paving the way for a wide range of applications in personalised medicine and advanced clinical practice. The selection of sample datasets from the 3D Slicer repository ensures standardisation and reproducibility, allowing for independent validation of the proposed workflow without ethical or logistical constraints related to patient data access. However, we acknowledge that future work could expand upon this by incorporating real patient datasets and benchmarking the protocol against alternative segmentation methods and software packages to further assess performance across different clinical scenarios. Essentially, this protocol can be particularly characterised by its commitment to open-source software and low-cost solutions, making advanced 3D modelling accessible to a wider audience. By leveraging open-access tools such as "3D Slicer" and "Ultimaker Cura", we democratise the creation of anatomical models, ensuring that institutions with limited resources can also benefit from this technology, promoting innovation and inclusivity in medical sciences and education.

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来源期刊
Journal of Personalized Medicine
Journal of Personalized Medicine Medicine-Medicine (miscellaneous)
CiteScore
4.10
自引率
0.00%
发文量
1878
审稿时长
11 weeks
期刊介绍: Journal of Personalized Medicine (JPM; ISSN 2075-4426) is an international, open access journal aimed at bringing all aspects of personalized medicine to one platform. JPM publishes cutting edge, innovative preclinical and translational scientific research and technologies related to personalized medicine (e.g., pharmacogenomics/proteomics, systems biology). JPM recognizes that personalized medicine—the assessment of genetic, environmental and host factors that cause variability of individuals—is a challenging, transdisciplinary topic that requires discussions from a range of experts. For a comprehensive perspective of personalized medicine, JPM aims to integrate expertise from the molecular and translational sciences, therapeutics and diagnostics, as well as discussions of regulatory, social, ethical and policy aspects. We provide a forum to bring together academic and clinical researchers, biotechnology, diagnostic and pharmaceutical companies, health professionals, regulatory and ethical experts, and government and regulatory authorities.
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