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3D Slicer as an Image Computing Platform for the Quantitative Imaging Network

机译:3D切片机为图像计算平台用于定量成像网络

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摘要

Quantitative analysis has tremendous but mostly unrealized potential in healthcare to support objective and accurate interpretation of the clinical imaging. In 2008, the National Cancer Institute began building the Quantitative Imaging Network (QIN) initiative with the goal of advancing quantitative imaging in the context of personalized therapy and evaluation of treatment response. Computerized analysis is an important component contributing to reproducibility and efficiency of the quantitative imaging techniques. The success of quantitative imaging is contingent on robust analysis methods and software tools to bring these methods from bench to bedside.3D Slicer is a free open source software application for medical image computing. As a clinical research tool, 3D Slicer is similar to a radiology workstation that supports versatile visualizations but also provides advanced functionality such as automated segmentation and registration for a variety of application domains. Unlike a typical radiology workstation, 3D Slicer is free and is not tied to specific hardware. As a programming platform, 3D Slicer facilitates translation and evaluation of the new quantitative methods by allowing the biomedical researcher to focus on the implementation of the algorithm, and providing abstractions for the common tasks of data communication, visualization and user interface development. Compared to other tools that provide aspects of this functionality, 3D Slicer is fully open source and can be readily extended and redistributed. In addition, 3D Slicer is designed to facilitate the development of new functionality in the form of 3D Slicer extensions.In this paper, we present an overview of 3D Slicer as a platform for prototyping, development and evaluation of image analysis tools for clinical research applications. To illustrate the utility of the platform in the scope of QIN, we discuss several use cases of 3D Slicer by the existing QIN teams, and we elaborate on the future directions that can further facilitate development and validation of imaging biomarkers using 3D Slicer.
机译:定量分析在医疗保健中具有巨大潜力,但大多数尚未实现,可以支持对临床影像进行客观而准确的解释。美国国家癌症研究所(National Cancer Institute)在2008年开始建立定量成像网络(QIN)计划,其目标是在个性化治疗和治疗反应评估的背景下推进定量成像。计算机分析是有助于定量成像技术重现性和效率的重要组成部分。定量成像的成功取决于强大的分析方法和软件工具,以将这些方法从实验台带到床边。3DSlicer是用于医学图像计算的免费开源软件应用程序。作为一种临床研究工具,3D Slicer类似于放射工作站,不仅支持通用的可视化功能,而且还提供高级功能,例如针对各种应用领域的自动分段和注册。与典型的放射学工作站不同,3D Slicer是免费的,并且不受特定硬件的约束。作为一个编程平台,3D Slicer通过允许生物医学研究人员专注于算法的实现,并为数据通信,可视化和用户界面开发的常见任务提供抽象,从而促进了新定量方法的翻译和评估。与提供此功能方面的其他工具相比,3D Slicer是完全开源的,可以轻松扩展和重新分发。此外,3D Slicer旨在通过3D Slicer扩展的形式促进新功能的开发。在本文中,我们对3D Slicer进行了概述,将其作为用于临床研究应用的图像分析工具的原型设计,开发和评估的平台。为了说明该平台在QIN范围内的实用性,我们讨论了现有QIN团队的3D Slicer几个用例,并详细说明了将来的方向,这些方向可以进一步促进使用3D Slicer进行成像生物标记物的开发和验证。

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