首页> 外文会议>Proceedings of the 2010 Biomedical Sciences and Engineering Conference >5.5: Presentation session: Neuroscience informatics: “Interfaces and integration of Medical Image Analysis frameworks: Challenges and opportunities”
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5.5: Presentation session: Neuroscience informatics: “Interfaces and integration of Medical Image Analysis frameworks: Challenges and opportunities”

机译:5.5:演讲:神经科学信息学:“医学图像分析框架的接口和集成:挑战与机遇”

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Clinical research with medical imaging typically involves large-scale data analysis with interdependent software toolsets tied together in a processing workflow. Numerous, complementary platforms are available, but these are not readily compatible in terms of workflows or data formats. Both image scientists and clinical investigators could benefit from using the framework which is a most natural fit to the specific problem at hand, but pragmatic choices often dictate that a compromise platform is used for collaboration. Manual merging of platforms through carefully tuned scripts has been effective, but exceptionally time consuming and is not feasible for large-scale integration efforts. Hence, the benefits of innovation are constrained by platform dependence. Removing this constraint via integration of algorithms from one framework into another is the focus of this work. We propose and demonstrate a light-weight interface system to expose parameters across platforms and provide seamless integration. In this initial effort, we focus on four platforms Medical Image Analysis and Visualization (MIPAV), Java Image Science Toolkit (JIST), command line tools, and 3D Slicer. We explore three case studies: (1) providing a system for MIPAV to expose internal algorithms and utilize these algorithms within JIST, (2) exposing JIST modules through self-documenting command line interface for inclusion in scripting environments, and (3) detecting and using JIST modules in 3D Slicer. We review the challenges and opportunities for light-weight software integration both within development language (e.g., Java in MIPAV and JIST) and across languages (e.g., C/C++ in 3D Slicer and shell in command line tools).
机译:医学影像的临床研究通常涉及在处理工作流程中将相互依赖的软件工具集捆绑在一起的大规模数据分析。可以使用许多互补的平台,但是就工作流程或数据格式而言,这些平台并不容易兼容。图像科学家和临床研究人员都可以从使用最适合当前特定问题的框架中受益,但是务实的选择通常要求使用折衷的平台进行协作。通过精心调整的脚本手动合并平台是有效的,但是非常耗时,并且对于大规模集成工作而言是不可行的。因此,创新的好处受到平台依赖性的限制。通过将算法从一个框架集成到另一个框架中来消除此约束是本工作的重点。我们提出并演示了一种轻量级的界面系统,该界面系统可以跨平台公开参数并提供无缝集成。在最初的工作中,我们将重点放在四个平台上:医学图像分析和可视化(MIPAV),Java图像科学工具包(JIST),命令行工具和3D Slicer。我们探索了三个案例研究:(1)为MIPAV提供一个系统,以公开内部算法并在JIST中利用这些算法;(2)通过自文档命令行界面公开JIST模块以包含在脚本环境中;(3)检测和在3D Slicer中使用JIST模块。我们将在开发语言(例如MIPAV和JIST中的Java)以及跨语言(例如3D Slicer中的C / C ++和命令行工具中的shell)中回顾轻量级软件集成的挑战和机遇。

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