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Extending the XNAT archive tool for image and analysis management in ophthalmology research

机译:在眼科研究中扩展XNAT归档工具进行图像和分析管理

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In ophthalmology, various modalities and tests are utilized to obtain vital information on the eye's structure and function. For example, optical coherence tomography (OCT) is utilized to diagnose, screen, and aid treatment of eye diseases like macular degeneration or glaucoma. Such data are complemented by photographic retinal fundus images and functional tests on the visual field. DICOM isn't widely used yet, though, and frequently images are encoded in proprietary formats. The extensible Neuroimaging Archive Tool (XNAT) is an open-source NIH-funded framework for research PACS and is in use at the University of Iowa for neurological research applications. Its use for ophthalmology was hence desirable but posed new challenges due to data types thus far not considered and the lack of standardized formats. We developed custom tools for data types not natively recognized by XNAT itself using XNAT's low-level REST API. Vendor-provided tools can be included as necessary to convert proprietary data sets into valid DICOM. Clients can access the data in a standardized format while still retaining the original format if needed by specific analysis tools. With respective project-specific permissions, results like segmentations or quantitative evaluations can be stored as additional resources to previously uploaded datasets. Applications can use our abstract-level Python or C/C++ API to communicate with the XNAT instance. This paper describes concepts and details of the designed upload script templates, which can be customized to the needs of specific projects, and the novel client-side communication API which allows integration into new or existing research applications.
机译:在眼科中,利用各种方式和测试来获得对眼睛结构和功能的重要信息。例如,光学相干断层扫描(OCT)用于诊断,筛查和辅助眼部疾病的治疗,如黄斑变性或青光眼。这些数据由摄影视网膜眼底图像和视觉领域的功能测试互补。但是,DICOM还没有广泛使用,并且通常以专有格式编码图像。可扩展的神经影像档案工具(XNAT)是一个开源的NIH资助的研究PAC框架,正在IOWA大学进行神经系统研究应用。因此,它用于眼科的用途是理想的,但由于迄今为止未考虑的数据类型提出了新的挑战,并且缺乏标准化的格式。我们开发了用于使用XNAT的低级REST API的XNAT本身未自然地识别的数据类型的自定义工具。可以根据需要包含供应商提供的工具,将专有数据集转换为有效的DICOM。客户端可以以标准化格式访问数据,同时在特定分析工具需要时仍然保留原始格式。通过各个项目特定权限,可以将分段或定量评估等结果存储为先前上传的数据集。应用程序可以使用我们的抽象级Python或C / C ++ API与XNAT实例通信。本文介绍了所设计的上传脚本模板的概念和细节,可以自定义为特定项目的需求,以及新颖的客户端通信API,允许集成到新的或现有的研究应用程序中。

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