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Face De-Identification Service for Neuroimaging Volumes

机译:神经影像量的面部去识别服务

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Digital medical imaging is a fundamental tool for improving medical practice workflows and supporting clinical diagnosis. Nowadays, healthcare institutions are usually very supported by information and communication systems that meet regular practice requirements. However, the usage of those platforms in collaborative, research and educational scenarios faces several problems. One of the key issues is related with patient data privacy, namely with concerns related with the visual anonymization of studies. In the neuroimaging field, this subject is more complex since, even after removing the patient's information from the images meta-data or burned in the pixel data, it is still possible to identify the patients through 3D reconstruction of the volume. This article proposes and describes the implementation of an end-user service that allows neuroimages facial de-identification of CT volumes, being fully interoperable with production repositories. The solution was validated using a public dataset and made available to the community through its integration with an open source archive server.
机译:数字医学成像是改善医学实践工作流程并支持临床诊断的基本工具。如今,医疗机构通常受到满足常规实践要求的信息和通信系统的大力支持。但是,在协作,研究和教育场景中使用这些平台面临一些问题。关键问题之一与患者数据隐私有关,即与研究的视觉匿名化有关。在神经成像领域,这个问题更加复杂,因为即使从图像元数据中删除了患者的信息或在像素数据中刻录了患者的信息之后,仍然可以通过3D重建体积来识别患者。本文提出并描述了最终用户服务的实现,该服务允许神经图像面部识别CT量,并且可以与生产存储库完全互操作。该解决方案已使用公共数据集进行了验证,并通过与开放源代码存档服务器集成而可供社区使用。

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