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首页> 外文期刊>Physical and Engineering Sciences in Medicine >CT slice alignment to whole?body reference geometry by convolutional neural network
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CT slice alignment to whole?body reference geometry by convolutional neural network

机译:CT片对齐?通过卷积神经网络几何

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摘要

Volumetric medical imaging lacks a standardised coordinate geometry which links image frame-of-reference to specific anatomical regions. This results in an inability to locate anatomy in medical images without visual assessment and precludes a variety of image analysis tasks which could benefit from a standardised, machine-readable coordinate system. In this work, a proposed geometric system that scales based on patient size is described and applied to a variety of cases in computed tomography imaging. Subsequently, a convolutional neural network is trained to associate axial slice CT image appearance with the standardised coordinate value along the patient superior-inferior axis. The trained neural network showed an accuracy of +/- 12 mm in the ability to predict per-slice reference location and was relatively stable across all annotated regions ranging from brain to thighs. A version of the trained model along with scripts to perform network training in other applications are made available. Finally, a selection of potential use applications are illustrated including organ localisation, image registration initialisation, and scan length determination for auditing diagnostic reference levels.
机译:体积医学成像缺乏标准化几何坐标的图像的链接参照系特定解剖地区。解剖学在医学图像可视化评估和排除了各种形象分析任务可能受益标准化、机器可读的坐标系统。在这项工作中,提出了几何系统基于病人的大小尺度和描述适用于各种情况下的计算断层扫描成像。神经网络训练副轴CT切片图像外观与标准化协调价值以及病人superior-inferior轴。网络显示的精度+ / - 12毫米预测能力每片参考位置相对稳定的所有注释区域从大脑到大腿。训练模型的脚本在其他应用程序中执行网络培训都是可用的。潜在的使用应用程序包括器官本地化,图像配准初始化,扫描长度测定审计的诊断参考水平。

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