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SYSTEMS AND METHODS FOR INTEGRATING TOMOGRAPHIC IMAGE RECONSTRUCTION AND RADIOMICS USING NEURAL NETWORKS

机译:使用神经网络集成层析图像重建和放射线学的系统和方法

摘要

Computed tomography (CT) screening, diagnosis, or another image analysis tasks are performed using one or more networks and/or algorithms to either integrate complementary tomographic image reconstructions and radiomics or map tomographic raw data directly to diagnostic findings in the machine learning framework. One or more reconstruction networks are trained to reconstruct tomographic images from a training set of CT projection data. One or more radiomics networks are trained to extract features from the tomographic images and associated training diagnostic data. The networks/algorithms are integrated into an end-to-end network and trained. A set of tomographic data, e.g., CT projection data, and other relevant information from an individual is input to the end-to-end network, and a potential diagnosis for the individual based on the features extracted by the end-to-end network is produced. The systems and methods can be applied to CT projection data, MRI data, nuclear imaging data, ultrasound signals, optical data, other types of tomographic data, or combinations thereof.
机译:使用一个或多个网络和/或算法执行计算机断层扫描(CT)筛选,诊断或另一种图像分析任务,以整合互补的断层扫描图像重建和放射线学或将断层扫描原始数据直接映射到机器学习框架中的诊断结果。训练一个或多个重建网络,以从一组CT投影数据中重建断层图像。训练一个或多个放射线网络从断层图像和相关的训练诊断数据中提取特征。网络/算法已集成到端到端网络并经过培训。一组层析成像数据(例如CT投影数据)和来自其他人的其他相关信息被输入到端到端网络,并基于端到端网络提取的特征对个人进行潜在诊断被生产。该系统和方法可以应用于CT投影数据,MRI数据,核成像数据,超声信号,光学数据,其他类型的断层摄影数据或其组合。

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