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首页> 外文期刊>Neural Networks and Learning Systems, IEEE Transactions on >Multitask Learning for Estimating Multitype Cardiac Indices in MRI and CT Based on Adversarial Reverse Mapping
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Multitask Learning for Estimating Multitype Cardiac Indices in MRI and CT Based on Adversarial Reverse Mapping

机译:基于对冲反向映射的MRI和CT中跨性心脏指数的多任务学习

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摘要

The estimation of multitype cardiac indices from cardiac magnetic resonance imaging (MRI) and computed tomography (CT) images attracts great attention because of its clinical potential for comprehensive function assessment. However, the most exiting model can only work in one imaging modality (MRI or CT) without transferable capability. In this article, we propose the multitask learning method with the reverse inferring for estimating multitype cardiac indices in MRI and CT. Different from the existing forward inferring methods, our method builds a reverse mapping network that maps the multitype cardiac indices to cardiac images. The task dependencies are then learned and shared to multitask learning networks using an adversarial training approach. Finally, we transfer the parameters learned from MRI to CT. A series of experiments were conducted in which we first optimized the performance of our framework via ten-fold cross-validation of over 2900 cardiac MRI images. Then, the fine-tuned network was run on an independent data set with 2360 cardiac CT images. The results of all the experiments conducted on the proposed adversarial reverse mapping show excellent performance in estimating multitype cardiac indices.
机译:来自心脏磁共振成像(MRI)和计算机断层扫描(CT)图像的多理心脏指数的估计,因为其综合函数评估的临床潜力感到非常关注。然而,最前面的模型只能在一个成像模态(MRI或CT)中工作而无需可转移的能力。在本文中,我们提出了具有反向推断的多任务学习方法,用于估算MRI和CT中的多立方心脏索引。不同于现有的前瞻性推断方法,我们的方法构建了一个反向映射网络,将多重级心脏索引映射到心脏图像。然后使用对冲训练方法学习并共享任务依赖性并与多任务学习网络共享。最后,我们将从MRI学习的参数转移到CT。进行了一系列实验,其中我们首先通过超过2900万心脏MRI图像的十倍交叉验证优化了我们框架的性能。然后,微调网络在具有2360心脏CT图像的独立数据集上运行。在拟议的对抗性逆向映射上进行的所有实验的结果表明,估计多重PE心脏指数方面具有出色的性能。

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