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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >Accelerating PS model-based dynamic cardiac MRI using compressed sensing
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Accelerating PS model-based dynamic cardiac MRI using compressed sensing

机译:使用压缩感应加速基于PS模型的动态心脏MRI

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摘要

High spatiotemporal resolution MRI is a challenging topic in dynamic MRI field. Partial separability (PS) model has been successfully applied to dynamic cardiac MRI by exploiting data redundancy. However, the model requires substantial preprocessing data to accurately estimate the model parameters before image reconstruction. Since compressed sensing (CS) is a potential technique to accelerate MRI by reducing the number of acquired data, the combination of PS and CS, named as Stepped-SparsePS, was introduced to accelerate the preprocessing data acquisition of PS in this work. The proposed Stepped-SparsePS method sequentially reconstructs a set of aliased dynamic images in each channel based on PS model and then the final dynamic images from the aliased images using CS. The results from numerical simulations and in vivo experiments demonstrate that Stepped-SparsePS could significantly reduce data acquisition time while preserving high spatiotemporal resolution. (C) 2015 Elsevier Inc. All rights reserved.
机译:高时空分辨率MRI在动态MRI领域是一个具有挑战性的话题。通过利用数据冗余,部分可分离性(PS)模型已成功应用于动态心脏MRI。但是,模型需要大量的预处理数据才能在图像重建之前准确估算模型参数。由于压缩感测(CS)是通过减少采集数据的数量来加速MRI的潜在技术,因此在这项工作中引入了PS和CS的组合,称为Stepped-SparsePS,以加速PS的预处理数据采集。所提出的Step-SparsePS方法基于PS模型在每个通道中依次重建一组别名动态图像,然后使用CS从别名图像中重建最终的动态图像。数值模拟和体内实验的结果表明,Steped-SparsePS可以显着减少数据采集时间,同时保持较高的时空分辨率。 (C)2015 Elsevier Inc.保留所有权利。

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