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首页> 外文期刊>Magnetic resonance imaging: An International journal of basic research and clinical applications >A software channel compression technique for faster reconstruction with many channels
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A software channel compression technique for faster reconstruction with many channels

机译:一种软件通道压缩技术,可快速重建多个通道

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摘要

In magnetic resonance imaging, highly parallel imaging using coil arrays with a large number of elements is an area of growing interest. With increasing channel numbers for parallel acquisition, the increased reconstruction time and extensive computer memory requirements have become significant concerns. In this work, principal component analysis (PCA) is used to develop a channel compression technique. This technique efficiently reduces the size of parallel imaging data acquired from a multichannel coil array, thereby significantly reducing the reconstruction time and computer memory requirement without undermining the benefits of multichannel coil arrays. Clinical data collected with a 32-channel cardiac coil are used in all of the experiments. The performance of the proposed method on parallel, partially acquired data, as well as fully acquired data, was evaluated. Experimental results show that the proposed method dramatically reduces the processing time without considerable degradation in the quality of reconstructed images. It is also demonstrated that this PCA technique can be used to perform intensity correction in parallel imaging applications.
机译:在磁共振成像中,使用具有大量元件的线圈阵列的高度平行成像是人们日益关注的领域。随着用于并行采集的通道数量的增加,增加的重建时间和广泛的计算机存储需求已成为人们关注的重点。在这项工作中,主成分分析(PCA)用于开发信道压缩技术。该技术有效地减小了从多通道线圈阵列获取的并行成像数据的大小,从而在不损害多通道线圈阵列的优点的情况下显着减少了重建时间和计算机存储需求。在所有实验中均使用通过32通道心脏线圈收集的临床数据。评价了该方法对并行,部分采集的数据以及完全采集的数据的性能。实验结果表明,该方法大大减少了处理时间,而不会显着降低重建图像的质量。还证明了该PCA技术可用于在并行成像应用中执行强度校正。

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