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首页> 外文期刊>NMR in biomedicine >A simple noniterative principal component technique for rapid noise reduction in parallel MR images
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A simple noniterative principal component technique for rapid noise reduction in parallel MR images

机译:一种用于在并行MR图像中快速降低噪声的简单非迭代主成分技术

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摘要

The utilization of parallel imaging permits increased MR acquisition speed and efficiency; however, parallel MRI usually leads to a deterioration in the signal‐to‐noise ratio when compared with otherwise equivalent unaccelerated acquisitions. At high accelerations, the parallel image reconstruction matrix tends to become dominated by one principal component. This has been utilized to enable substantial reductions in g‐factor‐related noise. A previously published technique achieved noise reductions via a computationally intensive search for multiples of the dominant singular vector which, when subtracted from the image, minimized joint entropy between the accelerated image and a reference image. We describe a simple algorithm that can accomplish similar results without a timeconsuming search. Significant reductions in g‐factor‐related noise were achieved using this new algorithm with in vivo acquisitions at 1.5 T with an eight‐element array.
机译:利用并行成像可以提高MR采集速度和效率。但是,与其他等效的未加速采集相比,并行MRI通常会导致信噪比变差。在高加速度下,并行图像重建矩阵趋于由一个主分量控制。它已被用来大大降低与g因子有关的噪声。先前发布的技术通过计算密集搜索显性奇异矢量的倍数来实现降噪,该显性奇异矢量的倍数从图像中减去后,可使加速图像和参考图像之间的联合熵最小。我们描述了一种简单的算法,无需费时的搜索即可完成相似的结果。使用这种新算法,使用八元素阵列在1.5 T下进行体内采集,可以显着降低g因子相关的噪声。

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