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Gaussian-Radial Under-Sampling Based CSMRI Reconstruction using a Modified Interpolation Approach

机译:基于高斯径向的基于抽样的基于CSMRI重建使用改进的插值方法

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Magnetic Resonance Imaging (MRI) is used to produce detailed images of body tissues and organs using strong magnets and radio waves, but with a very slow acquisition process. Compressed Sensing (CS) has efficiently accelerated the MRI acquisition process by employing different reconstruction strategies using a fraction of the Nyquist samples. This scan time can be further reduced using a new technique called interpolated compressed sensing (iCS) by exploiting the inter-slice correlation of multi-slice MRI. In this paper, a modified fast interpolated compressed sensing (Mod-FiCS) technique is proposed using the Gaussian-Radial under-sampling scheme. The Gaussian-Radial under-sampling approach adopted by Mod-FiCS has an edge that it neither shows any streaking artifacts like Radial nor blurred edges like Gaussian. The new interpolation approach used in Mod-FiCS technique uses three consecutive slices to estimate the missing samples. Six evaluation metrics are used to analyze the performance of the proposed technique such as structural similarity index measurement (SSIM), feature similarity index measurement (FSIM), mean square error (MSE), peak signal to noise ratio (PSNR), correlation (CORR), and sharpness index (SI), and compared with recent sampling and interpolation techniques. The simulation result shows that the proposed technique has improvement both quantitatively and qualitatively.
机译:磁共振成像(MRI)用于使用强磁铁和无线电波产生身体组织和器官的详细图像,但是采集过程非常慢。压缩传感(CS)通过使用奈奎斯特样本的一部分采用不同的重建策略,有效地加速了MRI采集过程。通过利用多切片MRI的切片切片相关性,可以使用称为内插压缩感测(IC)的新技术进一步减少该扫描时间。本文采用高斯径向下采样方案提出了一种改进的快速插值压缩传感(MOD-FICS)技术。 Mod-FIC采用的高斯径向下采样方法具有边缘,其既不显示任何像高斯等径向也不模糊的边缘。 Mod-FICS技术中使用的新插值方法使用三个连续切片来估计缺少的样本。六个评估度量用于分析所提出的技术的性能,如结构相似性指数测量(SSIM),特征相似性指数测量(FSIM),均方误差(MSE),峰值信号到噪声比(PSNR),相关性(Corr )和锐度指数(SI),并与最近的采样和插值技术进行比较。仿真结果表明,所提出的技术在定量和定性方面具有改进。

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