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Enhancement of the low resolution image quality using randomly sampled data for multi-slice MR imaging

机译:使用随机采样数据进行多层MR成像增强低分辨率图像质量

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摘要

Low resolution images are often acquired in in vivo MR applications involving in large field-of-view (FOV) and high speed imaging, such as, whole-body MRI screening and functional MRI applications. In this work, we investigate a multi-slice imaging strategy for acquiring low resolution images by using compressed sensing (CS) MRI to enhance the image quality without increasing the acquisition time. In this strategy, low resolution images of all the slices are acquired using multiple-slice imaging sequence. In addition, extra randomly sampled data in one center slice are acquired by using the CS strategy. These additional randomly sampled data are multiplied by the weighting functions generated from low resolution full k-space images of the two slices, and then interpolated into the k-space of other slices. In vivo MR images of human brain were employed to investigate the feasibility and the performance of the proposed method. Quantitative comparison between the conventional low resolution images and those from the proposed method was also performed to demonstrate the advantage of the method.
机译:低分辨率图像通常是在涉及大视野(FOV)和高速成像的体内MR应用中获取的,例如全身MRI筛选和功能性MRI应用。在这项工作中,我们研究了通过使用压缩传感(CS)MRI来获取低分辨率图像的多层成像策略,以增强图像质量而不增加获取时间。在这种策略中,使用多层成像序列获取所有切片的低分辨率图像。此外,通过使用CS策略,可以获取一个中心切片中额外的随机采样数据。这些额外的随机采样数据乘以从两个切片的低分辨率全k空间图像生成的加权函数,然后插值到其他切片的k空间。利用人脑的体内MR图像来研究该方法的可行性和性能。还对常规低分辨率图像与所提出方法的图像进行了定量比较,以证明该方法的优势。

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