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Super Slice Interpolation for Generating Thin-Slice Images from Multichannel Multislice MRI Data

机译:用于生成来自多声道MultiSlice MRI数据的薄片图像的超级切片插值

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This study aims to develop a super slice interpolation (SSI) method that generates thin-slice images from multichannel multislice images by exploiting the intra-slice coil sensitivity variations. SSI first calculates the thin-slice sensitivity maps by through-plane interpolation of the sensitivity maps computed from the acquired multislice images. It then reconstructs multiple thin-slice images from each acquired image using a through-plane regularized sensitivity encoding (SENSE) like procedure that consists of an initial SENSE reconstruction and denoising to set the prior information image, and subsequent regularized SENSE reconstruction. We evaluated SSI using multislice brain and abdominal images with typical slice thickness. SSI successfully separated each acquired image into two thinner ones without magnitude bias. Compared with the original thick-slice images, SSI revealed more anatomical details that were consistent with those in the separately acquired thin-slice images. SSI presents a novel slice interpolation approach to obtain thin-slice images from the multichannel thick-slice images.
机译:本研究旨在通过利用帧内线圈敏感性变化,开发一种超级切片插值(SSI)方法,其通过利用帧内线圈敏感性变化来产生来自多声道多层图像的薄片图像。 SSI首先通过从所获取的多层图像计算的灵敏度映射的通过平面插值来计算薄片灵敏度映射。然后,它使用像初始感测重建和去噪以设置先前信息图像的初始感测重建和去噪,从每个获取的图像从每个获取的图像重建多个薄片图像。我们使用典型切片厚度的多层脑和腹部图像评估SSI。 SSI成功将每个获取的图像分成两个更薄的图像,无幅度偏差。与原始厚切片图像相比,SSI揭示了与单独获得的薄片图像中的细节一致的解剖细节。 SSI呈现了一种新颖的切片插值方法,可以从多通道厚切片图像获得薄片图像。

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