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The SENSE-Isomorphism Theoretical Image Voxel Estimation (SENSE-ITIVE) Model for Reconstruction and Observing Statistical Properties of Reconstruction Operators

机译:重建和观察重建运营商统计特性的感觉同构理论图像体素估计(感觉趋势)模型

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摘要

The acquisition of sub-sampled data from an array of receiver coils has become a common means of reducing data acquisition time in MRI. Of the various techniques used in parallel MRI, SENSitivity Encoding (SENSE) is one of the most common, making use of a complex-valued weighted least squares estimation to unfold the aliased images. It was recently shown in Bruce et al. [Magn. Reson. Imag. 29(2011):1267–1287] that when the SENSE model is represented in terms of a real-valued isomorphism, it assumes a skew-symmetric covariance between receiver coils, as well as an identity covariance structure between voxels. In this manuscript, we show that not only is the skew-symmetric coil covariance unlike that of real data, but the estimated covariance structure between voxels over a time series of experimental data is not an identity matrix. As such, a new model, entitled SENSE-ITIVE, is described with both revised coil and voxel covariance structures. Both the SENSE and SENSE-ITIVE models are represented in terms of real-valued isomorphisms, allowing for a statistical analysis of reconstructed voxel means, variances, and correlations resulting from the use of different coil and voxel covariance structures used in the reconstruction processes to be conducted. It is shown through both theoretical and experimental illustrations that the miss-specification of the coil and voxel covariance structures in the SENSE model results in a lower standard deviation in each voxel of the reconstructed images, and thus an artificial increase in SNR, compared to the standard deviation and SNR of the SENSE-ITIVE model where both the coil and voxel covariances are appropriately accounted for. It is also shown that there are differences in the correlations induced by the reconstruction operations of both models, and consequently there are differences in the correlations estimated throughout the course of reconstructed time series. These differences in correlations could result in meaningful differences in interpretation of results.
机译:从接收器线圈阵列获取子采样数据已经成为降低MRI中的数据采集时间的常见方法。在并行MRI中使用的各种技术,灵敏度编码(SENSE)是最常见的,利用复值加权最小二乘估计来展开别名图像。它最近在Bruce等人中显示。 [楷模。共振。 imag。 29(2011):1267-1287]当在真实同构方面表示感测模型时,它假设接收器线圈之间的偏差对称协方差以及体素之间的身份协方差结构。在此稿件中,我们表明,与实际数据不同,歪斜对称线圈协方差不仅是歪曲对称的线圈协方差,而且在一个时间序列的实验数据中的体素之间的估计协方差结构不是身份矩阵。因此,描述了一个新的型号,题为iss-rive,有两个修改的线圈和voxel协方差结构。感觉和感测型模型都以实值同构表示,允许对重建的体素的统计分析,差异和由在重建过程中使用的不同线圈和体素协方差结构的使用而导致的重建的体素,差异和相关性实施。通过理论和实验说明示出了易感模型中线圈和体素协方差结构的错过规范导致重建图像的每个体素中的较低标准偏差,因此与...相比,SNR的人工增加衡量衡量的感觉兴奋模型的标准偏差与SNR,适当地占据了线圈和体素Covericces。还示出了两种模型的重建操作引起的相关性存在差异,因此在整个重建时间序列中估计的相关性存在差异。这些相关性的这些差异可能导致结果解释的有意义差异。

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