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Spatially-adaptive temporal smoothing for reconstruction of dynamic and gated image sequences

机译:用于重建动态和门控图像序列的空间 - 自适应时间平滑

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In this paper we propose a method for spatio-temporal reconstruction of dynamic or gated image sequences. In a method we proposed previously, temporal smoothing in a Karhunen-Loeve (KL) transform domain was used prior to reconstruction to reduce the effect of noise. Unlike the Bayesian priors that are usually used in image reconstruction, temporal KL smoothing is a data-driven approach that takes advantage of the fact that the desired part of the data is characterized by strong inter-frame correlations, whereas the noise is uncorrelated. In this paper we improve on one of our group's previous techniques by making the temporal smoothing adapt spatially to local characteristics in the projection data. This improves the noise performance of the temporal smoothing, while significantly lessening the possibility of signal distortion. In the proposed method, spatial regions of the projection-data sequence having similar time characteristics are identified by an unsupervised k-means clustering algorithm. A different KL transformation is designed for each spatial region in projection space, adapting the smoothing to the local temporal behavior. Finally, images are reconstructed from the smoothed projections by using the expectation-maximization (EM) algorithm. Experimental computer simulation results are shown that demonstrate potential improvements in image quality obtained by this technique for dynamic and gated imaging applications in brain, lesion, and cardiac imaging.
机译:在本文中,我们提出了一种用于动态或门控图像序列的时空重建的方法。在我们之前提出的方法中,在重建之前使用KarhUnen-Loeve(KL)变换域中的时间平滑以降低噪声的效果。与通常用于图像重建的贝叶斯前沿不同,时间KL平滑是一种数据驱动方法,其利用了数据的所需部分的特征在于强大的帧间相关性,而噪声是不相关的。在本文中,我们通过使时空平滑在投影数据中的局部特征方面适应本集团的先前技术之一。这提高了时间平滑的噪声性能,同时显着减少了信号失真的可能性。在所提出的方法中,通过无监督的k均值聚类算法识别具有类似时间特性的投影数据序列的空间区域。针对投影空间中的每个空间区域设计了不同的KL转换,适应局部时间行为的平滑。最后,通过使用期望最大化(EM)算法,从平滑的投影重建图像。实验计算机仿真结果表明,通过这种技术在脑,病变和心脏成像中的动态和门控成像应用获得的图像质量的潜在改进。

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