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Fast sparse recovery and coherence factor weighting in optoacoustic tomography

机译:光声层析成像中的快速稀疏恢复和相干因子加权

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Sparse recovery algorithms have shown great potential to reconstruct images with limited view datasets in optoacoustic tomography, with a disadvantage of being computational expensive. In this paper, we improve the fast convergent Split Augmented Lagrangian Shrinkage Algorithm (SALSA) method based on least square QR (LSQR) formulation for performing accelerated reconstructions. Further, coherence factor is calculated to weight the final reconstruction result, which can further reduce artifacts arising in limited-view scenarios and acoustically heterogeneous mediums. Several phantom and biological experiments indicate that the accelerated SALSA method with coherence factor (ASALSA-CF) can provide improved reconstructions and much faster convergence compared to existing sparse recovery methods.
机译:稀疏恢复算法显示出在光声层析成像中用有限的视图数据集重建图像的巨大潜力,但缺点是计算量大。在本文中,我们改进了基于最小二乘QR(LSQR)公式的快速收敛的分裂增广拉格朗日收缩算法(SALSA)方法来执行加速重建。此外,计算相干因子以加权最终的重建结果,这可以进一步减少在有限视图场景和声学异质介质中出现的伪像。几个幻像和生物学实验表明,与现有的稀疏恢复方法相比,具有相干因子的加速SALSA方法(ASALSA-CF)可以提供更好的重建效果和更快的收敛速度。

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