首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Fast and robust three-dimensional fluorescence source reconstruction based on separable approximation and adaptive regularization
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Fast and robust three-dimensional fluorescence source reconstruction based on separable approximation and adaptive regularization

机译:基于可分逼近和自适应正则化的快速鲁棒三维荧光源重建

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摘要

In this study, a fast and robust reconstruction method based on the separable approximation and the adaptive regularization is presented for fluorescence molecular tomography. The subproblems can be established and solved efficiently through separable approximation, and the convergence process can be also accelerated by adaptive regularization. As is well known, the regularization parameter has an important impact on the results, and finding the optimal or near-optimal regularization parameter automatically is an challenging task. To solve this problem, the regularization parameter in the proposed method is updated heuristically instead of being determined manually or empirically. This adaptive regularization strategy of the proposed method can perform accurate reconstruction almost without worrying about the choice of the regularization parameter. By contrast, improper choice of the regularization parameter may cause larger location errors for the three contrasting methods. The proposed method is proved robust and insensitive to parameters, which can improve the reconstruction accuracy. Moreover, the proposed method was about 1-2 orders of magnitude faster than the contrasting methods commonly used in fluorescence tomography reconstruction. Furthermore, reliable performance on different initial unknown values and different noise levels was also investigated. Finally, the potential of the proposed method in a practical application was further validated by the physical experiment with a mouse model.
机译:在这项研究中,提出了一种基于可分离近似和自适应正则化的快速鲁棒重建方法,用于荧光分子层析成像。子问题可以通过可分离的近似来有效地建立和解决,并且可以通过自适应正则化来加速收敛过程。众所周知,正则化参数对结果有重要影响,而自动找到最佳或接近最佳的正则化参数是一项艰巨的任务。为了解决这个问题,提出的方法中的正则化参数是启发式更新,而不是手动或凭经验确定。提出的方法的这种自适应正则化策略几乎可以执行准确的重建,而无需担心正则化参数的选择。相比之下,对于三种对比方法,正则化参数选择不当可能会导致较大的位置误差。实践证明,该方法鲁棒且对参数不敏感,可以提高重建精度。而且,所提出的方法比通常在荧光层析成像重建中使用的对比方法快大约1-2个数量级。此外,还研究了在不同初始未知值和不同噪声水平下的可靠性能。最后,通过小鼠模型的物理实验进一步验证了该方法在实际应用中的潜力。

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