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具有可变分辨率数据和图像空间的多重网格层析成像反演

Multigrid tomographic inversion with variable resolution data and image spaces.

作者信息

Oh Seungseok, Bouman Charles A, Webb Kevin J

机构信息

Fujifilm Software (California), Inc., San Jose, CA 95110, USA.

出版信息

IEEE Trans Image Process. 2006 Sep;15(9):2805-19. doi: 10.1109/tip.2006.877313.

Abstract

A multigrid inversion approach that uses variable resolutions of both the data space and the image space is proposed. Since the computational complexity of inverse problems typically increases with a larger number of unknown image pixels and a larger number of measurements, the proposed algorithm further reduces the computation relative to conventional multigrid approaches, which change only the image space resolution at coarse scales. The advantage is particularly important for data-rich applications, where data resolutions may differ for different scales. Applications of the approach to Bayesian reconstruction algorithms in transmission and emission tomography with a generalized Gaussian Markov random field image prior are presented, both with a Poisson noise model and with a quadratic data term. Simulation results indicate that the proposed multigrid approach results in significant improvement in convergence speed compared to the fixed-grid iterative coordinate descent method and a multigrid method with fixed-data resolution.

摘要

提出了一种使用数据空间和图像空间可变分辨率的多重网格反演方法。由于反问题的计算复杂度通常随着未知图像像素数量的增加和测量数量的增加而增加,因此相对于传统的多重网格方法,该算法进一步减少了计算量,传统方法仅在粗尺度上改变图像空间分辨率。对于数据丰富的应用,这一优势尤为重要,因为不同尺度下的数据分辨率可能不同。介绍了该方法在具有广义高斯马尔可夫随机场图像先验的传输和发射断层扫描中的贝叶斯重建算法中的应用,包括泊松噪声模型和二次数据项的情况。仿真结果表明,与固定网格迭代坐标下降法和固定数据分辨率的多重网格方法相比,所提出的多重网格方法在收敛速度上有显著提高。

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