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Basis pursuit deconvolution for improving model-based reconstructed images in photoacoustic tomography

机译:基追踪反褶积可改善光声层析成像中基于模型的重建图像

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摘要

The model-based image reconstruction approaches in photoacoustic tomography have a distinct advantage compared to traditional analytical methods for cases where limited data is available. These methods typically deploy Tikhonov based regularization scheme to reconstruct the initial pressure from the boundary acoustic data. The model-resolution for these cases represents the blur induced by the regularization scheme. A method that utilizes this blurring model and performs the basis pursuit deconvolution to improve the quantitative accuracy of the reconstructed photoacoustic image is proposed and shown to be superior compared to other traditional methods via three numerical experiments. Moreover, this deconvolution including the building of an approximate blur matrix is achieved via the Lanczos bidagonalization (least-squares QR) making this approach attractive in real-time. (C) 2014 Optical Society of America
机译:与传统的分析方法相比,光声层析成像中基于模型的图像重建方法在数据有限的情况下具有明显的优势。这些方法通常部署基于Tikhonov的正则化方案,以从边界声学数据中重建初始压力。这些情况的模型分辨率表示由正则化方案引起的模糊。提出了一种利用此模糊模型并执行基本追踪反卷积以提高重构光声图像定量精度的方法,并通过三个数值实验证明其优于其他传统方法。此外,通过Lanczos双角化(最小二乘QR)可实现包括建立近似模糊矩阵在内的解卷积,从而使这种方法具有实时吸引力。 (C)2014年美国眼镜学会

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