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首页> 外文期刊>IEEE Transactions on Instrumentation and Measurement >An Image Reconstruction Algorithm for Electrical Impedance Tomography Using Adaptive Group Sparsity Constraint
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An Image Reconstruction Algorithm for Electrical Impedance Tomography Using Adaptive Group Sparsity Constraint

机译:基于自适应群稀疏约束的电阻抗层析成像图像重建算法

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摘要

Image quality has long been deemed a key challenge for electrical impedance tomography (EIT). High-quality image is of great significance for improving the qualitative and quantitative imaging performance in biomedical or industrial applications. In this paper, a novel image reconstruction algorithm for EIT using adaptive group sparsity constraint is proposed to obtain enhanced image quality. The proposed algorithm takes both the underlying structure characteristics and sparsity prior of the conductivity distribution into account to promote a solution with group sparsity structure and reduce the degree of freedom. Specifically, an adaptive grouping method is incorporated for efficient and dynamic pixel grouping when the conductivity distribution does not have a fixed structure or the prior knowledge of the structure is unavailable. Numerical simulation and phantom experiments are performed to validate the proposed algorithm. The results are compared with those using the Landweber iteration, total variation regularization, and regularization. Both simulation and experiment results confirm the significantly improved tomographic imaging quality using the proposed algorithm, which demonstrates great potential for multiphase flow imaging and biological tissue imaging.
机译:长期以来,图像质量一直被认为是电阻抗断层扫描(EIT)的关键挑战。高质量图像对于改善生物医学或工业应用中的定性和定量成像性能具有重要意义。本文提出了一种新的基于自适应群稀疏约束的EIT图像重建算法,以提高图像质量。所提出的算法考虑了电导率分布之前的基础结构特征和稀疏性,以促进具有组稀疏结构的解决方案并降低自由度。具体地,当电导率分布不具有固定结构或该结构的先验知识不可用时,并入自适应分组方法以进行有效和动态的像素分组。数值模拟和幻影实验进行验证该算法。将结果与使用Landweber迭代,总变化正则化和正则化的结果进行比较。仿真和实验结果均证实了使用所提出算法的断层显像质量得到了显着改善,这表明了多相流成像和生物组织成像的巨大潜力。

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