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首页> 外文期刊>Science, Measurement & Technology, IET >Hybrid sensitivity-correlation regularisation matrix for electrical impedance tomography
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Hybrid sensitivity-correlation regularisation matrix for electrical impedance tomography

机译:电阻抗层析成像的混合灵敏度相关正则化矩阵

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摘要

In electrical impedance tomography, the primary task of image reconstruction process is to solve a discrete ill-posed inverse problem. The estimated solution is commonly obtained under a regularisation framework so that the noise amplified solution, which occurs during the matrix inversion process, can be avoided. The regularisation framework aims at balancing the model-data fitness while simultaneously constraining the solution space with additional prior (commonly prescribed through the regularisation matrix and solution-norm). In this study, a relationship between two robust regularisation matrices namely Newton one-step error reconstruction and fidelity-embedded regularisation is explicitly highlighted in both spatial and singular value decomposition domains. A hybrid regularisation matrix which encompasses the two prior knowledge, non-uniform sensitivity distribution and array response correlation, is then proposed as an alternative prior. Experimental results along with several evaluated performance parameters highlight the ability of the proposed prior to achieve a well-balanced and robust performance.
机译:在电阻抗层析成像中,图像重建过程的主要任务是解决离散的不适定逆问题。通常在正则化框架下获得估计解,从而可以避免在矩阵求逆过程中出现的噪声放大解。正则化框架旨在平衡模型数据的适用性,同时以其他先验(通常通过正则化矩阵和求解范数规定)来约束求解空间。在这项研究中,两个稳健的正则化矩阵,即牛顿一步误差重构和逼真度嵌入的正则化之间的关系在空间和奇异值分解域中都得到了明确强调。包含两个先验知识,非均匀灵敏度分布和阵列响应相关性的混合正则化矩阵,然后被提出作为替代先验。实验结果以及几个评估的性能参数突出了所提出的在达到良好平衡和鲁棒性能之前的能力。

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