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Study on Joint Inversion Algorithm of Acoustic and Electromagnetic Data in Biomedical Imaging

机译:生物医学影像中声,电磁数据联合反演算法研究

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摘要

In this paper, we study a joint inversion algorithm to reconstruct acoustic and electromagnetic (EM) data in biomedical imaging. This algorithm is based on contrast source inversion algorithm. We define contrast source and contrast functions in both acoustics and EMs, respectively, and apply two reciprocal regularization operators to link acoustic and EM inversion. By minimizing the cost function using the conjugate gradient method, we can simultaneously reconstruct compressibility, attenuation, permittivity, and conductivity of different human tissues. Numerical experiments show that acoustic and EM inversion can compensate each other and achieve a better reconstruction than individual inversion. Besides, the joint inversion method is particularly sensitive to compressibility and conductivity and thus may be used to monitor air and water contents in human thorax as well as other applications in biomedicine.
机译:在本文中,我们研究了一种联合反演算法来重建生物医学成像中的声和电磁(EM)数据。该算法基于对比源反演算法。我们分别在声学和EM中定义对比源和对比函数,并应用两个倒数正则化运算符来链接声学和EM反演。通过使用共轭梯度法最小化代价函数,我们可以同时重建不同人体组织的可压缩性,衰减,介电常数和电导率。数值实验表明,声波反演和电磁反演可以相互补偿,并且比单个反演具有更好的重构效果。此外,联合倒置方法对可压缩性和导电性特别敏感,因此可用于监测人体胸部以及生物医学中的其他应用中的空气和水含量。

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