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src='/images/tex/598.gif' alt='L_{2}'> -Regularized Iterative Weighted Algorithm for Inverse Scattering

机译: src =“ / images / tex / 598.gif” alt =“ L_ {2}”> -用于逆散射的正则化迭代加权算法

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摘要

We propose a new inverse scattering technique based on sparsity for the application of microwave imaging. The underdetermined inverse problem appeared in the distorted born iterative method (DBIM) technique is solved using the suggested -regularized iterative weighted algorithm ( -IWA). The -regularizer has been introduced to stabilize the algorithm against nonlinear approximations, and the sparsity is enforced with the aid of another reweighted -norm regularizer to address the ill-posedness of the inverse problem. The derived algorithm is a three-step iterative technique which solves the underdetermined set of equations at each DBIM iteration. Moreover, the convergence of the -IWA technique is proved, analytically. The suggested method outperforms its other counterparts in various scenarios of homogeneous and heterogeneous breast models. Besides improving the resolution of the breast tumors, the -IWA technique is shown to be robust against additive noise.
机译:针对微波成像的应用,我们提出了一种基于稀疏性的逆散射技术。使用建议的正则化迭代加权算法(-IWA)解决了失真的固有迭代法(DBIM)技术中出现的欠定反问题。已经引入了-regularizer来稳定算法免受非线性逼近,并且借助另一个重新加权的-norm正则化器来强制执行稀疏性,以解决反问题的不适定性。派生算法是一种三步迭代技术,可在每次DBIM迭代时求解欠定的方程组。此外,通过分析证明了-IWA技术的收敛性。在同质和异质乳房模型的各种情况下,建议的方法优于其他方法。除了提高乳腺肿瘤的分辨率外,-IWA技术还显示出对加性噪声的鲁棒性。

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