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Improving a Shape Reconstruction Algorithm with Thresholds and Multi- View Data

机译:利用阈值和多视图数据改进形状重构算法

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This paper deals with the reconstruction of the shape of unknown perfectly conducting objects from the knowledge of the scattered electric far field in a two-dimensional geometry. By adopting the Kirchhoff approximation, the problem is cast as a linear inverse one and is solved by resorting to the Singular Value Decomposition (SVD) approach. The finiteness of the available dala along with the presence of the noise make undesired features on the reconstructed image arise. We here give some criteria for the choice of a threshold to cut them out from the reconstructions. Furthermore, we illustrate the processing of multi-view data.
机译:本文从二维几何学中的散射电远场的知识出发,研究未知导电物体的形状重构。通过采用基尔霍夫(Kirchhoff)逼近,该问题被转换为线性逆,然后通过奇异值分解(SVD)方法解决。可用dala的有限性以及噪声的存在使重建图像上出现了不需要的特征。我们在这里给出一些阈值选择标准,以将其从重建中剔除。此外,我们说明了多视图数据的处理。

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