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首页> 外文期刊>International journal of antennas and propagation >Application of Support Vector Machines for Estimating Wall Parameters in Through-Wall Radar Imaging
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Application of Support Vector Machines for Estimating Wall Parameters in Through-Wall Radar Imaging

机译:支持向量机在穿墙雷达成像中估算墙体参数的应用

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In through-wall radar imaging (TWRI), ambiguities in wall characteristics including the thickness and the relative permittivity will distort the image and shift the imaged target position. To quickly and accurately estimate the wall parameters, an approach based on a support vector machine (SVM) is proposed. In TWRI problem, the nonlinearity is embodied in the relationship between backscatter data and the wall parameters, which can be obtained through the SVM training process. Measurement results reveal that once the training phase is completed, the technique only needs no more than one second to estimate wall parameters with acceptable errors. Then through-wall images are reconstructed using a back-projection (BP) algorithm by a finite-difference time-domain (FDTD) simulation. Noiseless and noisy measurements are discussed; the simulation results demonstrate that noisy contamination has little influence on the imaging quality. Furthermore, the feasibility and the validity are tested by a more realistic situation. The results show that high-quality and focused images are obtained regardless of the errors in the wall parameter estimates.
机译:在穿墙雷达成像(TWRI)中,包括厚度和相对介电常数在内的墙面特性模糊不清将使图像变形并移动成像目标位置。为了快速,准确地估算墙体参数,提出了一种基于支持向量机的方法。在TWRI问题中,非线性体现在后向散射数据与墙体参数之间的关系中,这可以通过SVM训练过程获得。测量结果表明,一旦训练阶段完成,该技术只需要不超过一秒钟的时间即可估算出具有可接受误差的墙体参数。然后通过反投影(BP)算法通过有限差分时域(FDTD)模拟来重建穿墙图像。讨论了无噪声和嘈杂的测量;仿真结果表明,噪声污染对成像质量影响很小。此外,通过更现实的情况来检验可行性和有效性。结果表明,不管墙参数估计中的错误如何,都可以获得高质量且聚焦的图像。

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