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UWB Free-Space Characterization and Shape Recognition of Dielectric Objects Using Statistical Methods

机译:利用统计方法对介电物体进行UWB自由​​空间表征和形状识别

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摘要

This paper presents a novel method for the free-space characterization and shape recognition of dielectric objects using multivariate calibration methods and linear discriminant analysis. The dimensions of the variously shaped objects are comparable with some of the transmitted wavelengths of the ultra-wideband (UWB) time-domain pulses used. A system illuminating the objects under test by a subnanosecond UWB pulse has been built. An array of receiving antennas receives the scattered pulses that contain information about the shape, the size, and the dielectric or related material properties of the objects. Multivariate analysis is applied to separate geometric effects from those due to the dielectric properties. Results are shown for two measurement series determining the amount of carbon and weight or the dielectric constant of the objects under test, independent of their shape, size, and orientation. Furthermore, a classification algorithm is applied, separating the objects into geometrical classes independent of all other varied parameters.
机译:本文提出了一种使用多元校准方法和线性判别分析对介电物体进行自由空间表征和形状识别的新方法。各种形状的物体的尺寸与所使用的超宽带(UWB)时域脉冲的某些透射波长相当。建立了一个亚纳秒UWB脉冲照亮被测物体的系统。接收天线阵列接收散射脉冲,这些散射脉冲包含有关对象的形状,大小以及介电或相关材料特性的信息。应用多元分析以将几何效应与由于介电性质而产生的几何效应分开。显示了两个测量系列的结果,这些测量系列确定了被测物体的碳含量和重量或介电常数,而与它们的形状,大小和方向无关。此外,应用分类算法,将对象分为独立于所有其他变化参数的几何类别。

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