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Radiation center estimation from near-field data using a direct and an iterative approach

机译:使用直接和迭代方法从近场数据估算辐射中心估计

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Spherical Near-Field (SNF) measurements are an established technique for the characterization of an Antenna Under Test (AUT). The normal sampling criterion follows the Nyquist theorem, taking equiangular samples. The sampling step size depends on the smallest sphere that, centered in the coordinate system of the measurement, encloses the AUT, i.e. the global minimum sphere. In addition, a local minimum sphere can be defined as the sphere with minimum radius which, centered in the AUT, encloses it alone. The local minimum sphere is always equal or smaller than the global minimum sphere, being equal when the AUT is centered in the coordinate system of the measurement. It is implied that the center of the local minimum sphere coincides with the radiation center. In this paper, the relative position of the radiation center of an AUT with respect to the center of the coordinate system of the measurement is estimated from SNF data using two approaches. The first approach takes the phase center as an estimation of the radiation center and is based on the method of moving reference point, strictly valid for the far-field case only. The second approach is based on a spherical modes spectrum analysis, iteratively translating the Spherical Wave Expansion (SWE) until the convergence criterion is met. Both methods are applied on undersampled systems by simulation for different cases and antennas. The estimation error of both methods is compared and discussed, highlighting the convenience of each method and an application with compressed sensing techniques.
机译:球形近场(SNF)测量是用于表征下的天线(AUT)的建立技术。正常的抽样标准遵循奈奎斯特定理,采用等南样本。采样步骤尺寸取决于以测量的坐标系为中心的最小球体,附上AUT,即全局最小球体。另外,局部最小球体可以定义为具有最小半径的球体,该球体在AUT中居中封闭。局部最小球始终相等或小于全局最小球体,当AUT以测量的坐标系为中心时等于。暗示局部最小球体的中心与辐射中心一致。在本文中,Aut的辐射中心相对于使用两种方法的SNF数据估计测量的坐标系中心的相对位置。第一种方法将相位中心作为辐射中心的估计,并且基于移动参考点的方法,仅对远场壳体有效。第二种方法基于球面模式频谱分析,迭代地平移球形波膨胀(SWE),直到满足收敛标准。通过针对不同的情况和天线模拟,两种方法都应用于向下采样系统。比较和讨论了两种方法的估计误差,突出了每个方法的便利性和具有压缩传感技术的应用。

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