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Performance of Minimum Mean-Square Error Beam Forming for Polarimetric Phased Array Weather Radar

机译:极化相控阵天气雷达的最小均方误差波束形成性能

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In this paper, the development of a polarimetric phased array weather radar, which consists of a dual-polarized antenna with 2-D circular planar phase-array elements, is discussed. The radar is capable of measuring the 3-D rainfall distribution in less than several tens of seconds. Digital beamforming (DBF) is an important component in the development process of the phased array radar. In this paper, precipitation radar signal simulations are performed taking into consideration radar concepts in order to discuss the estimation accuracy of polarimetric precipitation profiles (differential reflectivity, specific differential phase, and copolar correlation coefficient) with two DBF methods that are based on Fourier and minimum mean-square error (MMSE) methods. A comparison of the performance of the two methods indicates that MMSE is superior in accuracy because of the effect of a stable and a robust main lobe and adaptively suppressed side lobes. MMSE also provides precipitation measurements eliminating the directional dependence of a beam pattern for improving the accuracy of measurements. It is also shown that the estimated accuracies of the precipitation profiles are almost independent of the number of pulses.
机译:本文讨论了极化相控阵天气雷达的发展,该雷达由具有二维圆形平面相控阵元件的双极化天线组成。雷达能够在不到几十秒的时间内测量3-D降雨分布。数字波束成形(DBF)是相控阵雷达开发过程中的重要组成部分。在本文中,考虑到雷达的概念进行了降水雷达信号模拟,以便讨论两种基于傅立叶和最小二乘的DBF方法对极化降水剖面(差分反射率,特定微分相位和同极相关系数)的估计精度。均方误差(MMSE)方法。两种方法的性能比较表明,MMSE由于稳定和健壮的主瓣以及自适应抑制的旁瓣的影响而在精度上更高。 MMSE还提供降水量测量,消除了波束方向图的方向依赖性,从而提高了测量精度。还表明,降水分布的估计精度几乎与脉冲数无关。

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