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Optimized Beam Steering Approach for Improved Sidelobes in Phased Array Radars Using a Minimal Number of Control Bits

机译:使用最少数量的控制位的改进波束控制方法以改善相控阵雷达的旁瓣

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摘要

As active electronically steerable arrays become more prominent, a new paradigm of assigning bits to a set of digital phase shifters, necessary for analog and digital beamforming, is proposed. It is well known that a modern day digital phase shifter which is associated with each transmit/receive module typically relies on three to seven bits. Each of these phase shifters provide a desired resolution of 45 to 2.8125, respectively. When an array is steered with a fixed precision set of phase shifters, there are some angles where results are significantly better than others. For example, six bit phase shifters can provide exact 11.25differential phases in a linear array, but not 15, and subsequent quantization errors lead to reduced pointing accuracy and increased sidelobe levels. However, these errors can be minimized if the set of shifters operate collectively instead of independently with “blind” quantization. In particular this study seeks the solution for the following problem: for a set of phase shifters, each defined by bits, determine the optimal way to distribute the bits so that the array performance is maximized.
机译:随着有源电子可控阵列的日益突出,提出了将比特分配给一组数字移相器的新范例,这对于模拟和数字波束形成是必需的。众所周知,与每个发送/接收模块相关联的现代数字移相器通常依赖于三至七位。这些移相器分别提供45至2.8125的所需分辨率。当使用一组固定精度的移相器来操纵阵列时,某些角度的结果明显优于其他角度。例如,六个位移相器可以在线性阵列中提供精确的11.25差分相位,但不能提供15个相位,随后的量化误差会导致指向精度降低和旁瓣电平升高。但是,如果这组移位器是集体操作而不是通过“盲”量化独立运行,则可以将这些误差降到最低。特别是,本研究寻求以下问题的解决方案:对于一组每个由位定义的移相器,确定分配位的最佳方式,以使阵列性能最大化。

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