FDA-MIMO Beampattern Synthesis with an Analytical Method
Author(s) -
Changlin Zhou,
Chunyang Wang,
Jian Gong,
Ming Tan,
Yingjian Zhao,
Mingjie Liu
Publication year - 2021
Publication title -
international journal of aerospace engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.361
H-Index - 22
eISSN - 1687-5974
pISSN - 1687-5966
DOI - 10.1155/2021/9051131
Subject(s) - offset (computer science) , correctness , mimo , computer science , window function , radar , dimension (graph theory) , frequency offset , algorithm , range (aeronautics) , electronic engineering , control theory (sociology) , engineering , mathematics , telecommunications , artificial intelligence , aerospace engineering , channel (broadcasting) , spectral density , control (management) , orthogonal frequency division multiplexing , pure mathematics , programming language
Since the beampattern has the characteristics of range-angle dependence, frequency diverse array multiple-input multiple-output (FDA-MIMO) radar has a good application prospect. There have been many studies to improve the performance of the beampattern by optimizing the frequency offset. However, on the basis of fully understanding the time parameters, the relationship between the array element frequency offset and the beampattern performance still needs to be clarified. Based on a new FDA-MIMO radar framework, this paper presents an analytical solution of the beampattern, which removes the influence of the time parameter. Taking the minimum main lobe as the objective function, an analytical method for solving a better frequency offset is given. Then, a method of using the window function was proposed to reduce the high side lobes of the range dimension. Comparing with the existing FDA radar beampattern design methods, it can achieve a more focusing beampattern. The simulation results verify the correctness of the theory.
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