双频干涉法在二坐标雷达目标仰角测量中的适用性分析

Q4 Physics and Astronomy Radio Physics and Radio Astronomy Pub Date : 2023-01-01 DOI:10.15407/rpra28.02.143
V. Galushko, O. Vlasenko, Y. Bulakh
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引用次数: 0

摘要

主题和目的。为了消除二维雷达目标仰角估计的模糊性和信号相位差测量的2pm不确定性,研究了基于两个相当接近频率的双频无线电干涉测量技术。分析了随机噪声对双频射电干涉测角精度的影响,并对该方法的实用性进行了评价。方法和方法论。利用统计分析方法,通过一系列的解析计算,考察了噪声对仰角测量精度的影响。每个接收通道中的噪声以加性、统计独立的平稳高斯过程建模,这些过程具有零平均值和等方差。通过对106个随机噪声实现的统计估计,对计算结果进行了验证。结果。建立了扇区宽度的正确条件,根据天线的空间间隔(基线)和频率比明确估计目标仰角。得到了仰角估计误差的表达式,表明误差主要是由模糊度区间数的确定错误造成的。根据信噪比和频率差,导出了正确确定模糊区间数的概率,表明只有当信噪比超过30 dB时,才有接近100%的正确确定模糊区间数的概率。在x波段频率相近、测量扇区相同的情况下,对双频干涉测向法和常规相位差测向法进行了比较分析。结论。只有当信噪比足够高(大于30 dB)时,频率相近的双频无线电干涉技术才能优于标准相位差测向方法。原则上,该技术的准确性似乎可以通过根据尺度协商条件选择显着不同的频率来提高。但是,需要指出的是,实际中相关算法的实现要比传统的单频率多天线基线方案复杂得多。
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ANALYSIS OF DUAL-FREQUENCY INTERFEROMETRY APPLICABILITY FOR TARGET ELEVATION ANGLE MEASUREMENT USING TWO-COORDINATE RADARS
Subject and Purpose. The study deals with the dual-frequency radio interferometry technique, which is based on the employment of two fairly close frequencies with the aim to remove ambiguity of the radar target elevation estimation using 2D-radar and eliminate 2 pm-uncertainty of the signal phase difference measurement. Analysis of random noise action on the accuracy of the elevation angle estimation by the dual-frequency radio interferometry and assessment of practical applicability of the method make up the purpose of the paper. Methods and Methodology. The noise action on the elevation angle measurement accuracy is examined through a series of an- alytical calculations with the use of statistical analysis methods. The noise in each receiving channel is modeled in terms of additive, statistically independent stationary Gaussian processes with zero mean values and equal variances. The calculation results are checked via computer simulations with statistics estimations for 106 random noise realizations. Results. A correct condition has been developed for the sector width where the target elevation angle is unambiguously estimated depending on the space separation of the antennas (baselines) and the frequency ratio. Expressions for elevation angle estimation errors have been obtained, showing that the error is mainly contributed by the faults in the determination of the ambiguity interval number. A probability of the correct determination of the ambiguity interval number has been derived depending on the signal- to-noise ratio and the frequency difference, indicating that almost one hundred per cent probability of the correct determination of the ambiguity interval number is only achieved when the signal-to-noise ratio exceeds 30 dB. A comparative analysis has been performed between the methods of dual-frequency interferometry and conventional phase-difference direction finding in the case of close X-band frequencies and the same sectors of survey. Conclusions. The dual-frequency radio interferometry technique with close frequencies has been shown to outperform the stand- ard phase-difference direction-finding method only when the signal-to-noise ratio is sufficiently high (over 30 dB). In principle, the accuracy of the technique seems possible to improve by taking significantly different frequencies selected with regard to the scale negotiation condition. However, it should be mentioned that the implementation of the relevant algorithm in practice is much more complicated than the conventional scheme with a single frequency and several antenna baselines.
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来源期刊
Radio Physics and Radio Astronomy
Radio Physics and Radio Astronomy Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
0.60
自引率
0.00%
发文量
18
审稿时长
8 weeks
期刊最新文献
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