SDF技术的实现注意事项

Thanh T. Nguyen, J. Devlin, D. Elton, E. Custovic, B. Bienvenu
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引用次数: 0

摘要

塔斯曼国际地球空间环境雷达(TIGER)是一个名为超级双极光雷达网(SuperDARN)的类似高频雷达国际网络的一部分,该网络通过监测等离子体的位置和速度、等离子体不规则和电离层中发生的相关现象来探索太阳扰动对地球的影响。这些雷达利用自相关函数(ACF)来测量滞后时间之间ACF的相位变化,以确定多普勒频率,从而确定目标速度。随着全数字雷达平台TIGER-3的发展,提出了一种确定目标速度的新方法。在该方法中,通过比较发射和接收信号的幅值频谱来确定频谱差函数(SDF)。结果表明,在载波频率附近的SDF梯度与目标多普勒频移成正比。在本文中,我们考虑了硬件处理对该技术实施的限制,并提出了TIGER-3雷达的替代架构,该架构将允许大幅降低计算复杂性,以便与接收器的正常操作一起实时确定速度。该技术将处理从射频频段移动到低频中频频段,以减少快速傅里叶变换(FFT)的计算长度,而不影响技术的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implementation considerations for SDF technique
The Tasman International Geospace Environment Radars (TIGER) form part of an international network of similar HF radars called Super Dual Auroral Radar Network (SuperDARN) which explore the impact of solar disturbances on Earth by monitoring the location and velocity of plasma of plasma irregularities and related phenomena occurring in the ionosphere. These radars utilise an Auto Correlation Function (ACF) to measure the changing phase of the ACF between lag times to determine the Doppler frequency and thus the target velocity. With the development of TIGER-3, an all digital radar platform, a novel method of determining target velocities has been proposed. In the proposed method, a comparison of the transmit and receive signal magnitude spectrums is performed to determine the Spectrum Difference Function (SDF). It has been shown that the gradient of SDF in the vicinity of the carrier frequency is proportional to the target Doppler shift. In this paper we consider the constraints of hardware processing on the implementation of the technique and suggest an alternate architecture for the TIGER-3 radar that will allow a dramatic reduction in computational complexity to allow the real-time determination of velocity in conjunction with the normal operation of the receivers. The proposed technique moves the processing from the RF frequency band to a low frequency IF band to reduce the computational length of the Fast Fourier transform (FFT) without compromising the validity of the technique.
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