Electronic Systems Research Division, National Chung-Shang Institute of Technology, Taoyuan City 335, Taiwan.
College of Electrical and Computer Engineering, National Yang-Ming-Chiao-Tung University, Hsinchu City 300, Taiwan.
Sensors (Basel). 2023 Feb 13;23(4):2094. doi: 10.3390/s23042094.
Frequency hopping spread spectrum (FHSS) applies widely to communication and radar systems to ensure communication information and channel signal quality by tuning frequency within a wide frequency range in a random sequence. An efficient signal processing scheme to resolve the timing and duration signature from an FHSS signal provides crucial information for signal detection and radio band management purposes. In this research, hopping time was first identified by a two-dimensional temporal correlation function (TCF). The timing information was shown at TCF phase discontinuities. To enhance and resolve the timing signature of TCF in a noisy environment, three stages of signature enhancement and morphological matching processes were applied: first, computing the TCF of the FHSS signal and enhancing discontinuities via wavelet transform; second, a dual-diagonal edge finding scheme to extract the timing pattern signature and eliminate mismatching distortion morphologically; finally, Hough transform resolved the agile frequency timing from purified line segments. A grand-scale Monte Carlo simulation of the FHSS signals with additive white Gaussian noise was carried out in the research. The results demonstrated reliable hopping time estimation obtained in SNR at 0 dB and above, with a minimal false detection rate of 1.79%, while the prior related research had an unattended false detection rate of up to 35.29% in such a noisy environment.
跳频扩频 (FHSS) 广泛应用于通信和雷达系统,通过在宽频范围内以随机序列调谐频率,确保通信信息和信道信号质量。一种有效的信号处理方案,可从 FHSS 信号中解析出定时和持续时间特征,为信号检测和无线电频段管理目的提供关键信息。在这项研究中,首先通过二维时频相关函数 (TCF) 确定跳频时间。定时信息显示在 TCF 相位不连续处。为了增强和解析噪声环境中的 TCF 定时特征,应用了三个阶段的特征增强和形态匹配过程:首先,计算 FHSS 信号的 TCF,并通过小波变换增强不连续性;其次,采用双对角线边缘发现方案提取定时模式特征,并在形态上消除不匹配失真;最后,霍夫变换从净化的线段中解析出灵活的频率定时。在研究中,对具有加性高斯白噪声的 FHSS 信号进行了大规模的蒙特卡罗模拟。结果表明,在 SNR 为 0dB 及以上时,可以可靠地估计跳频时间,误检率最小为 1.79%,而之前的相关研究在这种噪声环境下的误检率高达 35.29%。