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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Time-Domain Joint Parameter Estimation of Chirp Signal Based on SVR
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Time-Domain Joint Parameter Estimation of Chirp Signal Based on SVR

机译:基于SVR的线性调频信号时域联合参数估计

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摘要

Parameter estimation of chirp signal, such as instantaneous frequency (IF), instantaneous frequency rate (IFR), and initial phase (IP), arises in many applications of signal processing. During the phase-based parameter estimation, a phase unwrapping process is needed to recover the phase information correctly and impact the estimation performance remarkably. Therefore, we introduce support vector regression (SVR) to predict the variation trend of instantaneous phase and unwrap phases efficiently. Even though with that being the case, errors still exist in phase unwrapping process because of its ambiguous phase characteristic. Furthermore, we propose an SVR-based joint estimation algorithm and make it immune to these error phases by means of setting the SVR's parameters properly. Our results show that, compared with the other three algorithms of chirp signal, not only does the proposed one maintain quality capabilities at low frequencies, but also improves accuracy at high frequencies and decreases the impact with the initial phase.
机译:线性调频信号的参数估计,例如瞬时频率(IF),瞬时频率速率(IFR)和初始相位(IP),出现在信号处理的许多应用中。在基于相位的参数估计过程中,需要进行相位展开过程以正确恢复相位信息并显着影响估计性能。因此,我们引入支持向量回归(SVR)来有效预测瞬时相位和展开相位的变化趋势。即使是这种情况,由于其模糊的相位特性,在相位展开过程中仍然存在错误。此外,我们提出了一种基于SVR的联合估计算法,并通过正确设置SVR的参数使其不受这些错误阶段的影响。我们的结果表明,与其他三种线性调频信号算法相比,所提出的一种算法不仅在低频下保持质量能力,而且在高频下提高了精度,并减少了对初始相位的影响。

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