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An automatic fast optimization of Quadratic Time-frequency Distribution using the hybrid genetic algorithm

机译:基于混合遗传算法的二次时频分布自动快速优化

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This paper presents a novel framework for a fully automatic optimization of Quadratic Time-frequency Distributions (QTFDs). This 'black box' approach automatically adjusts the QTFD kernel parameters by using a hybrid genetic algorithm (HGA). This results in an optimal use of QTFDs suitable for non-specialist users without requiring any additional input except for the signal itself. This optimization problem has been formulated as the minimization of the cost function of a modified energy concentration measure. The efficiency of the proposed method has been demonstrated by representing selected non-stationary signals in the time-frequency domain and testing robustness under different SNR conditions by estimating the instantaneous frequency. A fast implementation of QTFD optimization reduces computation time significantly; e.g., the computation time of a real world bat signal of 400 samples reduces to 3.5885 ± 0.3942 s from its standard implementation (53.0910 ± 1.445 s).
机译:本文提出了一种新颖的框架,可以对二次时频分布(QTFD)进行全自动优化。这种“黑匣子”方法通过使用混合遗传算法(HGA)自动调整QTFD内核参数。这导致适合非专业用户的QTFD的最佳使用,除了信号本身之外,不需要任何其他输入。该优化问题已被表述为修改后的能量集中度量的成本函数的最小化。通过在时频域中表示选定的非平稳信号并通过估计瞬时频率来测试不同SNR条件下的鲁棒性,证明了该方法的效率。快速实施QTFD优化可显着减少计算时间。例如,现实世界中有400个采样的蝙蝠信号的计算时间从其标准实现(53.0910±1.445 s)减少到3.5885±0.3942 s。

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