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Robust chaotic parameter modulation based on hybrid extended Kalman filter and hidden Markov model detector

机译:基于混合扩展卡尔曼滤波器和隐马尔可夫模型检测器的鲁棒混沌参数调制

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An optimum demodulator for chaotic parameter modulation (CPM) is presented in this paper. A binary mapping model is used for time-varying bifurcation parameter of logistic map to increase the security of communication. Due to dynamic behavior of such a system, a combined extended Kalman filter (EKF) and hidden Markov model (HMM) is used as detector which provide time domain processing. EKF is used as a state vector estimator and HMM is used to assign the probability of each map and identify the most likely map to the active map. It will be shown that this approach provides up to 30 dB improvement on signal to noise ratio. This method reduced the complexity of EKF estimator and it is also independent of bifurcation parameter values. It is shown that proposed method is robust for various types of noise and bifurcation parameter values.
机译:本文提出了一种用于混沌参数调制(CPM)的最佳解调器。逻辑映射使用时变分叉参数采用二进制映射模型,以提高通信的安全性。由于这种系统的动态行为,组合的扩展卡尔曼滤波器(EKF)和隐马尔可夫模型(HMM)被用作提供时域处理的检测器。 EKF用作状态向量估计器,HMM用来分配每个图的概率,并标识最有可能的图到活动图。可以看出,这种方法可将信噪比提高多达30 dB。该方法降低了EKF估计器的复杂度,并且也与分叉参数值无关。结果表明,所提出的方法对于各种类型的噪声和分叉参数值均具有鲁棒性。

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