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Blind equalization of single-input single-output fir channels for chaotic communication systems

机译:混沌通信系统单输入单输出冷杉通道的盲均衡

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摘要

Recently we have developed a simplified recursive adaptive blind channel equalization method for Single-Input Single-Output (SISO) chaotic communication systems. Even though the simplified recursive algorithm gives superior results compared to the state of the art chaotic blind channel equalization algorithms, it has a very important limitation: convergence of the adaptive algorithm is ensured for only Strictly Positive Real (SPR) channels. In this study, we propose a non-recursive chaotic blind channel equalization algorithm that works regardless of whether the channel is SPR or not. First, a statistically optimum fixed filter is designed assuming that the channel is known. Then, it is shown via computer simulations that its performance is very close to that of the statistically optimum fixed filter. Furthermore, it gives better results especially for non-SPR channels compared to the well-known minimum nonlinear prediction error method and the simplified recursive algorithm developed in our previous work. The method is computationally simple and does not impose any restrictions on the channel other than being a finite impulse response filter. Since the instantaneous gradient is used to derive the adaptive algorithm, the proposed method works for slowly and smoothly varying linear channels as well.
机译:最近,我们为单输入单输出(SISO)混沌通信系统开发了一种简化的递归自适应盲信道均衡方法。尽管与现有技术的混沌盲信道均衡算法相比,简化的递归算法可以提供更好的结果,但它也具有非常重要的局限性:仅对严格正实数(SPR)信道才能确保自适应算法的收敛性。在这项研究中,我们提出了一种非递归混沌盲信道均衡算法,无论该信道是否为SPR,该算法均有效。首先,假设信道是已知的,则设计统计上最佳的固定滤波器。然后,通过计算机仿真显示,其性能非常接近统计上最佳的固定滤波器。此外,与众所周知的最小非线性预测误差方法和我们先前工作中开发的简化递归算法相比,它对非SPR通道提供了更好的结果。该方法计算简单,除了是有限的脉冲响应滤波器外,不对信道施加任何限制。由于使用瞬时梯度来导出自适应算法,因此所提出的方法也适用于缓慢且平滑变化的线性通道。

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