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An adaptive Volterra filtering algorithm with reduced parameters and kernels combination

机译:减少参数和核组合的自适应Volterra滤波算法

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A Volterra adaptive filter based on discrete cosine transform (DCT) and kernels combination is proposed. In accordance with the problem that the computational complexity of Volterra adaptive filtering algorithm increases by power series, the quadratic kernels are transformed into a diagonal matrix by DCT, so that the complexity of the filtering algorithm is reduced. In addition, the correlativity of the input signals is reduced, too. And the same order kernels of the Volterra filter are taken parallel combination by the mixing parameters, so the performance of the algorithm is significantly improved. Simulation results show that the proposed algorithm has faster convergence rate, lower steady-state error, better tracking capabilities and better noise robustness.
机译:提出了一种基于离散余弦变换(DCT)和核组合的Volterra自适应滤波器。针对Volterra自适应滤波算法的计算复杂度随幂级数增加的问题,通过DCT将二次核变换为对角矩阵,从而降低了滤波算法的复杂度。另外,输入信号的相关性也降低了。并且通过混合参数将Volterra滤波器的相同阶数的内核进行并行组合,从而显着提高了算法的性能。仿真结果表明,该算法具有更快的收敛速度,更低的稳态误差,更好的跟踪能力和更好的噪声鲁棒性。

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