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New neural network algorithms for nonlinear active noise cancellation with nonlinear secondary path

机译:具有非线性次级路径的非线性主动噪声消除的新神经网络算法

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In this paper, a feedforward nonlinear active noise cancellation (NANC) system employing a neural network (NN) based filtered-X least mean square algorithm is developed. NN-NANC with linear secondary path (LSP) and nonlinear secondary path (NSP) are unified using virtual secondary path concept. The developed NN-NANC system is also extended to incorporate filtered-E based algorithm which results in reduced computational algorithm. Performance of the proposed algorithms is validated through computer simulations.
机译:本文开发了一种前馈非线性主动噪声消除(NANC)系统,该系统采用基于神经网络(NN)的滤波X最小均方算法。使用虚拟辅助路径概念将具有线性辅助路径(LSP)和非线性辅助路径(NSP)的NN-NANC进行了统一。所开发的NN-NANC系统也被扩展为包含基于filter-E的算法,从而减少了计算算法。通过计算机仿真验证了所提出算法的性能。

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