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Adaptive Newton algorithms for blind equalization using the generalized constant modulus criterion

机译:广义牛顿系数准则的牛顿自适应牛顿算法

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Two Newton-type algorithms using the generalized complex modulus (GCM) criterion for blind equalization and carrier phase recovery are proposed. First the partial Hessian and full Hessian of the real GCM loss function with complex valued arguments are calculated by second-order differential. Then an adaptive pseudo Newton learning algorithm and a full Newton learning algorithm are designed. By using the matrix inversion lemma, both Newton algorithms can be implemented with a computational complexity of O(L
机译:提出了两种基于广义复数模量(GCM)准则的牛顿型算法,用于盲均衡和载波相位恢复。首先,通过二阶微分来计算具有复杂值自变量的实际GCM损失函数的部分Hessian和完整Hessian。然后设计了一个自适应伪牛顿学习算法和一个完整的牛顿学习算法。通过使用矩阵求逆引理,两种牛顿算法都可以用O(L

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