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首页> 外文期刊>IEEE Transactions on Signal Processing >Blind digital signal separation using successive interference cancellation iterative least squares
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Blind digital signal separation using successive interference cancellation iterative least squares

机译:使用连续干扰消除迭代最小二乘法进行盲数字信号分离

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摘要

Blind separation of instantaneous linear mixtures of digital signals is a basic problem in communications. When little or nothing can be assumed about the mixing matrix, signal separation may be achieved by exploiting structural properties of the transmitted signals, e.g., finite alphabet or coding constraints. We propose a monotonically convergent and computationally efficient iterative least squares (ILS) blind separation algorithm based on an optimal scaling lemma. The signal estimation step of the proposed algorithm is reminiscent of successive interference cancellation (SIC) ideas. For well-conditioned data and moderate SNR, the proposed SIC-ILS algorithm provides a better performance/complexity tradeoff than competing ILS algorithms. Coupled with blind algebraic digital signal separation methods, SIC-ILS offers a computationally inexpensive true least squares refinement option. We also point out that a widely used ILS finite alphabet blind separation algorithm can exhibit limit cycle behavior.
机译:数字信号的瞬时线性混合的盲分离是通信中的一个基本问题。当关于混合矩阵的假设几乎为零或什么都不假设时,可以通过利用发射信号的结构特性(例如,有限字母或编码约束)来实现信号分离。我们提出了一种基于最优缩放引理的单调收敛且计算效率高的迭代最小二乘(ILS)盲分离算法。所提出算法的信号估计步骤让人想起连续干扰消除(SIC)的想法。对于条件良好的数据和适度的SNR,与竞争的ILS算法相比,所提出的SIC-ILS算法提供了更好的性能/复杂度折衷。结合盲代数数字信号分离方法,SIC-ILS提供了计算成本低廉的真正最小二乘法改进选项。我们还指出,广泛使用的ILS有限字母盲分离算法可以表现出极限循环行为。

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