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Deterministic Blind Separation of Sources Having Different Symbol Rates Using Tensor-Based Parallel Deflation

机译:使用基于张量的平行放气确定具有不同符号率的信号源的确定性盲分离

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In this work, we address the problem of blind separation of non-synchronous statistically independent sources from underdeter-mined mixtures. A deterministic tensor-based receiver exploiting symbol rate diversity by means of parallel deflation is proposed. By resorting to bank of samplers at each sensor output, a set of third-order tensors is built, each one associated with a different source symbol period. By applying multiple Canonical Decompositions (CanD) on these tensors, we can obtain parallel estimates of the related sources along with an estimate of the mixture matrix. Numerical results illustrate the bit-error-rate performance of the proposed approach for some system configurations.
机译:在这项工作中,我们解决了从不确定的混合物中盲目分离非同步统计独立来源的问题。提出了一种基于确定性的基于张量的接收器,通过并行放缩来利用符号率分集。通过在每个传感器输出端使用一组采样器,可以构建一组三阶张量,每个张量与一个不同的源符号周期相关联。通过在这些张量上应用多个规范分解(CanD),我们可以获得相关源的并行估计以及混合矩阵的估计。数值结果说明了该方法在某些系统配置中的误码率性能。

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