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Blind Source Separationfor Two-dimension Spread Spectrum system Based On Trilinear Decomposition

机译:基于三线性分解的二维扩频系统盲源分离

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This paper links the two-dimension-spread-spectrum-system source separation problem to the trilinear model, which is an analysis tool rooted in psychometrics and chemomet-rics. Exploiting this link, it derives a blind source separation algorithm. The proposed algorithm capitalizes on time-domain spread, frequency-domain spread and temporal diversity-combining. The simulation results reveal that the performance of the blind source separation algorithm for two-dimension spread spectrum system is very close to nonblind minimum mean-squared error method, and this algorithm works well for small sample size. The blind source separation algorithm does not require channel fading information and spread codes, so it has blind and robust characteristics.
机译:本文将二维扩展频谱系统的源分离问题与三线性模型联系起来,该模型是一种基于心理计量学和化学计量学的分析工具。利用此链接,可以得出盲源分离算法。该算法利用了时域扩展,频域扩展和时间分集组合的优势。仿真结果表明,二维扩频系统中盲源分离算法的性能与非盲最小均方误差方法非常接近,对于小样本量,该算法效果很好。盲源分离算法不需要信道衰落信息和扩频码,因此具有盲和鲁棒性。

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