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Gradient-based joint block diagonalization algorithms: Application to blind separation of FIR convolutive mixtures

机译:基于梯度的联合块对角化算法:在FIR卷积混合物的盲分离中的应用

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This article addresses the problem of the non-unitary joint block diagonalization of a given set of complex matrices. Two new algorithms are provided: the first is based on a classical gradient approach and the second is based on a relative gradient approach. For each algorithm, two versions are provided: the fixed stepsize and the optimal stepsize version. Computer simulations are provided to illustrate the behavior of both algorithms in different contexts. Finally, it is shown that these algorithms enable solving the problem of the blind separation of finite impulse response (FIR) convolutive mixtures of (non-stationary correlated) sources. We focus on methods based on the use of spatial quadratic time-frequency spectra or distributions. The suggested approach main advantage is to enable the elimination of the spatial whitening of the observations which has been proven to establish a bound with regard to the best reachable performances in the blind sources separation context.
机译:本文解决了给定一组复杂矩阵的非non联合块对角化的问题。提供了两种新算法:第一种基于经典梯度方法,第二种基于相对梯度方法。对于每种算法,提供了两个版本:固定步长和最佳步长版本。提供计算机仿真来说明两种算法在不同上下文中的行为。最后,证明了这些算法能够解决(非平稳相关)源的有限脉冲响应(FIR)卷积混合物的盲分离问题。我们专注于基于使用空间二次时频频谱或分布的方法。所建议的方法的主要优点是能够消除观测值的空间白化,事实证明,这种空间白化对于在盲源分离环境中最佳可达到的性能建立了界限。

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