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Communication Dans Un Congrès Année : 2007

Tensor-Based Blind Channel Identification

Résumé

We propose a blind FIR channel identification method based on the parallel factor (Parafac) analysis of a 3rd-order tensor composed of the 4-th order output cumulants. Our algorithm is based on a single-step least squares (LS) minimization procedure instead of using classical three-step alternating least squares (ALS) methods. Using a Parafac-based decomposition, we avoid any kind of pre-processing such as the prewhitening operation, which is mandatory in most methods using higher-order statistics. Our method retrieves the channel vector without any permutation or scaling ambiguities. In addition, we establish a link between the cumulant tensor decomposition and the joint-diagonalization approach. Computer simulations illustrate the performance gains that our method provides with respect to other classical solutions. Initialization and convergence issues are also addressed.
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Dates et versions

hal-00417625 , version 1 (16-09-2009)

Identifiants

Citer

Carlos Estêvão Rolim Fernandes, Gérard Favier, João C.M. Mota. Tensor-Based Blind Channel Identification. International Conference on Communications, (ICC '07), Jun 2007, Glasgow, United Kingdom. pp.2728-2732, ⟨10.1109/ICC.2007.453⟩. ⟨hal-00417625⟩
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