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Multi-user PDF estimation based criteria for adaptive blind separation of discrete sources

机译:基于多用户PDF估计的离散源自适应盲分离准则

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This paper deals with criteria for adaptive blind separation of discrete sources. The criteria are based on the estimation of the probability density function (pdf) of the recovered signal using a parametric model and the divergence of Kullback-Leibler to measure the similarities between the involved signals. Two strategies that guarantee the recovering of all sources are employed: the first one introduces a penalty when the sources are correlated and the second one constrains the filtering to an orthogonal global system response. Simulations are carried out to evaluate the performance of the criteria compared with existing blind methods in typical multi-user environments such as spatial and space-time processing. (c) 2005 Elsevier B.V. All rights reserved.
机译:本文讨论了离散源自适应盲分离的标准。该标准基于使用参数模型对恢复信号的概率密度函数(pdf)的估计以及Kullback-Leibler的散度来测量相关信号之间的相似性。采用了两种策略来保证所有源的恢复:第一种策略在源相关时引入惩罚,第二种将过滤约束为正交的全局系统响应。与典型的多用户环境(例如空间和时空处理)中的现有盲法相比,进行了仿真以评估标准的性能。 (c)2005 Elsevier B.V.保留所有权利。

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