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   Blind source separation based on joint diagonalization in R: the packages JADE and BSSasymp  
   
نویسنده miettinen j. ,nordhausen k. ,taskinen s.
منبع journal of statistical software - 2017 - دوره : 76 - شماره : 1
چکیده    Blind source separation (bss) is a well-known signal processing tool which is used to solve practical data analysis problems in various fields of science. in bss,we assume that the observed data consists of linear mixtures of latent variables. the mixing system and the distributions of the latent variables are unknown. the aim is to find an estimate of an unmixing matrix which then transforms the observed data back to latent sources. in this paper we present the r packages jade and bssasymp. the package jade offers several bss methods which are based on joint diagonalization. package bssasymp contains functions for computing the asymptotic covariance matrices as well as their data-based estimates for most of the bss estimators included in package jade. several simulated and real datasets are used to illustrate the functions in these two packages. © 2017 american statistical association. all rights reserved.
کلیدواژه Independent component analysis; Multivariate time series; Nonstationary source separation; Performance indices; Second order source separation
آدرس department of mathematics and statistics,university of jyvaskyla40014, Finland, department of mathematics and statistics,university of turku20014, Finland, department of mathematics and statistics,university of jyvaskyla40014, Finland
 
     
   
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