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ELM in nonstationary environment

ELM in nonstationary environment

von Francesco Piazza, Stefano Squartini und Yibin Ye
Softcover - 9783659248900
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Beschreibung

System identification in nonstationary environment represents a challenging problem and an advaned neural architecture namely Time-Varying Neural Net- works (TV-NN) has shown remarkable identification properties in nonlinear and nonstationary conditions. Time-varying weights, each being a linear com- bination of a certain set of basis functions, are used in such kind of networks instead of stable ones, which inevitalbly increases the number of free parame- ters. Therefore, an Extreme Learning Machine (ELM) approach is developed to accelerate the training procedure for TV-NN. What is more, in order to ob- tain a more compact structure, or determine several important parameters, or update the network more efficiently in online case, several variants of ELM-TV are proposed and discussed in the book. Related computer simulations have been carried out and show the effectiveness of the algorithms.

Extreme Learning Machine and its variants for Time-Varying Neural Networks case study

Details

Verlag LAP LAMBERT Academic Publishing
Ersterscheinung 09. November 2012
Maße 22 cm x 15 cm x 0.6 cm
Gewicht 149 Gramm
Format Softcover
ISBN-13 9783659248900
Seiten 88