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Regularization networks: Fast weight calculation via Kalman filtering

Academic Article
Publication Date:
2001
abstract:
Regularization networks are nonparametric estimators obtained from the application of Tychonov regularization or Bayes estimation to the hypersurface reconstruction problem. Their main drawback is that the computation of the weights scales as O(n^3) where n is the number of data. In this paper we show that for a class of monodimensional problems, the complexity can be reduced to O(n) by a suitable algorithm based on spectral factorization and Kalman filtering. Moreover, the procedure applies also to smoothing splines.
Iris type:
1.1 Articolo in rivista
Keywords:
Statistical Learning; Regression; Tychonov regularization; Kalman filtering
List of contributors:
DE NICOLAO, Giuseppe; FERRARI TRECATE, Giancarlo
Authors of the University:
DE NICOLAO GIUSEPPE
FERRARI TRECATE GIANCARLO
Handle:
https://iris.unipv.it/handle/11571/107875
Published in:
IEEE TRANSACTIONS ON NEURAL NETWORKS
Journal
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