DocumentCode :
3520595
Title :
Causal back propagation through time for locally recurrent neural networks
Author :
Campolucci, Paolo ; Uncini, Aurelio ; Piazza, Francesco
Author_Institution :
Dipartimento di Elettronica e Autom., Ancona Univ., Italy
Volume :
3
fYear :
1996
fDate :
12-15 May 1996
Firstpage :
531
Abstract :
This paper concerns dynamic neural networks for signal processing: architectural issues are considered but the paper focuses on learning algorithms that work on-line. Locally recurrent neural networks, namely MLP with IIR synapses and generalization of Local Feedback Multi-Layered Networks (LF MLN), are compared to more traditional neural networks, i.e. static MLP with input and/or output buffer (TDNN), FIR MLP and fully recurrent neural networks: simulations results are provided to compare locally recurrent neural networks with TDNN and FIR MLP. Moreover, we propose a new learning algorithm, based on the Back Propagation Through Time and called Causal Back Propagation Through Time (CBPTT), that is faster and more stable than the algorithm previously used for IIR MLP. The algorithm that we propose includes as particular cases the following algorithms: Wan´s Temporal Back Propagation, Back Propagation for Sequences (BPS) and Back-Tsoi algorithm
Keywords :
backpropagation; recurrent neural nets; Back-Tsoi algorithm; IIR synapses; back propagation for sequences; causal backpropagation through time; dynamic neural networks; learning algorithms; local feedback multi-layered networks; locally recurrent neural networks; signal processing; temporal back propagation; Backpropagation algorithms; Digital signal processing; Finite impulse response filter; Neural networks; Neurofeedback; Neurons; Output feedback; Recurrent neural networks; Signal processing algorithms; System identification;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Circuits and Systems, 1996. ISCAS '96., Connecting the World., 1996 IEEE International Symposium on
Conference_Location :
Atlanta, GA
Print_ISBN :
0-7803-3073-0
Type :
conf
DOI :
10.1109/ISCAS.1996.541650
Filename :
541650
Link To Document :
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