DocumentCode :
1621355
Title :
A parallel and modular multi-sieving neural network architecture for constructive learning
Author :
Lu, B.-L. ; Ito, K. ; Kita, H. ; Nishikawa, Y.
Author_Institution :
Inst. of Phys. & Chem. Res., Saitama, Japan
fYear :
1995
Firstpage :
92
Lastpage :
97
Abstract :
Presents a parallel and modular multi-sieving neural network (PMSN) architecture for constructive learning. This PMSN architecture is different from existing constructive learning networks such as the cascade correlation architecture. The constructing element of the PMSNs is a compound modular network rather than a hidden unit. This compound modular network is called a sieving module (SM). In the PMSN, a complex learning task is decomposed into a set of relatively simple subtasks automatically. Each of these subtasks is solved by a corresponding individual SM and all of these SMs are processed in parallel
Keywords :
learning (artificial intelligence); neural net architecture; parallel architectures; complex learning task decomposition; compound modular network; constructive learning; parallel modular multi-sieving neural network architecture; sieving module;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Artificial Neural Networks, 1995., Fourth International Conference on
Conference_Location :
Cambridge
Print_ISBN :
0-85296-641-5
Type :
conf
DOI :
10.1049/cp:19950535
Filename :
497797
Link To Document :
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