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The application of hybrid artificial intelligence systems for forecasting

 

作者: Brian Lees,   Juan Corchado,  

 

期刊: AIP Conference Proceedings  (AIP Available online 1999)
卷期: Volume 465, issue 1  

页码: 259-267

 

ISSN:0094-243X

 

年代: 1999

 

DOI:10.1063/1.58249

 

出版商: AIP

 

数据来源: AIP

 

摘要:

The results to date are presented from an ongoing investigation, in which the aim is to combine the strengths of different artificial intelligence methods into a single problem solving system. The premise underlying this research is that a system which embodies several cooperating problem solving methods will be capable of achieving better performance than if only a single method were employed. The work has so far concentrated on the combination of case-based reasoning and artificial neural networks. The relative merits of artificial neural networks and case-based reasoning problem solving paradigms, and their combination are discussed. The integration of these two AI problem solving methods in a hybrid systems architecture, such that the neural network provides support for learning from past experience in the case-based reasoning cycle, is then presented. The approach has been applied to the task of forecasting the variation of physical parameters of the ocean. Results obtained so far from tests carried out in the dynamic oceanic environment are presented. ©1999 American Institute of Physics.

 

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