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Support vector machines with evolutionary interval neural networks for granular feature transformation in making effective biomedical data classification | IEEE Conference Publication | IEEE Xplore

Support vector machines with evolutionary interval neural networks for granular feature transformation in making effective biomedical data classification


Abstract:

In this paper, we use new evolutionary interval neural networks to do granular feature transformation based on granular computing, neural computing and evolutionary compu...Show More

Abstract:

In this paper, we use new evolutionary interval neural networks to do granular feature transformation based on granular computing, neural computing and evolutionary computation to alleviate kernel's burden in support vector machines (SVMs) and help SVMs learn knowledge effectively. Simulation results for three different medical data sets show that SVMs using the evolutionary interval neural networks are more effective than the traditional SVMs in terms of testing accuracy.
Date of Conference: 25-27 July 2005
Date Added to IEEE Xplore: 05 December 2005
Print ISBN:0-7803-9017-2
Conference Location: Beijing, China

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