A Review on Ensemble of Diverse Artificial Neural Networks  

Abstract

Ensemble Data Mining Methods, also known as Committee Methods or Model Combiners, which provides the power of multiple classifiers to achieve better prediction accuracy than any of the individual classifier could on their own. The diversity among the members of ensemble is used to determining its generalization error. The empirical results reveal that the performance of an ensemble is related to the diversity among individual learners in the ensemble and more diversity might be used to obtain better performance. Artificial Neural networks(ANN) are very flexible with respect to incomplete, missing and noisy data and also makes the data to use for dynamic environment. ANN is dependent on how best is the configuration of the net in terms of number of weights, neurons and layers. Diversity in an ensemble of neural networks can be handled by manipulating either input data or output data. 

Authors and Affiliations

Mittal C. Patel , Prof. Mahesh Panchal

Keywords

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  • EP ID EP93601
  • DOI -
  • Views 153
  • Downloads 0

How To Cite

Mittal C. Patel, Prof. Mahesh Panchal (2012). A Review on Ensemble of Diverse Artificial Neural Networks  . International Journal of Advanced Research in Computer Engineering & Technology(IJARCET), 1(10), 63-70. https://europub.co.uk/articles/-A-93601