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Error Minimized Extreme Learning Machine With Growth of Hidden Nodes and Incremental Learning

IEEE Transactions on Neural Networks · 2009 · Vol. 20(8) · pp. 1352–1357
Guorui FengGuang-Bin HuangQingping LinRobert Gay

Abstract

One of the open problems in neural network research is how to automatically determine network architectures for given applications. In this brief, we propose a simple and efficient approach to automatically determine the number of hidden nodes in generalized single-hidden-layer feedforward networks (SLFNs) which need not be neural alike. This approach referred to as error minimized extreme learning machine (EM-ELM) can add random hidden nodes to SLFNs one by one or group by group (with varying group size). During the growth of the networks, the output weights are updated incrementally. The convergence of this approach is proved in this brief as well. Simulation results demonstrate and verify that our new approach is much faster than other sequential/incremental/growing algorithms with good generalization performance.

Machine Learning and ELMAdvanced Memory and Neural ComputingNeural Networks and ApplicationsExtreme learning machineComputer scienceGeneralizationArtificial neural networkArtificial intelligenceConvergence (economics)Feedforward neural networkMachine learningGeneralization errorFeed forward

MeSH terms

AlgorithmsArtificial IntelligenceClassificationComputer SimulationLearningSynaptic TransmissionNeuronsPattern Recognition, AutomatedRegression AnalysisTime FactorsDatabases, FactualNeural Networks, Computer
Citations
652
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40.82
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25
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