Publication | Closed Access
Optimising Neural Networks for Identification of Wood Defects Using the Bees Algorithm
119
Citations
5
References
2006
Year
Unknown Venue
EngineeringMachine LearningRandom SearchBees AlgorithmMemetic AlgorithmImage AnalysisNeighbourhood SearchData SciencePattern RecognitionGenetic AlgorithmWood DefectsFirefly AlgorithmIntelligent OptimizationComputer ScienceNeural NetworksArtificial BeeAutomated InspectionWood Defect DetectionClassifier SystemLearning Classifier System
This paper presents an application of the bees algorithm (BA) to the optimisation of neural networks for wood defect detection. This novel population-based search algorithm mimics the natural foraging behaviour of swarms of bees. In its basic version, the algorithm performs a kind of neighbourhood search combined with random search. Following a brief description of the algorithm, the paper gives the results obtained for the wood defect identification problem demonstrating the efficiency and robustness of the new algorithm.
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