Global Artificial Bee Colony-Levenberq-Marquardt (GABC-LM) Algorithm for Classification

Author:

Shah Habib1,Ghazali Rozaida1,Nawi Nazri Mohd1,Deris Mustafa Mat1,Herawan Tutut2

Affiliation:

1. Faculty of Computer Science and Information Technology, Universiti Tun Hussein Onn Malaysia (UTHM), Parit Raja, Johor, Malaysia

2. Department of Mathematics Education, Universitas Ahmad Dahlan, Yogyakarta, Indonesia

Abstract

The performance of Neural Networks (NN) depends on network structure, activation function and suitable weight values. For finding optimal weight values, freshly, computer scientists show the interest in the study of social insect’s behavior learning algorithms. Chief among these are, Ant Colony Optimzation (ACO), Artificial Bee Colony (ABC) algorithm, Hybrid Ant Bee Colony (HABC) algorithm and Global Artificial Bee Colony Algorithm train Multilayer Perceptron (MLP). This paper investigates the new hybrid technique called Global Artificial Bee Colony-Levenberq-Marquardt (GABC-LM) algorithm. One of the crucial problems with the BP algorithm is that it can sometimes yield the networks with suboptimal weights because of the presence of many local optima in the solution space. To overcome GABC-LM algorithm used in this work to train MLP for the boolean function classification task, the performance of GABC-LM is benchmarked against MLP training with the typical LM, PSO, ABC and GABC. The experimental result shows that GABC-LM performs better than that standard BP, ABC, PSO and GABC for the classification task.

Publisher

IGI Global

Subject

General Earth and Planetary Sciences,General Environmental Science

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Expert System for Classification of Nutrition in Young Children;2022 International Symposium on Multidisciplinary Studies and Innovative Technologies (ISMSIT);2022-10-20

2. Chebyshev Multilayer Perceptron Neural Network with Levenberg Marquardt-Back Propagation Learning for Classification Tasks;Advances in Intelligent Systems and Computing;2016-12-29

3. Artificial Bee Colony Optimization;Swarm Intelligence;2015-11-12

4. Hybrid Guided Artificial Bee Colony Algorithm for Earthquake Time Series Data Prediction;Communications in Computer and Information Science;2014

5. Honey Bees Inspired Learning Algorithm: Nature Intelligence Can Predict Natural Disaster;Advances in Intelligent Systems and Computing;2014

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