A modified weighted chimp optimization algorithm for training feed-forward neural network

被引:3
|
作者
Atta, Eman A. [1 ]
Ali, Ahmed F. [2 ]
Elshamy, Ahmed A. [1 ]
机构
[1] Suez Canal Univ, Fac Sci, Dept Math, Ismailia, Egypt
[2] Suez Canal Univ, Fac Comp & Informat, Ismailia, Egypt
来源
PLOS ONE | 2023年 / 18卷 / 03期
关键词
PARTICLE SWARM OPTIMIZATION; CLASSIFICATION; INTERFERENCE; DIAGNOSIS; DESIGN; NUMBER;
D O I
10.1371/journal.pone.0282514
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Swarm intelligence algorithms (SI) have an excellent ability to search for the optimal solution and they are applying two mechanisms during the search. The first mechanism is exploration, to explore a vast area in the search space, and when they found a promising area they switch from the exploration to the exploitation mechanism. A good SI algorithm can balance the exploration and the exploitation mechanism. In this paper, we propose a modified version of the chimp optimization algorithm (ChOA) to train a feed-forward neural network (FNN). The proposed algorithm is called a modified weighted chimp optimization algorithm (MWChOA). The main drawback of the standard ChOA and the weighted chimp optimization algorithm (WChOA) is they can be trapped in local optima because most of the solutions update their positions based on the position of the four leader solutions in the population. In the proposed algorithm, we reduced the number of leader solutions from four to three, and we found that reducing the number of leader solutions enhances the search and increases the exploration phase in the proposed algorithm, and avoids trapping in local optima. We test the proposed algorithm on the Eleven dataset and compare it against 16 SI algorithms. The results show that the proposed algorithm can achieve success to train the FNN when compare to the other SI algorithms.
引用
收藏
页数:38
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