An efficient hybrid multilayer perceptron neural network with grasshopper optimization

被引:1
|
作者
Ali Asghar Heidari
Hossam Faris
Ibrahim Aljarah
Seyedali Mirjalili
机构
[1] University of Tehran,School of Surveying and Geospatial Engineering
[2] The University of Jordan,Business Information Technology Department, King Abdullah II School for Information Technology
[3] Griffith University,Institute of Integrated and Intelligent Systems
来源
Soft Computing | 2019年 / 23卷
关键词
Optimization; Classification; Grasshopper Optimization Algorithm; Multilayer perceptron; Medical diagnosis;
D O I
暂无
中图分类号
学科分类号
摘要
This paper proposes a new hybrid stochastic training algorithm using the recently proposed grasshopper optimization algorithm (GOA) for multilayer perceptrons (MLPs) neural networks. The GOA algorithm is an emerging technique with a high potential in tackling optimization problems based on its flexible and adaptive searching mechanisms. It can demonstrate a satisfactory performance by escaping from local optima and balancing the exploration and exploitation trends. The proposed GOAMLP model is then applied to five important datasets: breast cancer, parkinson, diabetes, coronary heart disease, and orthopedic patients. The results are deeply validated in comparison with eight recent and well-regarded algorithms qualitatively and quantitatively. It is shown and proved that the proposed stochastic training algorithm GOAMLP is substantially beneficial in improving the classification rate of MLPs.
引用
收藏
页码:7941 / 7958
页数:17
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