Parameter Optimization Using GA in SVM to Predict Damage Level of Non-Reshaped Berm Breakwater

Author:

Harish N.1,Lokesha N.2,Mandal S.3,Rao Subba4,Patil S.G.5

Affiliation:

1. Assistant Professor, CET, Jain University, Jakksandra Post, Ramanagara District 562112, Karnataka, India

2. Reseach Scholar, Department of Ocean Engineering, Indian Institute of Technology Madras, Chennai, Tamil Nadu, 600036, INDIA

3. Chief Scientist, Ocean Engineering Division, National Institute of Oceanography, Dona Paula, 403004, Goa, India

4. Professor, Department of Applied Mechanics and Hydraulics, National Institute of Technology, Surathkal, Karnataka, 575025, India

5. Professor, Department of Built and Natural Environment, Caledonian College of Engineering, PO Box: 2322, CPO Seeb, PC 111, Sultanate of Oman

Abstract

In the present study, Support Vector Machines (SVM) and hybrid of Genetic Algorithm (GA) with SVM models are developed to predict the damage level of non-reshaped berm breakwaters. Optimal kernel parameters of SVM are determined by using GA algorithm. The models are trained and tested on the data set obtained from the experiments which were carried out at Marine Structures Laboratory, Department of Applied Mechanics and Hydraulics, National Institute of Technology Karnataka, Surathkal, India. The results of SVM and GA-SVM models are compared in terms of statistical measures like correlation coefficient, root mean square error and scatter index. The results on SVM and GA-SVM models reveals that the performance of GA-SVM is better compared to SVM models in predicting the damage level of non-reshaped berm breakwater.

Publisher

SAGE Publications

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