Elephant herding optimization technique based neural network for cancer prediction
Cancer is a kind of uncontrolled growth of abnormal cells in any part of the body. It can be of many types. Early prognosis of cancer is the only way to treat it in a better way for researchers. It is very important to classify cancer in high or low risk group and that can be done by applying differ...
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doaj-0d6ea7f7aaef4dc98d89808f667ee3f22020-12-17T04:49:57ZengElsevierInformatics in Medicine Unlocked2352-91482020-01-0121100445Elephant herding optimization technique based neural network for cancer predictionMonalisa Nayak0Soumya Das1Urmila Bhanja2Manas Ranjan Senapati3Department of Electronics and Telecommunication Engineering, Indira Gandhi Institute of Technology, Sarang, IndiaDepartment of Computer Science Engineering, Government College of Engineering, Kalahandi, India; Corresponding author.Department of Electronics and Telecommunication Engineering, Indira Gandhi Institute of Technology, Sarang, IndiaDepartment of Information Technology, Veer Surendra Sai University of Technology, Burla, IndiaCancer is a kind of uncontrolled growth of abnormal cells in any part of the body. It can be of many types. Early prognosis of cancer is the only way to treat it in a better way for researchers. It is very important to classify cancer in high or low risk group and that can be done by applying different machine learning techniques. In this study, a nature-based machine learning technique is developed named as Elephant Herding Optimization algorithm (EHO) which is validated using some cancer datasets like lung cancer, breast cancer, and cervical cancer. Here, the feature selection algorithm like ANOVA and Kruskal-Wallis tests are used where the relevant number of features are selected. The performance of EHO is evaluated using Root Mean Square Error (RMSE) and Correct Classification Rate (CCR) with and without feature selection. The RMSE value of the EHO algorithm is compared with Local Linear Wavelet Neural Network (LLWNN) and Particle Swarm Optimization (PSO). EHO shows 0.9837 CCR in the breast cancer dataset, 0.9671 CCR in the cervical cancer dataset, and 0.8821 CCR in the lung cancer dataset using ANOVA test i.e. the best result in comparison to other optimization algorithms. According to the tables it is clear that classification techniques takes more time without feature selection techniques but less time with feature selection techniques.http://www.sciencedirect.com/science/article/pii/S2352914820305955Local Linear Wavelet Neural Network (LLWNN)Elephant Herding Optimization (EHO)Artificial Neural Network (ANN)Particle Swarm Optimization (PSO)ANOVA |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Monalisa Nayak Soumya Das Urmila Bhanja Manas Ranjan Senapati |
spellingShingle |
Monalisa Nayak Soumya Das Urmila Bhanja Manas Ranjan Senapati Elephant herding optimization technique based neural network for cancer prediction Informatics in Medicine Unlocked Local Linear Wavelet Neural Network (LLWNN) Elephant Herding Optimization (EHO) Artificial Neural Network (ANN) Particle Swarm Optimization (PSO) ANOVA |
author_facet |
Monalisa Nayak Soumya Das Urmila Bhanja Manas Ranjan Senapati |
author_sort |
Monalisa Nayak |
title |
Elephant herding optimization technique based neural network for cancer prediction |
title_short |
Elephant herding optimization technique based neural network for cancer prediction |
title_full |
Elephant herding optimization technique based neural network for cancer prediction |
title_fullStr |
Elephant herding optimization technique based neural network for cancer prediction |
title_full_unstemmed |
Elephant herding optimization technique based neural network for cancer prediction |
title_sort |
elephant herding optimization technique based neural network for cancer prediction |
publisher |
Elsevier |
series |
Informatics in Medicine Unlocked |
issn |
2352-9148 |
publishDate |
2020-01-01 |
description |
Cancer is a kind of uncontrolled growth of abnormal cells in any part of the body. It can be of many types. Early prognosis of cancer is the only way to treat it in a better way for researchers. It is very important to classify cancer in high or low risk group and that can be done by applying different machine learning techniques. In this study, a nature-based machine learning technique is developed named as Elephant Herding Optimization algorithm (EHO) which is validated using some cancer datasets like lung cancer, breast cancer, and cervical cancer. Here, the feature selection algorithm like ANOVA and Kruskal-Wallis tests are used where the relevant number of features are selected. The performance of EHO is evaluated using Root Mean Square Error (RMSE) and Correct Classification Rate (CCR) with and without feature selection. The RMSE value of the EHO algorithm is compared with Local Linear Wavelet Neural Network (LLWNN) and Particle Swarm Optimization (PSO). EHO shows 0.9837 CCR in the breast cancer dataset, 0.9671 CCR in the cervical cancer dataset, and 0.8821 CCR in the lung cancer dataset using ANOVA test i.e. the best result in comparison to other optimization algorithms. According to the tables it is clear that classification techniques takes more time without feature selection techniques but less time with feature selection techniques. |
topic |
Local Linear Wavelet Neural Network (LLWNN) Elephant Herding Optimization (EHO) Artificial Neural Network (ANN) Particle Swarm Optimization (PSO) ANOVA |
url |
http://www.sciencedirect.com/science/article/pii/S2352914820305955 |
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