Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA
A novel method is proposed to establish the pancreatic cancer classifier. Firstly, the concept of quantum and fruit fly optimal algorithm (FOA) are introduced, respectively. Then FOA is improved by quantum coding and quantum operation, and a new smell concentration determination function is defined....
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Hindawi Limited
2015-01-01
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Series: | BioMed Research International |
Online Access: | http://dx.doi.org/10.1155/2015/781023 |
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doaj-6cfaa43f241c4a49a27ad8d01780354e2020-11-25T00:59:07ZengHindawi LimitedBioMed Research International2314-61332314-61412015-01-01201510.1155/2015/781023781023Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOAHuiyan Jiang0Di Zhao1Ruiping Zheng2Xiaoqi Ma3Software College, Northeastern University, Shenyang 110819, ChinaSoftware College, Northeastern University, Shenyang 110819, ChinaSoftware College, Northeastern University, Shenyang 110819, ChinaSchool of Science and Technology, Nottingham Trent University, Nottingham NG17 8NU, UKA novel method is proposed to establish the pancreatic cancer classifier. Firstly, the concept of quantum and fruit fly optimal algorithm (FOA) are introduced, respectively. Then FOA is improved by quantum coding and quantum operation, and a new smell concentration determination function is defined. Finally, the improved FOA is used to optimize the parameters of support vector machine (SVM) and the classifier is established by optimized SVM. In order to verify the effectiveness of the proposed method, SVM and other classification methods have been chosen as the comparing methods. The experimental results show that the proposed method can improve the classifier performance and cost less time.http://dx.doi.org/10.1155/2015/781023 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Huiyan Jiang Di Zhao Ruiping Zheng Xiaoqi Ma |
spellingShingle |
Huiyan Jiang Di Zhao Ruiping Zheng Xiaoqi Ma Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA BioMed Research International |
author_facet |
Huiyan Jiang Di Zhao Ruiping Zheng Xiaoqi Ma |
author_sort |
Huiyan Jiang |
title |
Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA |
title_short |
Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA |
title_full |
Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA |
title_fullStr |
Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA |
title_full_unstemmed |
Construction of Pancreatic Cancer Classifier Based on SVM Optimized by Improved FOA |
title_sort |
construction of pancreatic cancer classifier based on svm optimized by improved foa |
publisher |
Hindawi Limited |
series |
BioMed Research International |
issn |
2314-6133 2314-6141 |
publishDate |
2015-01-01 |
description |
A novel method is proposed to establish the pancreatic cancer classifier. Firstly, the concept of quantum and fruit fly optimal algorithm (FOA) are introduced, respectively. Then FOA is improved by quantum coding and quantum operation, and a new smell concentration determination function is defined. Finally, the improved FOA is used to optimize the parameters of support vector machine (SVM) and the classifier is established by optimized SVM. In order to verify the effectiveness of the proposed method, SVM and other classification methods have been chosen as the comparing methods. The experimental results show that the proposed method can improve the classifier performance and cost less time. |
url |
http://dx.doi.org/10.1155/2015/781023 |
work_keys_str_mv |
AT huiyanjiang constructionofpancreaticcancerclassifierbasedonsvmoptimizedbyimprovedfoa AT dizhao constructionofpancreaticcancerclassifierbasedonsvmoptimizedbyimprovedfoa AT ruipingzheng constructionofpancreaticcancerclassifierbasedonsvmoptimizedbyimprovedfoa AT xiaoqima constructionofpancreaticcancerclassifierbasedonsvmoptimizedbyimprovedfoa |
_version_ |
1725218782319738880 |