Risk prediction of hypertension complications based on the intelligent algorithm optimized Bayesian network
Hypertension and its related complications could be a major threat issue for cardiopathy and stroke. Effective prevention and control can decrease the incidence rate of complications in hypertension. Based on the medical data of 3062 patients with cardiovascular and cerebrovascular diseases from 201...
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| Published in: | Journal of combinatorial optimization Vol. 42; no. 4; pp. 966 - 987 |
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| Main Authors: | , , , |
| Format: | Journal Article |
| Language: | English |
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New York
Springer US
01.11.2021
Springer Nature B.V |
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| ISSN: | 1382-6905, 1573-2886 |
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| Abstract | Hypertension and its related complications could be a major threat issue for cardiopathy and stroke. Effective prevention and control can decrease the incidence rate of complications in hypertension. Based on the medical data of 3062 patients with cardiovascular and cerebrovascular diseases from 2017 to 2018 in a grade-A tertiary hospital in Shanghai, the study identified the risk factors of hypertension complications by text mining. On this basis, the K2 algorithm based on the improved particle swarm optimization was proposed to optimize the structure of the Bayesian network (BN) by establishing a multi-population cooperative search mechanism. Then the optimized BN was used to analyze and predict the incidence rate of hypertension complications. Results indicate that the major indicators of accuracy, sensitivity, specificity, and AUC have been improved, and the proposed algorithm is superior to the common data mining algorithms such as the back propagation neural network and the decision tree. Through the proposed model and algorithm, the high-risk factors were identified and the occurrence probability of hypertension complications was predicted, which could provide the personalized health management guidance for hypertensive patients to prevent and control hypertension complications. |
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| AbstractList | Hypertension and its related complications could be a major threat issue for cardiopathy and stroke. Effective prevention and control can decrease the incidence rate of complications in hypertension. Based on the medical data of 3062 patients with cardiovascular and cerebrovascular diseases from 2017 to 2018 in a grade-A tertiary hospital in Shanghai, the study identified the risk factors of hypertension complications by text mining. On this basis, the K2 algorithm based on the improved particle swarm optimization was proposed to optimize the structure of the Bayesian network (BN) by establishing a multi-population cooperative search mechanism. Then the optimized BN was used to analyze and predict the incidence rate of hypertension complications. Results indicate that the major indicators of accuracy, sensitivity, specificity, and AUC have been improved, and the proposed algorithm is superior to the common data mining algorithms such as the back propagation neural network and the decision tree. Through the proposed model and algorithm, the high-risk factors were identified and the occurrence probability of hypertension complications was predicted, which could provide the personalized health management guidance for hypertensive patients to prevent and control hypertension complications. |
| Author | Wang, Chunming Du, Gang Ouyang, Xiaoling Liang, Xi |
| Author_xml | – sequence: 1 givenname: Gang surname: Du fullname: Du, Gang organization: School of Business and Administration, Faculty of Economics and Management, East China Normal University – sequence: 2 givenname: Xi surname: Liang fullname: Liang, Xi organization: School of Business and Administration, Faculty of Economics and Management, East China Normal University – sequence: 3 givenname: Xiaoling surname: Ouyang fullname: Ouyang, Xiaoling email: xlouyang@jjx.ecnu.edu.cn organization: School of Economics, Faculty of Economics and Management, East China Normal University – sequence: 4 givenname: Chunming surname: Wang fullname: Wang, Chunming organization: Renji Hospital, School of Medicine, Shanghai Jiao Tong University |
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| Cites_doi | 10.1080/00207543.2018.1467059 10.1109/TEVC.2004.826071 10.1007/s10878-017-0220-3 10.1016/j.neucom.2017.11.034 10.1016/j.ecolmodel.2003.08.020 10.1016/j.compbiomed.2013.02.007 10.1007/s11192-017-2591-8 10.1023/A:1007465528199 10.1007/s13042-015-0476-9 10.1007/s10878-015-9848-z 10.7326/0003-4819-148-2-200801150-00005 10.1016/S0140-6736(01)06411-X 10.1016/j.ins.2019.05.037 10.1007/s10878-015-9849-y 10.1214/09-SS054 10.1016/j.metabol.2017.11.011 10.3109/00365521.2014.964758 10.1161/01.STR.0000177495.45580.f1 10.1080/19488300.2016.1232767 10.1287/serv.2018.0220 10.1046/j.1464-5491.2002.00701.x 10.1111/j.1751-7176.2010.00343.x 10.1177/1932296817706375 10.1148/radiology.143.1.7063747 10.1016/0004-3702(87)90012-9 10.1186/1471-2288-11-146 10.1016/j.eswa.2009.05.011 10.1007/s10916-010-9562-4 10.1007/s11192-007-0312-4 10.1007/s10961-013-9301-3 10.1007/s10878-017-0208-z 10.1016/j.eswa.2009.09.026 10.1016/j.ecolmodel.2017.12.015 10.1097/00005344-199321002-00007 10.1109/CEC.1999.785511 10.1007/s10878-017-0236-8 |
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| Keywords | Improved particle swarm optimization Risk prediction Hypertension complications Intelligent algorithm optimized Bayesian network |
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| Snippet | Hypertension and its related complications could be a major threat issue for cardiopathy and stroke. Effective prevention and control can decrease the... |
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| SubjectTerms | Algorithms Back propagation networks Bayesian analysis Combinatorics Convex and Discrete Geometry Data mining Decision trees Hypertension Mathematical Modeling and Industrial Mathematics Mathematics Mathematics and Statistics Neural networks Operations Research/Decision Theory Optimization Particle swarm optimization Risk analysis Theory of Computation |
| Title | Risk prediction of hypertension complications based on the intelligent algorithm optimized Bayesian network |
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