Information System Security Evaluation Algorithm Based on PSO-BP Neural Network
With the deepening of big data and the development of information technology, the country, enterprises, organizations, and even individuals are more and more dependent on the information system. In recent years, all kinds of network attacks emerge in an endless stream, and the losses are immeasurabl...
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| Published in | Computational intelligence and neuroscience Vol. 2021; no. 1; p. 6046757 |
|---|---|
| Main Author | |
| Format | Journal Article |
| Language | English |
| Published |
United States
Hindawi
2021
John Wiley & Sons, Inc |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1687-5265 1687-5273 1687-5273 |
| DOI | 10.1155/2021/6046757 |
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| Abstract | With the deepening of big data and the development of information technology, the country, enterprises, organizations, and even individuals are more and more dependent on the information system. In recent years, all kinds of network attacks emerge in an endless stream, and the losses are immeasurable. Therefore, the protection of information system security is a problem that needs to be paid attention to in the new situation. The existing BP neural network algorithm is improved as the core algorithm of the security intelligent evaluation of the rating information system. The input nodes are optimized. In the risk factor identification stage, most redundant information is filtered out and the core factors are extracted. In the risk establishment stage, the particle swarm optimization algorithm is used to optimize the initial network parameters of BP neural network algorithm to overcome the dependence of the network on the initial threshold, At the same time, the performance of the improved algorithm is verified by simulation experiments. The experimental results show that compared with the traditional BP algorithm, PSO-BP algorithm has faster convergence speed and higher accuracy in risk value prediction. The error value of PSO-BP evaluation method is almost zero, and there is no error fluctuation in 100 sample tests. The maximum error value is only 0.34 and the average error value is 0.21, which proves that PSO-BP algorithm has excellent performance. |
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| AbstractList | With the deepening of big data and the development of information technology, the country, enterprises, organizations, and even individuals are more and more dependent on the information system. In recent years, all kinds of network attacks emerge in an endless stream, and the losses are immeasurable. Therefore, the protection of information system security is a problem that needs to be paid attention to in the new situation. The existing BP neural network algorithm is improved as the core algorithm of the security intelligent evaluation of the rating information system. The input nodes are optimized. In the risk factor identification stage, most redundant information is filtered out and the core factors are extracted. In the risk establishment stage, the particle swarm optimization algorithm is used to optimize the initial network parameters of BP neural network algorithm to overcome the dependence of the network on the initial threshold, At the same time, the performance of the improved algorithm is verified by simulation experiments. The experimental results show that compared with the traditional BP algorithm, PSO-BP algorithm has faster convergence speed and higher accuracy in risk value prediction. The error value of PSO-BP evaluation method is almost zero, and there is no error fluctuation in 100 sample tests. The maximum error value is only 0.34 and the average error value is 0.21, which proves that PSO-BP algorithm has excellent performance. With the deepening of big data and the development of information technology, the country, enterprises, organizations, and even individuals are more and more dependent on the information system. In recent years, all kinds of network attacks emerge in an endless stream, and the losses are immeasurable. Therefore, the protection of information system security is a problem that needs to be paid attention to in the new situation. The existing BP neural network algorithm is improved as the core algorithm of the security intelligent evaluation of the rating information system. The input nodes are optimized. In the risk factor identification stage, most redundant information is filtered out and the core factors are extracted. In the risk establishment stage, the particle swarm optimization algorithm is used to optimize the initial network parameters of BP neural network algorithm to overcome the dependence of the network on the initial threshold, At the same time, the performance of the improved algorithm is verified by simulation experiments. The experimental results show that compared with the traditional BP algorithm, PSO-BP algorithm has faster convergence speed and higher accuracy in risk value prediction. The error value of PSO-BP evaluation method is almost zero, and there is no error fluctuation in 100 sample tests. The maximum error value is only 0.34 and the average error value is 0.21, which proves that PSO-BP algorithm has excellent performance.With the deepening of big data and the development of information technology, the country, enterprises, organizations, and even individuals are more and more dependent on the information system. In recent years, all kinds of network attacks emerge in an endless stream, and the losses are immeasurable. Therefore, the protection of information system security is a problem that needs to be paid attention to in the new situation. The existing BP neural network algorithm is improved as the core algorithm of the security intelligent evaluation of the rating information system. The input nodes are optimized. In the risk factor identification stage, most redundant information is filtered out and the core factors are extracted. In the risk establishment stage, the particle swarm optimization algorithm is used to optimize the initial network parameters of BP neural network algorithm to overcome the dependence of the network on the initial threshold, At the same time, the performance of the improved algorithm is verified by simulation experiments. The experimental results show that compared with the traditional BP algorithm, PSO-BP algorithm has faster convergence speed and higher accuracy in risk value prediction. The error value of PSO-BP evaluation method is almost zero, and there is no error fluctuation in 100 sample tests. The maximum error value is only 0.34 and the average error value is 0.21, which proves that PSO-BP algorithm has excellent performance. |
| Audience | Academic |
| Author | Zheng, Qinghua |
| AuthorAffiliation | School of Business, Jinling Institute of Technology, Nanjing 211169, Jiangsu, China |
| AuthorAffiliation_xml | – name: School of Business, Jinling Institute of Technology, Nanjing 211169, Jiangsu, China |
| Author_xml | – sequence: 1 givenname: Qinghua orcidid: 0000-0001-7285-4935 surname: Zheng fullname: Zheng, Qinghua organization: School of BusinessJinling Institute of TechnologyNanjing 211169JiangsuChinajit.edu.cn |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/34456994$$D View this record in MEDLINE/PubMed |
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| CitedBy_id | crossref_primary_10_61186_ijrr_22_1_163 crossref_primary_10_1007_s42452_024_05723_6 crossref_primary_10_3390_jmse11030510 crossref_primary_10_1016_j_jad_2023_04_034 crossref_primary_10_1016_j_flowmeasinst_2022_102303 crossref_primary_10_1155_2023_9895063 |
| Cites_doi | 10.1088/1742-6596/819/1/012029 10.1016/j.comcom.2008.07.001 10.1504/ijsnet.2017.083532 10.1109/AUSWIRELESS.2007.67 10.1016/j.inpa.2019.09.001 10.1016/j.future.2020.12.001 10.1201/9781315760827-24 10.1109/tsg.2018.2873001 10.1109/TII.2020.3032235 10.1007/978-3-642-22577-2_12 10.3390/ijgi8090391 10.1016/j.epsr.2017.03.029 10.1016/j.jclepro.2017.05.102 10.4028/www.scientific.net/ssp.305.163 10.1109/CyberSecurity.2012.21 10.1016/j.cogsys.2020.08.011 10.1016/j.scs.2018.06.008 10.1007/s00366-015-0400-7 10.1109/TITS.2020.3045319 10.1088/1757-899x/1033/1/012016 10.1109/HICSS.2013.130 10.1016/j.oceaneng.2021.108657 10.1109/tdei.2017.006475 10.1007/s12205-019-0343-4 |
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| Copyright | Copyright © 2021 Qinghua Zheng. COPYRIGHT 2021 John Wiley & Sons, Inc. Copyright © 2021 Qinghua Zheng. This is an open access article distributed under the Creative Commons Attribution License (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. https://creativecommons.org/licenses/by/4.0 Copyright © 2021 Qinghua Zheng. 2021 |
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| References | e_1_2_8_27_2 e_1_2_8_23_2 e_1_2_8_24_2 e_1_2_8_25_2 e_1_2_8_26_2 e_1_2_8_9_2 e_1_2_8_2_2 e_1_2_8_1_2 e_1_2_8_4_2 e_1_2_8_3_2 e_1_2_8_6_2 e_1_2_8_5_2 e_1_2_8_8_2 e_1_2_8_7_2 e_1_2_8_21_2 e_1_2_8_22_2 e_1_2_8_16_2 e_1_2_8_17_2 e_1_2_8_18_2 e_1_2_8_19_2 e_1_2_8_13_2 e_1_2_8_14_2 e_1_2_8_15_2 Zhang K. (e_1_2_8_20_2) 2018; 41 e_1_2_8_10_2 Lin S. (e_1_2_8_12_2) 2017; 14 e_1_2_8_11_2 37416603 - Comput Intell Neurosci. 2023 Jun 28;2023:9895063 |
| References_xml | – ident: e_1_2_8_15_2 doi: 10.1088/1742-6596/819/1/012029 – ident: e_1_2_8_4_2 doi: 10.1016/j.comcom.2008.07.001 – ident: e_1_2_8_17_2 doi: 10.1504/ijsnet.2017.083532 – ident: e_1_2_8_7_2 doi: 10.1109/AUSWIRELESS.2007.67 – ident: e_1_2_8_16_2 doi: 10.1016/j.inpa.2019.09.001 – ident: e_1_2_8_1_2 doi: 10.1016/j.future.2020.12.001 – ident: e_1_2_8_6_2 doi: 10.1201/9781315760827-24 – ident: e_1_2_8_24_2 doi: 10.1088/1742-6596/819/1/012029 – ident: e_1_2_8_3_2 doi: 10.1109/tsg.2018.2873001 – ident: e_1_2_8_18_2 doi: 10.1109/TII.2020.3032235 – ident: e_1_2_8_5_2 doi: 10.1007/978-3-642-22577-2_12 – ident: e_1_2_8_13_2 doi: 10.3390/ijgi8090391 – ident: e_1_2_8_2_2 doi: 10.1016/j.epsr.2017.03.029 – ident: e_1_2_8_25_2 doi: 10.1016/j.jclepro.2017.05.102 – ident: e_1_2_8_11_2 doi: 10.4028/www.scientific.net/ssp.305.163 – ident: e_1_2_8_8_2 doi: 10.1109/CyberSecurity.2012.21 – volume: 41 start-page: 96 year: 2018 ident: e_1_2_8_20_2 article-title: Pulse recognition method based on PSO-BP neural network publication-title: Modern electronic technology – ident: e_1_2_8_26_2 doi: 10.1016/j.cogsys.2020.08.011 – ident: e_1_2_8_23_2 doi: 10.1016/j.scs.2018.06.008 – volume: 14 start-page: 109 year: 2017 ident: e_1_2_8_12_2 article-title: Warehouse environment parameter monitoring system and sensor error correction model based on PSO-BP publication-title: Transactions of Nanjing University of Aeronautics and Astronautics – ident: e_1_2_8_14_2 doi: 10.1007/s00366-015-0400-7 – ident: e_1_2_8_19_2 doi: 10.1109/TITS.2020.3045319 – ident: e_1_2_8_21_2 doi: 10.1088/1757-899x/1033/1/012016 – ident: e_1_2_8_9_2 doi: 10.1109/HICSS.2013.130 – ident: e_1_2_8_27_2 doi: 10.1016/j.oceaneng.2021.108657 – ident: e_1_2_8_10_2 doi: 10.1109/tdei.2017.006475 – ident: e_1_2_8_22_2 doi: 10.1007/s12205-019-0343-4 – reference: 37416603 - Comput Intell Neurosci. 2023 Jun 28;2023:9895063 |
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| SubjectTerms | Accuracy Algorithms Back propagation networks Classification Cloud computing Computer Simulation Decision making Energy consumption Errors Evaluation Fault diagnosis Humans Information Systems Mathematical optimization Neural networks Neural Networks, Computer Optimization Particle swarm optimization Principal components analysis Risk analysis Risk assessment Risk factors Safety and security measures Security Variables |
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| Title | Information System Security Evaluation Algorithm Based on PSO-BP Neural Network |
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