Secure State Estimation-Based Stabilization of IoT-Enabled Wireless Power Transfer Systems
This paper concerns the distributed state estimation-based security control issue for Internet-of-Things (IoT)-enabled wireless power transfer (WPT) system subject to interchange attacks. The WPT system is first modeled using a state-space framework, and then the IoT elements including Web-enabled s...
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Published in | IEEE transactions on circuits and systems. I, Regular papers Vol. 72; no. 1; pp. 443 - 452 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
New York
IEEE
01.01.2025
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
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Abstract | This paper concerns the distributed state estimation-based security control issue for Internet-of-Things (IoT)-enabled wireless power transfer (WPT) system subject to interchange attacks. The WPT system is first modeled using a state-space framework, and then the IoT elements including Web-enabled smart sensors are considered to obtain measurements for state estimation and control purpose. Additionally, a Bernoulli distribution-based random variable with known probability is introduced to characterize randomly occurring interchange attacks in output measurements. Using Lyapunov theory and stochastic analysis technique, a set of sufficient conditions is established in terms of linear matrix inequalities for ensuring convergence of state estimation with reliable and consistent power transfer operations within the described WPT system applications. Furthermore, particle swarm optimization algorithm is used to determine the optimal gain of the state estimation scheme for minimizing mean-squared estimation errors. Finally, numerical simulation is given to illustrate the efficiency and usefulness of the presented control approach. |
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AbstractList | This paper concerns the distributed state estimation-based security control issue for Internet-of-Things (IoT)-enabled wireless power transfer (WPT) system subject to interchange attacks. The WPT system is first modeled using a state-space framework, and then the IoT elements including Web-enabled smart sensors are considered to obtain measurements for state estimation and control purpose. Additionally, a Bernoulli distribution-based random variable with known probability is introduced to characterize randomly occurring interchange attacks in output measurements. Using Lyapunov theory and stochastic analysis technique, a set of sufficient conditions is established in terms of linear matrix inequalities for ensuring convergence of state estimation with reliable and consistent power transfer operations within the described WPT system applications. Furthermore, particle swarm optimization algorithm is used to determine the optimal gain of the state estimation scheme for minimizing mean-squared estimation errors. Finally, numerical simulation is given to illustrate the efficiency and usefulness of the presented control approach. |
Author | Sakthivel, Rathinasamy Pankajavalli, P. B. Ponnarasi, Loganathan Lim, Yongdo |
Author_xml | – sequence: 1 givenname: Loganathan surname: Ponnarasi fullname: Ponnarasi, Loganathan email: ponnucs95@gmail.com organization: Department of Computer Science, Bharathiar University, Coimbatore, India – sequence: 2 givenname: P. B. orcidid: 0000-0003-1992-7386 surname: Pankajavalli fullname: Pankajavalli, P. B. email: pankajavalli@buc.edu.in organization: Department of Computer Science, Bharathiar University, Coimbatore, India – sequence: 3 givenname: Yongdo surname: Lim fullname: Lim, Yongdo email: ylim@skku.edu organization: Department of Mathematics, Sungkyunkwan University, Suwon-si, South Korea – sequence: 4 givenname: Rathinasamy orcidid: 0000-0002-5528-2709 surname: Sakthivel fullname: Sakthivel, Rathinasamy email: krsakthivel@buc.edu.in organization: Department of Applied Mathematics, Bharathiar University, Coimbatore, India |
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SubjectTerms | Algorithms Circuits Coils Control systems Control theory Estimation error interchange attack Internet of Things Linear matrix inequalities Noise Particle swarm optimization Random variables Reliability Sensor systems Sensors Simulation Smart sensors State estimation Wireless power transfer Wireless power transfer system Wireless power transmission |
Title | Secure State Estimation-Based Stabilization of IoT-Enabled Wireless Power Transfer Systems |
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