An innovative practical roadmap for optimal control strategies in malware propagation through the integration of RL with MPC

被引:4
作者
Jafar, Mousa Tayseer [1 ]
Yang, Lu-Xing [1 ]
Li, Gang [1 ]
机构
[1] Deakin Univ, Sch Informat Technol, Melbourne, Vic 3125, Australia
关键词
Open-loop; Closed loop; Cyber threats; Feedback loop; Optimal control; Malware propagation; Reinforcement learning; Model predictive control; MODEL-PREDICTIVE CONTROL; VIRUS PROPAGATION; DYNAMICAL ANALYSIS; COMPUTER VIRUS; STABILITY; EPIDEMICS; INFORMATION; NETWORKS; DESIGN; SIR;
D O I
10.1016/j.cose.2024.104186
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
While there has been considerable research into optimal control formulations for mitigating cyber threats, a significant gap persists between the theoretical and numerical insights derived from such research and the practical implementation of these optimal mitigation strategies in real-time scenarios. This paper introduces a multifaceted approach to enhance and optimize optimal control strategies by seamlessly integrating reinforcement learning (RL) algorithms with model predictive control (MPC) techniques for the purpose of malware propagation control. Optimal control is a critical aspect of various domains, ranging from industrial processes and robotics to epidemiological modeling and cybersecurity. The traditional approaches to optimal control, particularly open-loop strategies, have limitations in adapting to dynamic and uncertain environments. This paper addresses these limitations by proposing a novel roadmap that leverages RL algorithms to fine-tune and adapt MPC parameters within the context of malware propagation containment. In sum, this practical roadmap is anticipated to serve as a valuable resource for researchers and practitioners engaged in the development of cybersecurity solutions.
引用
收藏
页数:24
相关论文
共 20 条
[11]   Hopf bifurcation and optimal control of a delayed malware propagation model on mobile wireless sensor networks [J].
Zhang, Hu ;
Upadhyay, Ranjit Kumar ;
Liu, Guiyun ;
Zhang, Zizhen .
RESULTS IN PHYSICS, 2022, 41
[12]   Optimal Quarantining of Wireless Malware Through Reception Gain Control [J].
Khouzani, M. H. R. ;
Altman, Eitan ;
Sarkar, Saswati .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2012, 57 (01) :49-61
[13]   On the Dynamics of COVID-19 Propagation with Vaccination and Optimal Control Strategies [J].
Borah, Padma Bhushan ;
Robidas, Dipika ;
Dehingia, Kaushik ;
Nath, Bhagya Jyoti ;
Sarmah, Hemanta Kumar .
BRAZILIAN JOURNAL OF PHYSICS, 2025, 55 (03)
[14]   Hilfer-Katugampola fractional epidemic model for malware propagation with optimal control [J].
Ahmed, A. M. Sayed ;
Ahmed, Hamdy M. ;
Nofal, Taher A. ;
Darwish, Adel ;
Omar, Othman A. M. .
AIN SHAMS ENGINEERING JOURNAL, 2024, 15 (10)
[15]   Analysis and Optimal Control of Propagation Model for Malware in Multi-Cloud Environments with Impact of Brownian Motion Process [J].
Omar, Othman A. M. ;
Ahmed, Hamdy M. ;
Nofal, Taher A. ;
Darwish, Adel ;
Ahmed, A. M. Sayed .
MATHEMATICAL AND COMPUTATIONAL APPLICATIONS, 2025, 30 (01)
[16]   Seeking Best-Balanced Patch-Injecting Strategies through Optimal Control Approach [J].
Huang, Kaifan ;
Li, Pengdeng ;
Yang, Lu-Xing ;
Yang, Xiaofan ;
Tang, Yuan Yan .
SECURITY AND COMMUNICATION NETWORKS, 2019, 2019
[17]   Implicit Integration with Adjoint Sensitivity Propagation for Optimal Control Problems Involving Differential-Algebraic Equations [J].
Jiang, Canghua ;
Xie, Kun ;
Guo, Zhiqiang ;
Teo, Kok Lay .
PROCEEDINGS OF THE 36TH CHINESE CONTROL CONFERENCE (CCC 2017), 2017, :2489-2494
[18]   Optimal control of production and maintenance: A cost-efficient approach through inventory and preventive strategies [J].
Bounkhel, Messaoud ;
Tadj, Lotfi .
ELECTRONIC RESEARCH ARCHIVE, 2025, 33 (01) :277-293
[19]   Optimal Load-Tracking Operation of Grid-Connected Solid Oxide Fuel Cells through Set Point Scheduling and Combined L1-MPC Control [J].
Han, Siwei ;
Sun, Li ;
Shen, Jiong ;
Pan, Lei ;
Lee, Kwang Y. .
ENERGIES, 2018, 11 (04)
[20]   Determination of biorestoration strategies in eutrophic water bodies through the formulation of an optimal control problem based on a 3D ecological model [J].
Estrada, Vanina ;
Rodriguez Reartes, Sabrina Belen ;
Soledad Diaz, M. .
21ST EUROPEAN SYMPOSIUM ON COMPUTER AIDED PROCESS ENGINEERING, 2011, 29 :1281-1285