Counterattacking Cyber Threats: A Framework for the Future of Cybersecurity

被引:17
作者
Safitra, Muhammad Fakhrul [1 ]
Lubis, Muharman [1 ]
Fakhrurroja, Hanif [1 ,2 ]
机构
[1] Telkom Univ, Sch Ind Engn, Bandung 40257, Indonesia
[2] Natl Res & Innovat Agcy, Jakarta 10340, Indonesia
关键词
cyber resilience; digitalization capabilities; cybersecurity; threats and risks; preparedness; adaptability; incentivizing stakeholders; framework; RESILIENCE; SYSTEMS;
D O I
10.3390/su151813369
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Amidst the rapid advancements in the digital landscape, the convergence of digitization and cyber threats presents new challenges for organizational security. This article presents a comprehensive framework that aims to shape the future of cyber security. This framework responds to the complexities of modern cyber threats and provides guidance to organizations to enhance their resilience. The primary focus lies in the integration of capabilities with resilience. By combining these elements into cyber security practices, organizations can improve their ability to predict, mitigate, respond to, and recover from cyber disasters. This article emphasizes the importance of organizational leadership, accountability, and innovation in achieving cyber resilience. As cyber threat challenges continue to evolve, this framework offers strategic guidance to address the intricate dynamics between digitization and cyber security, moving towards a safer and more robust digital environment in the future.
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页数:32
相关论文
共 91 条
[1]   Cyber resilience and cyber security issues of intelligent cloud computing systems [J].
Abdullayeva, Fargana .
RESULTS IN CONTROL AND OPTIMIZATION, 2023, 12
[2]   Digital Twin for Training Bayesian Networks for Fault Diagnostics of Manufacturing Systems [J].
Ademujimi, Toyosi ;
Prabhu, Vittaldas .
SENSORS, 2022, 22 (04)
[3]  
Alby M.F., 2022, ACM International Conference Proceeding Series, P521, DOI [10.1145/3568834.3568868, DOI 10.1145/3568834.3568868]
[4]   Resilience Evaluation of Demand Response as Spinning Reserve under Cyber-Physical Threats [J].
AlMajali, Anas ;
Viswanathan, Arun ;
Neuman, Clifford .
ELECTRONICS, 2017, 6 (01)
[5]  
Alnaim A.K., 2019, P 26 PLOP 19 OTT ON
[6]  
[Anonymous], 2022, ISO 27001
[7]  
Atighetchi M., 2016, P 11 ANN CYB INF SEC, DOI [10.1145/2897795.2897812, DOI 10.1145/2897795.2897812]
[8]   Evaluation of Operational Resilience in Cyber-Physical Production Systems: literature review [J].
Attajer, Ali ;
Chaabane, Sondes ;
Darmoul, Saber ;
Sallez, Yves ;
Riane, Fouad .
IFAC PAPERSONLINE, 2022, 55 (10) :2264-2269
[9]   Analysis of Consumer IoT Device Vulnerability Quantification Frameworks [J].
Baho, Samira A. ;
Abawajy, Jemal .
ELECTRONICS, 2023, 12 (05)
[10]   Resilient Consensus Control Design for DC Microgrids against False Data Injection Attacks Using a Distributed Bank of Sliding Mode Observers [J].
Barzegari, Yousof ;
Zarei, Jafar ;
Razavi-Far, Roozbeh ;
Saif, Mehrdad ;
Palade, Vasile .
SENSORS, 2022, 22 (07)