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MRI India Journals Vol. 8 No. 9 (2024): Volume 8 Issue 9 2024

RANSOMWARE DETECTION AND CLASSIFICATION USING MACHINE LEARNING

Authors

  • Pramod G. Patil Assistant Professor, Department of Computer Engineering, SITRC, Nashik-422213, India
  • Anmol S. Budhewar Assistant Professor, Department of Computer Engineering, SITRC, Nashik-422213, India
  • Litesh R. Patel Department of Computer Engineering, SITRC, Nashik-422213, India
  • Srujal D. Laware Department of Computer Engineering, SITRC, Nashik-422213, India
  • Komal M. Mahajan Department of Computer Engineering, SITRC, Nashik-422213, India
  • Kaustubh B. Khairnar Department of Computer Engineering, SITRC, Nashik-422213, India

DOI:

https://doi.org/10.65521/ijasret.v8i9.2327

Keywords:

Ransomware Machine Learning Cybersecurity Threat Detection Classification Adaptive Defense Cyber Threads Digital Security Data Protection

Abstract

Ransomware has emerged as a widespread menace in the digital realm, inflicting considerable financial losses and disrupting vital services for both individuals and organizations. Traditional signature-based detection methods are proving inadequate against the ever-evolving strategies employed by cybercriminals. This research introduces an inventive strategy to counter ransomware threats by leveraging machine learning techniques for effective detection and classification. The study makes a valuable contribution to the ongoing cybersecurity efforts by presenting a resilient and adaptive solution for identifying and categorizing ransomware. Through the utilization of machine learning, this approach establishes a proactive defense mechanism against ransomware threats, ensuring the protection of sensitive data, financial resources, and critical infrastructure from malicious attacks in the contemporary digital landscape.

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Published

2024-09-15

How to Cite

Pramod G. Patil, Anmol S. Budhewar, Litesh R. Patel, Srujal D. Laware, Komal M. Mahajan, & Kaustubh B. Khairnar. (2024). RANSOMWARE DETECTION AND CLASSIFICATION USING MACHINE LEARNING . International Journal of Advanced Scientific Research and Engineering Trends, 8(9), 4–10. https://doi.org/10.65521/ijasret.v8i9.2327

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