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Data Science for Malware Analysis

Data Science for Malware Analysis

By : Shane Molinari
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Data Science for Malware Analysis

Data Science for Malware Analysis

4 (4)
By: Shane Molinari

Overview of this book

In today's world full of online threats, the complexity of harmful software presents a significant challenge for detection and analysis. This insightful guide will teach you how to apply the principles of data science to online security, acting as both an educational resource and a practical manual for everyday use. Data Science for Malware Analysis starts by explaining the nuances of malware, from its lifecycle to its technological aspects before introducing you to the capabilities of data science in malware detection by leveraging machine learning, statistical analytics, and social network analysis. As you progress through the chapters, you’ll explore the analytical methods of reverse engineering, machine language, dynamic scrutiny, and behavioral assessments of malicious software. You’ll also develop an understanding of the evolving cybersecurity compliance landscape with regulations such as GDPR and CCPA, and gain insights into the global efforts in curbing cyber threats. By the end of this book, you’ll have a firm grasp on the modern malware lifecycle and how you can employ data science within cybersecurity to ward off new and evolving threats.
Table of Contents (14 chapters)
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1
Part 1– Introduction
Free Chapter
2
Chapter 1: Malware Science Life Cycle Overview
4
Part 2 – The Current State of Key Malware Science AI Technologies
8
Part 3 – The Future State of AI’s Use for Malware Science
11
Chapter 8: Epilogue – A Harmonious Overture to the Future of Malware Science and Cybersecurity

Operational challenges and mitigation strategies to enhance organizational cybersecurity capabilities

Implementing such a comprehensive program to enhance an organization’s cybersecurity capabilities and move up the maturity levels of the CMMI will involve several operational challenges. These can be anticipated and mitigated with effective strategies. Here are some of the potential challenges and mitigation strategies:

  • Resistance to change:
    • Challenge: In any organization, there can be resistance to changes in processes, particularly when they impact daily routines or require new skills.
    • Mitigation strategy: Create a clear communication plan outlining the reasons for the changes, the benefits they’ll bring, and how they will be implemented. Regular training and support will also help team members adapt to the new processes and technologies.
  • Lack of necessary skills:
    • Challenge: The introduction of advanced technologies such as AI and machine learning may reveal...

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