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Transparent AI Defenses. A Random Forest Approach Augmented by SHAP for Malware Threat Evaluation

Title: Transparent AI Defenses. A Random Forest Approach Augmented by SHAP for Malware Threat Evaluation

Master's Thesis , 2025 , 77 Pages , Grade: A

Autor:in: Manas Yogi (Author), Pendyala Devi Sravanthi (Author)

Computer Science - Internet, New Technologies
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Summary Details

The rapid evolution of malware poses an ever-growing challenge to cybersecurity professionals and organizations worldwide. As malicious software becomes more sophisticated, traditional detection methods often fall short, necessitating advanced solutions that not only identify threats but also provide clear explanations for their predictions. This book, Transparent AI Defenses: A Random Forest Approach Augmented by SHAP for Malware Threat Evaluation, emerges from this critical need, offering a comprehensive exploration of an explainable artificial intelligence (XAI) framework tailored for malware analysis. Our journey began with a desire to bridge the gap between the predictive power of machine learning and the interpretability demanded by security experts. The Random Forest algorithm, known for its robustness, serves as the backbone of our approach, while SHAP (SHapley Additive exPlanations) enhances it by delivering actionable insights into feature importance.

Details

Title
Transparent AI Defenses. A Random Forest Approach Augmented by SHAP for Malware Threat Evaluation
Course
M.Tech
Grade
A
Authors
Manas Yogi (Author), Pendyala Devi Sravanthi (Author)
Publication Year
2025
Pages
77
Catalog Number
V1617469
ISBN (PDF)
9783389155134
ISBN (Book)
9783389155141
Language
English
Tags
Cyber Security XAI SHAP
Product Safety
GRIN Publishing GmbH
Quote paper
Manas Yogi (Author), Pendyala Devi Sravanthi (Author), 2025, Transparent AI Defenses. A Random Forest Approach Augmented by SHAP for Malware Threat Evaluation, Munich, GRIN Verlag, https://www.grin.com/document/1617469
Look inside the ebook
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Excerpt from  77  pages
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