Machine Learning Techniques to Predict Terrorist Attacks Machine Learning Techniques to Predict Terrorist Attacks
Terrorism, Security, and Computation

Machine Learning Techniques to Predict Terrorist Attacks

Exemplified by Jama'at Nasr al-Islam wal Muslimin

Laura Mostert và các tác giả khác
    • 39,99 US$
    • 39,99 US$

Lời Giới Thiệu Của Nhà Xuất Bản

One of the most influential actors in spreading Islamist violence across the Sahel is Jama’at Nasr Al Islam Wal Muslimin (JNIM).This book provides the first systematic quantitative analysis of JNIM’s behavior by analyzing a 12-year database of JNIM’s attacks and the environment surrounding JNIM. This book leverages AI/ML predictive models to accurately predict almost 40 types of attacks using over 80 independent variables. 

 This book describes a set of temporal probabilistic rules that state that when the environment in which the group operates satisfies some conditions, then an attack of a certain type will likely occur in the next N months.  This provides a deep, easy to comprehend understanding of the conditions under which JNIM carries various kinds of attacks up to 6 months into the future.

 This book will serve as an invaluable guide to scholars (computer scientists, political scientists, policy makers). Military officers, intelligence personnel, and government employees, who seek to understand, predict, and eventually mitigate attacks by JNIM and bring peace to the nations of Mali, Burkina Faso, and Niger will want to purchase this book as well.

THỂ LOẠI
Khoa Học & Tự Nhiên
ĐÃ PHÁT HÀNH
2025
1 tháng 7
NGÔN NGỮ
EN
Tiếng Anh
ĐỘ DÀI
147
Trang
NHÀ XUẤT BẢN
Springer Nature Switzerland
NGƯỜI BÁN
Springer Nature B.V.
KÍCH THƯỚC
11,9
Mb
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