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Using Deep Learning Neural Networks to Predict Violent vs. Nonviolent Extremist Behaviors

Bibliographic Data

ID4772965
AuthorsKurt Braddock (0000-0002-8480-6970, American University, corresponding author)
Year2025
Volume37
Issue6
Pages834-856
Publication date2025-08-18
Peer ReviewedYes
Open AccessNo
TypeARTICLE
VenueTerrorism and Political Violence (JOURNAL)
Journal identifiersISSN: 0954-6553 • E-ISSN: 1556-1836
PublisherInforma UK Limited (PUBLISHER • GB)
DOI10.1080/09546553.2024.2376639
OpenAlexW4401016727
LanguageEN
Citations received1

Recent analyses of radicalization processes have shown that extremist attitudes and violent behavior may be related in some cases, but are rarely collinear. It therefore benefits analysts of political violence to leverage tools that assist in the distinction of characteristics that might move an individual towards violence (vs. nonviolence) in support of their beliefs. To this end, the current study explores the efficacy of deep learning neural networks for classifying extremists as potentially violent or nonviolent based on dozens of common predictors derived from various perspectives on radicalization. Specifically, this study uses 337 predictors from the Profiles of Individual Radicalization in the U.S. dataset to populate a neural network with two hidden layers composed of four processing nodes. The model correctly predicted whether an individual engaged in violence (or not) in 94.2 percent of cases, on average. Analyses further identified several predictors that were most important in classifying violent and nonviolent cases. These analyses demonstrate neural networks may be effective tools in the study of radicalization and extremism, particularly regarding the disaggregation of salient outcomes

Artificial neural network · Criminology · Political science · Terrorism · Violent extremism · Computer Science · Law · Psychology · Social Psychology · Terrorism, Counterterrorism, and Political Violence · Artificial Intelligence

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Unique citing works1
Citations per year1
Citation span2025 - 2025 (1)
Citation velocityrecent
Highly citedNo
Citation typesNeutral: 1

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