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Criminal Trajectory Clustering×Group-Based Trajectory Model×
DomaineCriminologyCriminology
FamilleRegression modelRegression model
Année d'origine20101993
Auteur d'origineDaniel S. Nagin; Christophe Genolini & Bruno Falissard (KmL)Daniel S. Nagin & Kenneth C. Land
TypeAlgorithmic clustering of longitudinal offending trajectoriesFinite-mixture model of longitudinal developmental trajectories
Source fondatriceNagin, D. S. (2005). Group-Based Modeling of Development. Harvard University Press. ISBN: 9780674016866Nagin, D. S., & Land, K. C. (1993). Age, criminal careers, and population heterogeneity: Specification and estimation of a nonparametric, mixed Poisson model. Criminology, 31(3), 327–362. DOI ↗
AliasOffending Trajectory Clustering, Longitudinal Offending Cluster Analysis, Trajectory Shape Clustering, Crime-Curve ClusteringGBTM, Group-Based Modeling of Development, Nagin Trajectory Model, Semiparametric Group-Based Modeling
Apparentées44
RésuméCriminal trajectory clustering is the broad family of methods that group individuals by the shape of their longitudinal offending curves. Rather than committing to a single statistical model, it spans algorithmic approaches — k-means for longitudinal data, distance-based clustering of trajectory shapes, and likelihood-based latent class growth — and treats the choice of clustering method itself as a modeling decision validated by fit and stability criteria.Group-based trajectory modeling (GBTM) is a finite-mixture method that identifies clusters of individuals who follow similar developmental paths of a behavior — most famously offending — over age or time. Introduced to criminology by Daniel Nagin and Kenneth Land in 1993, it replaces the assumption of a single average trajectory with a small number of distinct latent groups, each described by its own polynomial curve and its share of the population.
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ScholarGateComparer des méthodes: Criminal Trajectory Clustering · Group-Based Trajectory Model. Consulté le 2026-06-24 sur https://scholargate.app/fr/compare