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青少年药物相关行为的因素分析模型及其对生命历程多个阶段逮捕情况的影响

A Factor Analytic Model of Drug-Related Behavior in Adolescence and Its Impact on Arrests at Multiple Stages of the Life Course.

作者信息

Phillips Matthew D

机构信息

Department of Criminal Justice and Criminology, UNC Charlotte, Charlotte, NC, USA.

出版信息

J Quant Criminol. 2017 Mar;33(1):131-155. doi: 10.1007/s10940-016-9286-9. Epub 2016 Jan 25.

Abstract

OBJECTIVES

Recognizing the inherent variability of drug-related behaviors, this study develops an empirically-driven and holistic model of drug-related behavior during adolescence using factor analysis to simultaneously model multiple drug behaviors.

METHODS

The factor analytic model uncovers latent dimensions of drug-related behaviors, rather than patterns of individuals. These latent dimensions are treated as empirical typologies which are then used to predict an individual's number of arrests accrued at multiple phases of the life course. The data are robust enough to simultaneously capture drug behavior measures typically considered in isolation in the literature, and to allow for behavior to change and evolve over the period of adolescence.

RESULTS

Results show that factor analysis is capable of developing highly descriptive patterns of drug offending, and that these patterns have great utility in predicting arrests. Results further demonstrate that while drug behavior patterns are predictive of arrests at the end of adolescence for both males and females, the impacts on arrests are longer lasting for females.

CONCLUSIONS

The various facets of drug behaviors have been a long-time concern of criminological research. However, the ability to model multiple behaviors simultaneously is often constrained by data that do not measure the constructs fully. Factor analysis is shown to be a useful technique for modeling adolescent drug involvement patterns in a way that accounts for the multitude and variability of possible behaviors, and in predicting future negative life outcomes, such as arrests.

摘要

目的

鉴于认识到与毒品相关行为存在内在变异性,本研究运用因子分析同时对多种毒品行为进行建模,构建了一个基于实证且全面的青少年毒品相关行为模型。

方法

因子分析模型揭示的是与毒品相关行为的潜在维度,而非个体模式。这些潜在维度被视为实证类型,随后用于预测个体在生命历程多个阶段累积的逮捕次数。数据足够稳健,能够同时捕捉文献中通常单独考虑的毒品行为指标,并能让行为在青少年时期发生变化和演变。

结果

结果表明,因子分析能够得出极具描述性的毒品犯罪模式,且这些模式在预测逮捕方面具有很大效用。结果还进一步表明,虽然毒品行为模式对男性和女性在青春期结束时的逮捕情况均有预测作用,但对女性逮捕情况的影响持续时间更长。

结论

毒品行为的各个方面长期以来一直是犯罪学研究关注的问题。然而,同时对多种行为进行建模的能力常常受到无法充分测量相关构念的数据的限制。研究表明,因子分析是一种有用的技术,可用于以考虑可能行为的多样性和变异性的方式对青少年毒品参与模式进行建模,并预测未来诸如逮捕等负面生活结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/943f/5400364/20f01256400c/nihms760479f1.jpg

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