CONSTRUCTING A SAMPLE SELECTION MODEL OF HIGH RISK YOUTH
构建高危青少年样本选择模型
基本信息
- 批准号:2122226
- 负责人:
- 金额:$ 7.69万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:1994
- 资助国家:美国
- 起止时间:1994-09-30 至 1996-08-31
- 项目状态:已结题
- 来源:
- 关键词:academic achievement adolescence (12-20) classification drug abuse drug abuse information system gender difference high risk behavior /lifestyle human subject mathematical model mental disorder diagnosis mental disorder prevention model design /development psychotherapy racial /ethnic difference secondary schools student dropouts suicide
项目摘要
APPLICANT'S ABSTRACT:
The focus of this study is on testing techniques that facilitate the
identification of youth at-high risk for drug involvement, school
disengagement, and suicide risk behaviors. The proposal addresses a
fundamental and pragmatic need to identify accurately high-risk youth for
prevention efforts without creating costs of additional data gathering
or complicated procedures for screening youth. Developing and testing
simple models for accurately and efficiently finding high-risk youth
among school populations is a neglected area of study; and yet, this is
a critical first step in any preventive intervention research.
The research aims are to (1)test an existing high-risk youth selection
model currently used to identify youth at-high risk of school failure,
and thereby, drug involvement; (2)evaluate alternative models of
selection which maximize
efficiency of data collection and accuracy of classification; (3)explore
the ability of the models to screen for degree of risk; and (4)to test
models of selection for specific population subgroups: a)male/female,
b)ethnic minorities and c)age-based subgroups (aged 14-15 & 16-18 years).
An existing data base will be used for this study; i.e., previously
collected data from (five) years of school district records and
individual student surveys which contain basic information on drug
involvement, school performance, and suicide risk behaviors. Measures
of these behaviors have high reliability and validity and form the basis
for classifying the student population. The research design calls for
splitting the data into subsamples, using part of the data to derive the
selection models (primarily based on Classification and Regression Tree,
CART, procedures) and, then, using the remaining samples to test the
accuracy of the derived models. This design is analagous to typical
split-half designs. The CART procedures are specifically designed to
(1)find a limited number of classifiers from a larger set of variables
and (2)minimize error rates in classification.
Variables that were systematically gathered in the school district files
will be used as the independent factors or classifiers of the individual
cases; these classifiers stand as proxies for well-known risk factors.
The expressed interest is to work within an extant dataset typically and
systematically available in a school setting to produce a model that
accurately selects youth of high-risk status.
The value of this study is to test and to identify a simple means for
classifying risk status in a typical site for preventive intervention
programs, the schools. If such a procedure is successful, the high-risk
youth sample selection model will provide a building block in future
studies, providing a simple and pragmatic means for : (1) assessing
prevalence of risk in school populations; (2) linking high risk youth
to interventions and (3) implementing intervention programs across school
settings.
申请人的简介:
项目成果
期刊论文数量(0)
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JERALD R HERTING其他文献
JERALD R HERTING的其他文献
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{{ truncateString('JERALD R HERTING', 18)}}的其他基金
DIFFERENTIAL EFFECTIVENESS IN DRUG PREVENTION PROGRAMS
毒品预防计划的不同效果
- 批准号:
6447496 - 财政年份:2001
- 资助金额:
$ 7.69万 - 项目类别:
DIFFERENTIAL EFFECTIVENESS IN DRUG PREVENTION PROGRAMS
毒品预防计划的不同效果
- 批准号:
6515960 - 财政年份:2001
- 资助金额:
$ 7.69万 - 项目类别:
DIFFERENTIAL EFFECTIVENESS IN DRUG PREVENTION PROGRAMS
毒品预防计划的不同效果
- 批准号:
6656233 - 财政年份:2001
- 资助金额:
$ 7.69万 - 项目类别:
CONSTRUCTING A SAMPLE SELECTION MODEL OF HIGH RISK YOUTH
构建高危青少年样本选择模型
- 批准号:
2013250 - 财政年份:1994
- 资助金额:
$ 7.69万 - 项目类别: