The use of logistic regression to enhance risk assessment and decision making by mental health administrators

Development of policies and procedures to contend with the risks presented by elopement, aggression, and suicidal behaviors are long-standing challenges for mental health administrators. Guidance in making such judgments can be obtained through the use of a multivariate statistical technique known a...

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Veröffentlicht in:The journal of behavioral health services & research 2006-04, Vol.33 (2), p.213-224
Hauptverfasser: Menditto, Anthony A, Linhorst, Donald M, Coleman, James C, Beck, Niels C
Format: Artikel
Sprache:eng
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Zusammenfassung:Development of policies and procedures to contend with the risks presented by elopement, aggression, and suicidal behaviors are long-standing challenges for mental health administrators. Guidance in making such judgments can be obtained through the use of a multivariate statistical technique known as logistic regression. This procedure can be used to develop a predictive equation that is mathematically formulated to use the best combination of predictors, rather than considering just one factor at a time. This paper presents an overview of logistic regression and its utility in mental health administrative decision making. A case example of its application is presented using data on elopements from Missouri's long-term state psychiatric hospitals. Ultimately, the use of statistical prediction analyses tempered with differential qualitative weighting of classification errors can augment decision-making processes in a manner that provides guidance and flexibility while wrestling with the complex problem of risk assessment and decision making.
ISSN:1094-3412
1556-3308
DOI:10.1007/s11414-006-9014-6