Literature DB >> 8932972

Statistical methods for cost-effectiveness analyses.

C Siegel1, E Laska, M Meisner.   

Abstract

A statistical framework is presented for examining cost and effect data on competing interventions obtained from an RCT or from an observational study. Parameters of the join distribution of costs and effects or a regression function linking costs and effects are used to define cost-effectiveness (c-e) measures. Several new c-e measures are proposed that utilize the linkage between costs and effects on the patient level. These measures reflect perspectives that are different from those of the commonly used measures, such as the ratio of expected cost to expected effect, and they can lead to different relative rankings of the interventions. The cost-effectiveness of interventions are assessed statistically in a two stage procedure that first eliminates clearly inferior interventions. Members of the remaining admissible set are then rank ordered according to a c-e preference measure. Statistical techniques, particularly in the multivariate normal case, are given for several commonly used c-e measures. These techniques provide methods for obtaining confidence intervals, for testing the hypothesis of admissibility and for the equality of interventions, and for ranking interventions. The ideas are illustrated for a hypothetical clinical trial of antipsychotic agents for community-based persons with mental illness.

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Year:  1996        PMID: 8932972     DOI: 10.1016/s0197-2456(95)00259-6

Source DB:  PubMed          Journal:  Control Clin Trials        ISSN: 0197-2456


  4 in total

1.  Cost-effectiveness of assertive community treatment versus standard case management for persons with co-occurring severe mental illness and substance use disorders.

Authors:  R E Clark; G B Teague; S K Ricketts; P W Bush; H Xie; T G McGuire; R E Drake; G J McHugo; A M Keller; M Zubkoff
Journal:  Health Serv Res       Date:  1998-12       Impact factor: 3.402

2.  A system for evaluating inpatient care cost-efficiency in hospital.

Authors:  J Li; J Hawkins
Journal:  Proc AMIA Symp       Date:  2001

Review 3.  Assessing physicians' use of treatment algorithms: Project IMPACTS study design and rationale.

Authors:  Madhukar H Trivedi; Cynthia A Claassen; Bruce D Grannemann; T Michael Kashner; Thomas J Carmody; Ella Daly; Janet K Kern
Journal:  Contemp Clin Trials       Date:  2006-08-16       Impact factor: 2.226

4.  The cost and outcomes of community-based care for the seriously mentally ill.

Authors:  B Dickey; W Fisher; C Siegel; F Altaffer; H Azeni
Journal:  Health Serv Res       Date:  1997-12       Impact factor: 3.402

  4 in total

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