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Modeling the Value for Money of Changing Clinical Practice Change

A Stochastic Application in Diabetes Care

Dados Bibliográficos

ID9100751
AutoresTies Hoomans (Maastricht University, autor correspondente), Keith R Abrams (0000-0002-7557-1567, University of Leicester), Andre J H A Ament (Maastricht University, autor correspondente), Sandra Ever (0000-0003-1026-570X, Maastricht University, autor correspondente), Silvia M A A Evers, Johan L Severens (0000-0001-9590-0244, Maastricht University Medical Centre, autor correspondente)
Ano2009
Volume47
Fascículo10
Páginas1053-1061
Data de publicação2009-10-01
Peer ReviewedSim
Open AccessNão
TipoARTICLE
PeriódicoMedical Care (JOURNAL)
Identificadores do periódicoISSN: 0025-7079 • E-ISSN: 1537-1948
EditoraOvid Technologies (Wolters Kluwer Health) (PUBLISHER)
DOI10.1097/mlr.0b013e31819e1ee9
PMID19648827
OpenAlexW2024856545
IdiomaEN
Referências citadas39

BACKGROUND: Decision making about resource allocation for guideline implementation to change clinical practice is inevitably undertaken in a context of uncertainty surrounding the cost-effectiveness of both clinical guidelines and implementation strategies. Adopting a total net benefit approach, a model was recently developed to overcome problems with the use of combined ratio statistics when analyzing decision uncertainty. OBJECTIVE: To demonstrate the stochastic application of the model for informing decision making about the adoption of an audit and feedback strategy for implementing a guideline recommending intensive blood glucose control in type 2 diabetes in primary care in the Netherlands. METHODS: An integrated Bayesian approach to decision modeling and evidence synthesis is adopted, using Markov Chain Monte Carlo simulation in WinBUGs. Data on model parameters is gathered from various sources, with effectiveness of implementation being estimated using pooled, random-effects meta-analysis. Decision uncertainty is illustrated using cost-effectiveness acceptability curves and frontier. RESULTS: Decisions about whether to adopt intensified glycemic control and whether to adopt audit and feedback alter for the maximum values that decision makers are willing to pay for health gain. Through simultaneously incorporating uncertain economic evidence on both guidance and implementation strategy, the cost-effectiveness acceptability curves and cost-effectiveness acceptability frontier show an increase in decision uncertainty concerning guideline implementation. CONCLUSIONS: The stochastic application in diabetes care demonstrates that the model provides a simple and useful tool for quantifying and exploring the (combined) uncertainty associated with decision making about adopting guidelines and implementation strategies and, therefore, for informing decisions about efficient resource allocation to change clinical practice

Clinical Practice · Economics · Family medicine · Public economics · Statistics · Value (mathematics) · Value for money · Clinical practice guidelines implementation · Health Policy Implementation Science · Health Systems, Economic Evaluations, Quality of Life · Mathematics · Medicine

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Velocidade de citaçãohistorical
Altamente citadoNão
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