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Probabilistic Sensitivity Analysis in Cost-Effectiveness Models: Determining Model Convergence in Cohort Models
by
Paulden, Mike
, Bullement, Ash
, Hatswell, Anthony J.
, Stevenson, Matthew D.
, Briggs, Andrew
in
Accuracy
/ Consortia
/ Cost analysis
/ Cost benefit analysis
/ Decision making
/ Economic models
/ Evaluation
/ Expected values
/ Health Administration
/ Health Economics
/ Health technology assessment
/ Medical care, Cost of
/ Medicine
/ Medicine & Public Health
/ Monte Carlo method
/ Parameter estimation
/ Pharmacoeconomics
/ Pharmacoeconomics and Health Outcomes
/ Practical Application
/ Public Health
/ Quality of Life Research
/ Random variables
/ Sensitivity analysis
/ Simulation
2018
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Probabilistic Sensitivity Analysis in Cost-Effectiveness Models: Determining Model Convergence in Cohort Models
by
Paulden, Mike
, Bullement, Ash
, Hatswell, Anthony J.
, Stevenson, Matthew D.
, Briggs, Andrew
in
Accuracy
/ Consortia
/ Cost analysis
/ Cost benefit analysis
/ Decision making
/ Economic models
/ Evaluation
/ Expected values
/ Health Administration
/ Health Economics
/ Health technology assessment
/ Medical care, Cost of
/ Medicine
/ Medicine & Public Health
/ Monte Carlo method
/ Parameter estimation
/ Pharmacoeconomics
/ Pharmacoeconomics and Health Outcomes
/ Practical Application
/ Public Health
/ Quality of Life Research
/ Random variables
/ Sensitivity analysis
/ Simulation
2018
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Do you wish to request the book?
Probabilistic Sensitivity Analysis in Cost-Effectiveness Models: Determining Model Convergence in Cohort Models
by
Paulden, Mike
, Bullement, Ash
, Hatswell, Anthony J.
, Stevenson, Matthew D.
, Briggs, Andrew
in
Accuracy
/ Consortia
/ Cost analysis
/ Cost benefit analysis
/ Decision making
/ Economic models
/ Evaluation
/ Expected values
/ Health Administration
/ Health Economics
/ Health technology assessment
/ Medical care, Cost of
/ Medicine
/ Medicine & Public Health
/ Monte Carlo method
/ Parameter estimation
/ Pharmacoeconomics
/ Pharmacoeconomics and Health Outcomes
/ Practical Application
/ Public Health
/ Quality of Life Research
/ Random variables
/ Sensitivity analysis
/ Simulation
2018
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Probabilistic Sensitivity Analysis in Cost-Effectiveness Models: Determining Model Convergence in Cohort Models
Journal Article
Probabilistic Sensitivity Analysis in Cost-Effectiveness Models: Determining Model Convergence in Cohort Models
2018
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Overview
Probabilistic sensitivity analysis (PSA) demonstrates the parameter uncertainty in a decision problem. The technique involves sampling parameters from their respective distributions (rather than simply using mean/median parameter values). Guidance in the literature, and from health technology assessment bodies, on the number of simulations that should be performed suggests a ‘sufficient number’, or until ‘convergence’, which is seldom defined. The objective of this tutorial is to describe possible outcomes from PSA, discuss appropriate levels of accuracy, and present guidance by which an analyst can determine if a sufficient number of simulations have been conducted, such that results are considered to have converged. The proposed approach considers the variance of the outcomes of interest in cost-effectiveness analysis as a function of the number of simulations. A worked example of the technique is presented using results from a published model, with recommendations made on best practice. While the technique presented remains essentially arbitrary, it does give a mechanism for assessing the level of simulation error, and thus represents an advance over current practice of a round number of simulations with no assessment of model convergence.
Publisher
Springer International Publishing,Springer,Springer Nature B.V
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