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Population-adjusted treatment comparisons: estimates based on Matching-Adjusted Indirect Comparison and Simulated Treatment Comparison

Research output: Contribution to conferenceAbstract

Original languageEnglish
StatePublished - 12 Jul 2017
Event38th Annual Conference of the International Society for Clinical Biostatistics - Vigo, Spain

Conference

Conference38th Annual Conference of the International Society for Clinical Biostatistics
Abbreviated titleISCB
CountrySpain
CityVigo
Period9/07/1713/07/17

Abstract

We present the findings and recommendations of a recent NICE Technical Support Document (available from http://www.nicedsu.org.uk/) regarding the use of population-adjusted treatment comparisons in health technology appraisal.
Standard methods for indirect comparisons and network meta-analysis are based on aggregate data, with the key assumption that there is no difference between trials in the distribution of effect-modifying variables. Two methods which relax this assumption, Matching-Adjusted Indirect Comparison (MAIC) and Simulated Treatment Comparison (STC), are becoming increasingly common in industry-sponsored treatment comparisons, where a company has access to individual patient data (IPD) from its own trials but only aggregate data from competitor trials. Both methods use IPD to adjust for between-trial differences in covariate distributions. Despite their increasing popularity, there is a distinct lack of clarity about how and when these methods should be applied. We review the properties of these methods, and identify the key assumptions. Notably, there is a fundamental distinction between “anchored” and “unanchored” forms of indirect comparison, where a common comparator arm is or is not utilised to control for between-trial differences in prognostic variables, with the unanchored comparison making assumptions that are infeasibly strong. Furthermore, both MAIC and STC as currently applied can only produce estimates that are valid for the populations in the competitor trials, which do not necessarily represent the decision population. We provide recommendations on how and when population adjustment methods should be used to provide statistically valid, clinically meaningful, transparent and consistent results.

Event

38th Annual Conference of the International Society for Clinical Biostatistics

Abbreviated titleISCB
Conference number38
Duration9 Jul 201713 Jul 2017
CityVigo
CountrySpain
Degree of recognitionInternational event

Event: Conference

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  • Full-text PDF (final published version)

    Rights statement: This is the final published version of the article (version of record). It first appeared online via ISCB at http://www.iscb2017.info/uploadedFiles/ISCB2017.y23bw/fileManager/ISCB2017%20Book%20of%20Abstracts.pdf. Please refer to any applicable terms of use of the publisher.

    Other version, 1 MB, PDF-document

    License: CC BY

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