Analysis of interval-censored recurrent event processes subject to resolution

Interval‐censored recurrent event data arise when the event of interest is not readily observed but the cumulative event count can be recorded at periodic assessment times. In some settings, chronic disease processes may resolve, and individuals will cease to be at risk of events at the time of dise...

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Bibliographic Details
Published inBiometrical journal Vol. 57; no. 5; pp. 725 - 742
Main Authors Shen, Hua, Cook, Richard J.
Format Journal Article
LanguageEnglish
Published Germany Blackwell Publishing Ltd 01.09.2015
Wiley - VCH Verlag GmbH & Co. KGaA
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Summary:Interval‐censored recurrent event data arise when the event of interest is not readily observed but the cumulative event count can be recorded at periodic assessment times. In some settings, chronic disease processes may resolve, and individuals will cease to be at risk of events at the time of disease resolution. We develop an expectation‐maximization algorithm for fitting a dynamic mover‐stayer model to interval‐censored recurrent event data under a Markov model with a piecewise‐constant baseline rate function given a latent process. The model is motivated by settings in which the event times and the resolution time of the disease process are unobserved. The likelihood and algorithm are shown to yield estimators with small empirical bias in simulation studies. Data are analyzed on the cumulative number of damaged joints in patients with psoriatic arthritis where individuals experience disease remission.
Bibliography:istex:3F2E75E4B52F79009C0F9C868BDE2534E5472CDA
Natural Sciences and Engineering Research Council of Canada Discovery Grant - No. 101093
ArticleID:BIMJ1602
ark:/67375/WNG-C7QR99H1-K
Canadian Institutes for Health Research - No. 105099
ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
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ISSN:0323-3847
1521-4036
DOI:10.1002/bimj.201400162