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Joint modelling of pre-randomisation event counts and multiple post-randomisation survival times with cure rates: application to data for early epilepsy and single seizures

Abstract:
In this paper, we consider the analysis of recurrent event data that examines the differences between two treatments. The outcomes that are considered in the analysis are the pre-randomisation event count and post-randomisation times to first and second events with associated cure fractions. We develop methods that allow pre-randomisation counts and two post-randomisation survival times to be jointly modelled under a Poisson process framework, assuming that outcomes are predicted by (unobserved) event rates. We apply these methods to data that examine the difference between immediate and deferred treatment policies in patients presenting with single seizures or early epilepsy. We find evidence to suggest that post-randomisation seizure rates change at randomisation and following a first seizure after randomisation. We also find that there are cure rates associated with the post-randomisation times to first and second seizures. The increase in power over standard survival techniques, offered by the joint models that we propose, resulted in more precise estimates of the treatment effect and the ability to detect interactions with covariate effects.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1080/02664763.2012.748720

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Statistics
Role:
Author
ORCID:
0000-0003-4840-9107


Publisher:
Taylor and Francis (Routledge)
Journal:
Journal of Applied Statistics More from this journal
Volume:
40
Issue:
3
Pages:
546-562
Publication date:
2012-12-06
Acceptance date:
2012-11-07
DOI:
EISSN:
1360-0532
ISSN:
0266-4763


Language:
English
Keywords:
Pubs id:
pubs:965564
UUID:
uuid:e02baf1a-f78c-4e10-91e1-21c1ebb2a342
Local pid:
pubs:965564
Source identifiers:
965564
Deposit date:
2019-01-22
ARK identifier:

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