Literature DB >> 29185212

A semiparametric additive rate model for a modulated renewal process.

Xin Chen1, Jieli Ding2, Liuquan Sun3.   

Abstract

Recurrent event data from a long single realization are widely encountered in point process applications. Modeling and analyzing such data are different from those for independent and identical short sequences, and the development of statistical methods requires careful consideration of the underlying dependence structure of the long single sequence. In this paper, we propose a semiparametric additive rate model for a modulated renewal process, and develop an estimating equation approach for the model parameters. The asymptotic properties of the resulting estimators are established by applying the limit theory for stationary mixing sequences. A block-based bootstrap procedure is presented for the variance estimation. Simulation studies are conducted to assess the finite-sample performance of the proposed estimators. An application to a data set from a cardiovascular mortality study is provided.

Keywords:  Additive rate model; Block bootstrap; Estimating equation; Mixing condition; Modulated renewal process; Recurrent event data

Mesh:

Year:  2017        PMID: 29185212     DOI: 10.1007/s10985-017-9413-4

Source DB:  PubMed          Journal:  Lifetime Data Anal        ISSN: 1380-7870            Impact factor:   1.588


  9 in total

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Journal:  Lifetime Data Anal       Date:  2002-09       Impact factor: 1.588

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6.  A penalized algorithm for event-specific rate models for recurrent events.

Authors:  O Bouaziz; A Guilloux
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7.  Additive-multiplicative rates model for recurrent events.

Authors:  Yanyan Liu; Yuanshan Wu; Jianwen Cai; Haibo Zhou
Journal:  Lifetime Data Anal       Date:  2010-03-14       Impact factor: 1.588

8.  Robust analysis of semiparametric renewal process models.

Authors:  Feng-Chang Lin; Young K Truong; Jason P Fine
Journal:  Biometrika       Date:  2013-09-01       Impact factor: 2.445

9.  Statistical inference methods for recurrent event processes with shape and size parameters.

Authors:  Mei-Cheng Wang; Chiung-Yu Huang
Journal:  Biometrika       Date:  2014-09-01       Impact factor: 2.445

  9 in total

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