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Research Article | Open Access

A survival tree for interval-censored failure time data

Jia Chen1,2Renato De Leone1( )
School of Science and Technology, University of Camerino, Camerino 62032, Italy
School of Mathematics and Statistics, Changchun University of Technology, Changchun 130012, China
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Abstract

Interval-censored failure time data as a general type of survival data often arises in medicine and other applied fields. Survival tree is a flexible predictive method for survival data because no specific assumptions are required.

Generalized Log-Rank Test have good power with parameters for interval-censored failure time data. We construct a special test statistic of Generalized Log-Rank Tests, and propose a new survival tree with hyper-parameter by combining the test statistic with Conditional Inference Framework for interval-censored failure time data. The effect of tuning hyper-parameter are discussed and hyper-parameter tuning allows the tree method to be more general and flexible. Thus the tree method either improve upon or remain competitive with existing tree method for interval-censored failure time data-ICtree, which is a special case of ours. An extensive simulation is executed to assess the predictive performance of our tree methods. Finally, the tree methods are applied to a tooth emergence data.

CLC number: 62-08, 62N03

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AIMS Mathematics
Pages 18099-18126

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Cite this article:
Chen J, De Leone R. A survival tree for interval-censored failure time data. AIMS Mathematics, 2022, 7(10): 18099-18126. https://doi.org/10.3934/math.2022996

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Received: 25 April 2022
Revised: 25 July 2022
Accepted: 02 August 2022
Published: 15 October 2022
©2022 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)