Robust inference for nondestructive one‐shot device testing under step‐stress model with exponential lifetimes

Author:

Balakrishnan Narayanaswamy1,Castilla Elena2ORCID,Jaenada María3ORCID,Pardo Leandro3

Affiliation:

1. Department of Mathematics and Statistics McMaster University Hamilton Ontario Canada

2. Department of Applied Mathematics Rey Juan Carlos University Madrid Spain

3. Department of Statistics and O.R. Complutense University of Madrid Madrid Spain

Abstract

AbstractOne‐shot devices analysis involves an extreme case of interval censoring, wherein one can only know whether the failure time is either before or after the test time. Some kind of one‐shot devices do not get destroyed when tested, and so can continue within the experiment, providing extra information for inference, if they did not fail before an inspection time. In addition, their reliability can be rapidly estimated via accelerated life tests (ALTs) by running the tests at varying and higher stress levels than working conditions. In particular, step‐stress tests allow the experimenter to increase the stress levels at prefixed times gradually during the life‐testing experiment. The cumulative exposure model is commonly assumed for step‐stress models, relating the lifetime distribution of units at one stress level to the lifetime distributions at preceding stress levels. In this paper, we develop robust estimators and Z‐type test statistics based on the density power divergence (DPD) for testing linear null hypothesis for nondestructive one‐shot devices under the step‐stress ALTs with exponential lifetime distribution. We study asymptotic and robustness properties of the estimators and test statistics, yielding point estimation and confidence intervals for different lifetime characteristic such as reliability, distribution quantiles, and mean lifetime of the devices. A simulation study is carried out to assess the performance of the methods of inference developed here and some real‐life data sets are analyzed finally for illustrative purpose.

Funder

Ministerio de Educación, Cultura y Deporte

Ministerio de Ciencia, Innovación y Universidades

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

Subject

Management Science and Operations Research,Safety, Risk, Reliability and Quality

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