具有组效应的渐进应力加速寿命试验数据分析

IF 2.3 2区 工程技术 Q3 ENGINEERING, INDUSTRIAL Quality Technology and Quantitative Management Pub Date : 2022-12-01 DOI:10.1080/16843703.2022.2147690
Liangliang Zhuang, Ancha Xu, Binbing Wang, Yuguo Xue, Songzi Zhang
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引用次数: 3

摘要

渐进式应力加速寿命试验(PSALT)是一种特殊类型的试验,用于测试具有连续变化应力水平的产品的寿命。由于测试设备和成本的限制,PSALT收集的寿命数据通常会被删节,并具有群效应。为了处理数据中的这两个特征,本文提出了一种具有群效应的PSALT模型。采用两阶段法和高斯-埃尔米特正交法估计模型参数,分别采用自举法和渐近定理构造区间估计。通过不同情景下的相对偏倚和均方根误差的仿真研究,将所提出的模型与无群体效应的传统模型进行比较。结果表明,所提出的模型可以检测到群体间的差异,而没有群体效应的模型在估计产品的特征寿命时将导致较大的偏差。最后,通过实际数据集对该模型进行了验证。
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Data analysis of progressive‐stress accelerated life tests with group effects
ABSTRACT Progressive-stress accelerated life testing (PSALT) is a special type of experiment that tests the lifetime of a product with continuously varying stress levels. Due to the limitations of testing equipments and costs, the lifetime data collected by PSALT are usually censored and have group effects. In order to deal with the two characteristics in the data, this paper presents a novel PSALT model with group effects under progressive censoring. Two-stage and Gauss-Hermite quadrature methods are proposed to estimate the model parameters, while the interval estimates are constructed by bootstrap and the asymptotic theorem, respectively. Simulation studies are conducted to compare the proposed model with the traditional models without group effects in terms of the relative bias and root mean squared error under different scenarios. The results show that the proposed model can detect group-to-group variation, and that the models without group effects will result in large biases for estimating the characteristic lifetime of the product. Finally, the proposed model is validated by a real dataset.
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来源期刊
Quality Technology and Quantitative Management
Quality Technology and Quantitative Management ENGINEERING, INDUSTRIAL-OPERATIONS RESEARCH & MANAGEMENT SCIENCE
CiteScore
5.10
自引率
21.40%
发文量
47
审稿时长
>12 weeks
期刊介绍: Quality Technology and Quantitative Management is an international refereed journal publishing original work in quality, reliability, queuing service systems, applied statistics (including methodology, data analysis, simulation), and their applications in business and industrial management. The journal publishes both theoretical and applied research articles using statistical methods or presenting new results, which solve or have the potential to solve real-world management problems.
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