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首页> 外文期刊>Communications in Statistics. B, Simulation and Computation >A Bayesian Change-point Analysis For Software Reliability Models
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A Bayesian Change-point Analysis For Software Reliability Models

机译:软件可靠性模型的贝叶斯变化点分析

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摘要

In most software reliability models which utilize the nonhomogeneous Poisson process (NHPP), the intensity function for the counting process is usually assumed to be continuous and monotone. However, on account of various practical reasons, there may exist some change points in the intensity function and thus the assumption of continuous and monotone intensity function may be unrealistic in many real situations. In this article, the Bayesian change-point approach using beta-mixtures for modeling the intensity function with possible change points is proposed. The hidden Markov model with non constant transition probabilities is applied to the beta-mixture for detecting the change points of the parameters. The estimation and interpretation of the model is illustrated using the Naval Tactical Data System (NTDS) data. The proposed change point model will be also compared with the competing models via marginal likelihood. It can be seen that the proposed model has the highest marginal likelihood and outperforms the competing models.
机译:在大多数使用非均匀泊松过程(NHPP)的软件可靠性模型中,通常将用于计数过程的强度函数假定为连续且单调的。但是,由于各种实际原因,强度函数中可能存在一些变化点,因此在许多实际情况下假设连续和单调强度函数可能是不现实的。在本文中,提出了使用贝叶斯混合物的贝叶斯变化点方法来对具有可能变化点的强度函数进行建模。将具有非恒定转移概率的隐马尔可夫模型应用于beta混合物,以检测参数的变化点。使用海军战术数据系统(NTDS)数据说明了模型的估计和解释。拟议的变更点模型还将通过边际可能性与竞争模型进行比较。可以看出,所提出的模型具有最高的边际可能性,并且优于竞争模型。

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