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Parameter Estimation of Some NHPP Software Reliability Models with Change-Point

机译:带有变更点的某些NHPP软件可靠性模型的参数估计

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The nonhomogeneous Poisson process (NHPP) model is an important class of software reliability models and is widely used in software reliability engineering. The failure intensity function is usually assumed to be continuous and smooth. However, in many realistic situations, the failure intensity may be not continuous for many possible causes, such as the change in running environment, testing strategy, or resource allocation. The change-point and other parameters are often unknown and to be estimated from the observed failure data. In this article we constructed a method of the type of maximum likelihood estimation, which can be applied in the case that the change-point is not necessarily the observation time point and in the case that the data is grouped. Furthermore, if the failure intensity function is completely unknown, we designed a nonparametric method for estimating the change-point.
机译:非均匀泊松过程(NHPP)模型是一类重要的软件可靠性模型,已广泛用于软件可靠性工程中。通常假定失效强度函数是连续且平滑的。但是,在许多实际情况下,由于许多可能的原因(例如运行环境的变化,测试策略或资源分配),故障强度可能不是连续的。更改点和其他参数通常是未知的,并且需要从观察到的故障数据中进行估算。在本文中,我们构造了一种最大似然估计类型的方法,该方法可用于变化点不一定是观察时间点的情况下以及将数据分组的情况下。此外,如果故障强度函数完全未知,我们设计了一种非参数方法来估计变化点。

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