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A Probabilistic Model for Analysis and Fault Detection in the Software System: An Empirical Approach

机译:软件系统中分析与故障检测的概率模型:经验方法

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Software reliability and estimation of defects plays an important role in software testing stage. For studying defects, one common practice is to inject faults in subject software, either manually or by using a program that generates all possible mutants based on a set of mutation constraints. Getting the optimized results for the software system while predicting defects using realistic analysis, and confirming whether that leads to valid and consistent data during software testing stage is a challenge. In this paper, we propose Process simulation Model (PSM), which is a probabilistic model-based approach that overcomes these challenges and enables prediction of software defects and its impact in the system using Bayesian estimation. Moreover, a Fault Detection Algorithm FDA is derived from PSM model that helps to predict software faults for different deterministic problems that we have taken in our experimental study to demonstrate the reliability, verification and consistency of the system. A comparative study is shown on various deterministic problems by finding set of random defects through probabilistic approach the fault may occur in the proposed software model.
机译:缺陷软件的可靠性和评估起着软件测试阶段的重要作用。为了研究缺陷,一个常见的做法是在受试者软件手动或通过使用基于一组突变约束所有可能的突变体中的程序注入故障。获得该软件系统优化的结果,而使用实际分析预测缺陷,并确认在软件测试阶段,导致有效和一致的数据是否是一个挑战。在本文中,我们提议过程仿真模型(PSM),这是一个概率基于模型的方法,其克服这些挑战,使软件缺陷和其在使用贝叶斯估计该系统的影响的预测。此外,故障检测算法FDA从PSM模型,它有助于预测不同确定性的问题,我们采取了在我们的实验研究证明了系统的可靠性,验证和一致性软件故障的。的比较研究是通过概率方法寻找随机缺陷的集合中的故障在所提出的软件模型可能会发生显示上的各种确定性问题。

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