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Software Reliability Assessment of Safety Critical System Using Computational Intelligence

机译:计算智能安全关键系统的软件可靠性评估

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摘要

In the recent past, automotive industries are concentrating on software controlled automatic functions for its safety operations. The automotive safety and reliability lie in its design, construction, and software implementation. To assess the software reliability, the hidden design errors are classified and quantified. The temporal characteristic of numerical error is analyzed and its probabilistic behavior is explored using a novel framework called software failure estimation with numerical error (SFENE). Here, a model is devised to assess the probability of occurrence of the numerical error and its propagations from the initial to various other states using a Hidden Markov Model. It is seen that the framework SFENE supports classifying and quantifying the behavior of numerical errors while interacting across its system components and aids in the assessment on software reliability at design stage. The sensitivity and precision are found to be satisfactory. This attempt will support in the development of cost effective and error free safety critical software system.
机译:在最近的过去,汽车行业专注于软件控制的自动功能,以实现其安全操作。汽车安全性和可靠性位于其设计,施工和软件实现中。为了评估软件可靠性,隐藏的设计误差是分类和量化的。分析了数值误差的时间特征,并使用具有数字误差(SFE)的软件故障估计的新颖框架探索其概率行为。这里,设计模型以评估数值误差发生的概率及其使用隐线马尔可夫模型从初始到各种其他状态的传播。可以看出,框架SFES支持分类和量化数值误差的行为,同时在其系统组件上进行交互,并在设计阶段的软件可靠性评估中进行辅助。发现灵敏度和精度是令人满意的。这次尝试将支持开发成本效益和无错误安全关键软件系统。

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